Book v10.01 · Synced 2026-09-03

QTT Lexicon

A reference map for Quantum Traction Theory terms: axioms, symbols, status labels, finite-capacity objects, access rules, equations, concept DOI families, field notes, and legacy vocabulary bridges.

QTT
Lexicon entries
250
Reference categories
9
Symbol rows
25
Linked concept families
59
Book version
v10.01
Reading rule. This Lexicon is a navigation and meaning layer, not a substitute for citation. Use the Corpus Tree for formal concept-family citation. Use the stable book DOI 10.5281/zenodo.17527179 for the current book family.
Quick Lookup

Symbol Table

Symbols and named constants that appear across the book, Observatory, DOI Map, and field notes.

Symbol
T
Meaning
absolute/source clock
Equation / value
source ledger time before laboratory projection
Lexicon anchor
T
Symbol
τ
Meaning
laboratory proper time
Equation / value
dτ = N γ^{-1} dT
Lexicon anchor
tau
Symbol
I_clk
Meaning
two-clock projection constant
Equation / value
I_clk = cos(π/8) ≈ 0.9238795325
Lexicon anchor
I_clk
Symbol
ρ
Meaning
completed projected loop
Equation / value
ρ = 2π cos(π/8) = 5.804906...
Lexicon anchor
rho
Symbol
J_w
Meaning
real address-dial rotor
Equation / value
J^2 = -I at address w
Lexicon anchor
J
Symbol
Q_w
Meaning
address modular charge
Equation / value
Q_w^bundle = Q_w^vis + Q_w^hid = 2π
Lexicon anchor
A7
Symbol
Q_bundle
Meaning
closed modular bundle
Equation / value
Q_bundle = 2π
Lexicon anchor
Q_bundle
Symbol
ℓ̃
Meaning
Artian/source micro-ruler
Equation / value
G = ℓ̃^2 c^3 / ℏ once the ruler is fixed
Lexicon anchor
Artian micro-ruler
Symbol
E_cap
Meaning
per-address energy ceiling
Equation / value
E_cap = ℏc / ℓ̃
Lexicon anchor
E_cap
Symbol
η
Meaning
access efficiency
Equation / value
finite source-to-lab access factor
Lexicon anchor
eta
Symbol
M_w
Meaning
access map/projector
Equation / value
maps source object at w into the laboratory readout
Lexicon anchor
M_w
Symbol
Λ₃
Meaning
three-flavour QCD scale rail
Equation / value
Λ_MS^(3),QTT = 334.650962 MeV in current glue route
Lexicon anchor
Lambda3
Symbol
β_Z
Meaning
Z-sector stiffness rail
Equation / value
fixed source stiffness, not a retuned regulator
Lexicon anchor
beta_Z
Symbol
χ_Z
Meaning
Z-sector response rail
Equation / value
declared response/access rail in color/glue workpack
Lexicon anchor
chi_Z
Symbol
Φ₃(U)
Meaning
compact-color generator
Equation / value
Phi_3(U)=(1/3)Re_J Tr(U)
Lexicon anchor
Compact-color kernel
Symbol
K_βZ
Meaning
compact-color source kernel
Equation / value
K_betaZ^QTT(U)=exp[(beta_Z/3)Re_J Tr(U)]
Lexicon anchor
Compact-color kernel
Symbol
c₃/c₁
Meaning
SU_J(3) Haar-root coefficient
Equation / value
c_3/c_1(beta_Z)=0.849017324821154
Symbol
T_0^ABC
Meaning
absolute-background cosmic age
Equation / value
T_0^ABC = 15.40 Gyr
Lexicon anchor
T0_ABC
Symbol
F_drift
Meaning
sector-specific drift/access factor
Equation / value
legal only when source and no-retune rule are printed
Lexicon anchor
F_drift
Symbol
α
Meaning
fine-structure constant
Equation / value
capacity/QED kernel normalization target
Symbol
R_∞
Meaning
Rydberg source audit
Equation / value
R_infty^QTT = alpha_lambda^2 m_e^source c/(2h)
Lexicon anchor
Rydberg Source Audit
Symbol
I_e^γW
Meaning
electron gamma-W access rail
Equation / value
I_e = 1/(rho R_e) + 1/(64 R_e)
Symbol
G
Meaning
gravitational coupling
Equation / value
G = ℓ̃^2 c^3 / ℏ
Lexicon anchor
G
Color Guide

Term Origin Classes

Pale backgrounds are meaning cues, not decoration: QTT-native language, standard support notation, textbook terms redefined through QTT, and legacy/audit bridges are kept visually distinct.

QTT-native term
138

A word, symbol, theorem-name, or map object introduced by QTT and not part of ordinary textbook vocabulary.

Textbook / standard support term
8

A standard symbol or method word used mainly as ordinary notation or audit scaffolding.

Textbook term reframed by QTT
88

A standard physics word whose usual role is retained but whose source ontology is re-read through QTT.

Legacy, audit, or map bridge
16

A historical vocabulary bridge, status label, failed-route marker, or site-navigation map term.

Reference Layer

Lexicon Categories

The page is organized by conceptual role, then mirrored by an A-Z index for quick lookup.

Axioms and Ontological Spine

14

A1-A7, A5-X, A7-U, Artian Geometry, and the load-bearing book vocabulary.

Quantum Traction Theory, Artian Geometry, Artian's Universe, Human Invented Universe, A1

Open terms

Clocks, Dials, and Projection

23

Absolute and laboratory time, the real J rotor, half-angle readout, and phase holonomy.

Artian Time Framework, Time Tilt, A2 time-capacity consumption, A2 proper-time metric shadow, Quantized Lorentz boost ledger

Open terms

Substrate, Address, and Capacity

22

Pixellates, completed addresses, modular charge, finite capacity, and bundle closure.

Finite black-hole core, Artian micro-ruler, Artian ruler, Artian tick, Source-only SI endpoint bridge

Open terms

Access Law and Audit Method

30

Source/readout separation, no-smuggling, no-retune, access efficiency, and status discipline.

No-past-rewrite boundary, A7 horizon visible/hidden cut, No Hawking constructor, Effective horizon temperature access readout, Hawking/greybody access readout

Open terms

Core Equations and Theorems

36

Hamiltonian, action, Born, gravity, inertia, Maxwell, Navier-Stokes, Casimir, entropy, and QED capacity results.

A2 Einstein-field dynamics, Universal endpoint gain, Finite-address correction map, AB holonomy, A2 source packet

Open terms

Particles, Fields, and Materials

75

Color closure, glueballs, neutrinos, chirality, charge, top threshold, constants, and material response.

Lambda3, Photon-edge gate, Rydberg Source Audit, gamma-W micro-access rail, Artian joint-address hyperfine composition

Open terms

Cosmology, Lensing, and Tests

23

ABC/WV clock, Creation/Renewal Ledger branches, source kernels, renewal dust, cluster tests, and explicit failed-route records.

Time Drift, Past Hypothesis, T0_ABC, Hubble branch ratio, ZAHRA

Open terms

Predictions and Blind Tests

11

Locked no-retune predictions, blind protocols, pending laboratory discriminators, and named unblinding rules.

Endpoint Faithfulness (EFA-G1), Blind tabletop gravity tests, Page-envelope bound, A7U-G finite chamber gate, A7U chamber reference spectrum

Open terms

Legacy Bridge and Status Labels

16

Older public vocabulary mapped into current book language, plus the page-wide evidence/status vocabulary.

DERIVED/REMOVED, GREEN, GREEN-CANDIDATE, YELLOW-PREDICTION, STRUCTURAL

Open terms
Lookup Layer

A-Z Term Index

Use browser search or these letter anchors. Entries below expand in place with symbols, equations, status, concept DOI families, and related links.

1

18:2:4 light-vector charge ledger

2

2pi/rho scalar access factor

4

4pi periodicity

A

a0(z)A1A1-A6 propagator discriminatorA2A2 Einstein-field dynamicsA2 proper-time metric shadowA2 source packetA2 time-capacity consumptionA3A4A5-XA6A6 bounded wave-packet spaceA6 Hadamard center-sheet half-share theoremA7A7 horizon visible/hidden cutA7-UA7U access floorA7U chamber reference spectrumA7U Molecular Visibility TransportA7U-G finite chamber gateAB holonomyABC clockABC/WV closureAbell 2744 validationAcceleration kneeAccess LawAccess residualsAccess windowAccess-relative purityAccessible memory stateAddress wAddress-time completionAkhasheni scarsArrow of TimeArtian GeometryArtian joint-address hyperfine compositionArtian Lagrangian FrameworkArtian micro-rulerArtian rulerArtian tickArtian Time FrameworkArtian's ConstantsArtian's UniverseAtomic-unit source propagationAudit domain

B

Bekenstein without Hawkingbeta_ZBlack-hole information-loss denialBlind tabletop gravity testsBlog MapBLOPBoltzmann constantBorn ruleBoundary half-share rule

C

CANDIDATECapacityCapacity/QED kernelCasimir-bundle theoremCenter-sheet half-shareCentral access effectCharge ledgerCharged-Lepton Family-Rank Constructor TheoremCharged-Lepton Family-Rank GateChebyshev all-tick wave propagatorchi_ZChiralityChirality-odd sector-activation theoremCKM holonomyCKM micro-provenance bridgeClock-constellation identifiability gateCoasting triadColor closureCompact-color kernelCompleted address eventCompleted historical recordCompleted-address monotoneCompleted-event four-capacityCompleted-event HamiltonianComputational framework v1.0Constructor AlphabetConstructor domainCosmological source amplitudeCreation LedgerCrystal-fixed chiral spin reflection

D

DERIVED/REMOVEDDeterminant-one family accessDial holonomyDiscrete real-J dial ledgerDOI MapDyadic closure

E

E_capEffective horizon temperature access readoutEndpoint Faithfulness (EFA-G1)Endurance currentEntropy anchored modular chargeEquation 601 failed routeetaExact vacuum identity

F

F_driftFabrikaFeynman path integralFine-structure constantFinite Access-Window LemmaFinite action ledgerFinite black-hole coreFinite source certificateFinite source-graph multiplicity theoremFinite-address correction mapFour-cell chiral spin design

G

Ggamma-W micro-access railGEORGEGEORGE normalizationGlueball mass gapGREENGREEN-CANDIDATE

H

H1 failure recordsHamiltonian frameworkHawking/greybody access readoutHigh-regime twin theoremHubble branch ratioHuman Invented UniverseHVP access-covariance mapHVP constructor firewallHVP laboratory row packetHVP row-topology ladderHVP Source-Access Reference FrameworkHVP vector source ledger

I

I_clkInertia theorem

J

JJ_PMNS

K

Kappa-epsilon degeneracyKerr constantKeystone classKoide charged-lepton cone

L

Lambda3Last-reference-write ruleLeast actionLegacy Terminology MapLinear-free Lorentz-violation falsifierLog-Gram spin rapidity

M

m_DeltaM_wMaison ValmyMARIAMMatter-wave visibility bridgeMaxwell transportMeasurement as accessMedia Made Science - MMSMinimal neutral spectrumModular charge

N

Navier-Stokes shadowNeutrino family-rank reference theoremNeutrino ratioNICKNICK formulaNo Hawking constructorNo-open-color gateNo-past-rewrite boundaryNo-retune ruleNo-smuggling firewallNo-smuggling rulenon-G anchorNon-gravitational Artian-ruler corridorNonlinear wave-capacity completion gateNormalized energy-shape theoremNumerical Provenance Ledger

O

Oxygen paramagnetism

P

Page-envelope boundPassive-host H0 testPast HypothesisPhoton-edge gatePhysical intertwining certificatePhysical Terminalpi/4 refoliationpi/8 projectionPixellatePlanck-mass superselectionPLTsPMNS access shadowPMNS atmospheric octant branchPMNS candidate facePMNS constructor firewallPMNS CP registryPMNS joint triad coefficient packetPMNS root angle-word derivationPMNS solar Cabibbo interfacePMNS source-access theoremPMNS source-face certificatePre-registration lockPROGRAM

Q

Q_bundleQ_SigmaQED no-retune window suiteQuantized Lorentz boost ledgerQuantized NowQuantum Traction TheoryQuark family-rank and CKM reference frameworkQuark source complex

R

Real-J orthogonal wave propagatorRecord-spend quotientRenewal DustRenewal LedgerRetarded address operatorRetarded support theoremrhoRydberg Source Audit

S

S_minSame-central-effect Access IntertwinerSchrodinger projectionsigma_3 QCD sheet scaleSource kernelSource-only SI endpoint bridgeSource-unitary evaporationSource/readout splitSpace QuantumStatic-source string tensionStefan-Boltzmann constantStencil dispersionSTRUCTURALSU_J(3) Haar-root readout

T

TT-star candidate terminalT0_ABCTarget-fit burdentauTime DriftTime driftTime TiltTop-antitop threshold accessTrace-free Artian tensorTriadic closureTwin address-path theorem

U

UELUnified Equilibrium LawUniversal endpoint gain

V

Vacuum capacityVector source centroids

W

w-co-locationWave equation as shadowWavefunction projectionWhite-Void

Y

YELLOW-PREDICTIONYouTube Map

Z

ZAHRA
Audit Layer

Status Vocabulary

Status labels are deliberately conservative. A named object is not automatically a derived theorem or a green audit.

GREEN finite enumeration uniqueness
1

Current page status label.

GREEN finite first-order enumeration / broader access gates live
1

Current page status label.

GREEN source count closed
1

Current page status label.

GREEN-CKM-MICROPROVENANCE
1

Current page status label.

GREEN-COEFFICIENT
1

Current page status label.

GREEN-CP source branch / observation rows live
1

Current page status label.

GREEN-SOLAR-BRIDGE
1

Current page status label.

access readout closed
1

Current page status label.

access shadow / not source
1

Current page status label.

active pi branch / 9pi8 quarantined
1

Current page status label.

anchor class / circularity control
1

Current page status label.

audit theorem
1

Current page status label.

audit-open source scale
1

Current page status label.

audit/erratum
2

Kept visible as a failed route, falsification record, or correction object.

candidate
6

Printed formula or framework with a named missing lemma, access map, or audit rail.

candidate until certified
1

Current page status label.

canonical
59

Current canonical vocabulary in the QTT book/corpus.

classification ledger
1

Current page status label.

closed no-go / open theorem target
1

Current page status label.

closed within declared source theorem
1

Current page status label.

conditional
1

Current page status label.

conditional recovery / exact given stated premises
1

Current page status label.

conditional theorem
1

Current page status label.

conditional theorem / Log-Gram amplitude closure / prospective test sealed
1

Current page status label.

conditional theorem / covariance verdict open
1

Current page status label.

conditional theorem / prospective transfer open
1

Current page status label.

constructor theorem
1

Current page status label.

constructor theorem / platform pending
1

Current page status label.

denied source ontology
1

A named contrast object that QTT explicitly rejects as physical source ontology, while retaining any valid laboratory-shadow mathematics.

derived/removed
1

Axiom-forced replacement of a fitted or inherited input, in the book's status vocabulary.

effect-level theorem / sharp-projector recovery exact
1

Current page status label.

exact QTT surface sealed / physical activation and observation pending
1

Current page status label.

exact amplitude functional / material source packet open / prospective fixed-gap test sealed
1

Current page status label.

fixed-readout representation
1

Current page status label.

formula closed / numerical audit open
1

Current page status label.

framework theorem
12

Current page status label.

framework theorem / central-effect theorem / relative priority certified / QTT discriminator independently qualified and sealed
1

Current page status label.

frozen; multi-row audit pending
1

Current page status label.

future comparator
1

Current page status label.

governance label
1

Current page status label.

green finite enumeration/source angles/solar bridge/CKM/CP / yellow octant and CP-profile gates
1

Current page status label.

green finite source face / yellow atmospheric access row
1

Current page status label.

green method and packet gates; red frozen BaBar lineshape
1

Current page status label.

green source-ratio theorem / audit row
1

Current page status label.

green-candidate
12

Numerical access pass with an explicit structural caveat or pending convention map.

green/yellow
6

Current page status label.

legacy bridge
2

Old public vocabulary retained only as a map into current book language.

method firewall
1

Current page status label.

no-go closed / branch pending
1

Current page status label.

not derived / no-go certified
1

Current page status label.

null-model audit
1

Current page status label.

operational access object
1

Current page status label.

optional access phenomenology / source constructor rejected
1

Current page status label.

permanent corpus comparison protocol
1

Current page status label.

prospective protocol / seal pending
1

Current page status label.

quadratic capacity closed / frequency representation conditional
1

Current page status label.

sealed conditional hypothesis
1

Current page status label.

source bridge green; numerical certificate amber
1

Current page status label.

source composition theorem closed
1

Current page status label.

source law closed / central-effect constructor closed / relative priority certified / finite-record interface closed / hardware qualification pending
1

Current page status label.

source ontology closed
1

Current page status label.

source ruler / audit boundary
1

Current page status label.

source theorem
3

Current page status label.

source-constructor rejected
1

Current page status label.

source-derived / access pending
1

Current page status label.

source-equation closed
18

Current page status label.

source-equation closed / lab test pending
1

Current page status label.

source-equation closed / microscopic programme pending
1

Current page status label.

source-equation closed / owner theorem release candidate
1

Current page status label.

source-ratio closed
1

Current page status label.

source/lab corridor green
1

Current page status label.

structural
45

No-fit theorem, construction, or leading face; not automatically a precision numerical pass.

structural theorem closed; numerical source packet amber
1

Current page status label.

support-level ancestor / current operator row closed
1

Current page status label.

theorem
1

Current page status label.

theorem / high-separation empirical activation
1

Current page status label.

theorem certificate / experiment pending
1

Current page status label.

theorem distinction
1

Current page status label.

theorem within QTT
1

Current page status label.

theorem within QTT / sector population open
1

Current page status label.

theorem-pending-observation
1

Current page status label.

yellow active branch
1

Current page status label.

yellow-prediction
13

Locked no-retune prediction awaiting decisive data.

Definition Layer

All Lexicon Entries

Each entry is WordPress-safe, searchable, and math-safe without MathJax. The small ± Expand / Collapse cue marks rows that reveal or hide ontology, equation snippets, book anchors, DOI chips, and related field notes.

Axioms and Ontological Spine

14 terms
Quantum Traction TheoryThe connected manuscript/corpus framework in which finite address capacity, two-clock access, real-J phase, and bundled existence are treated as one substrate ledger.QTTQTT-nativecanonicalReadout conventionExpand / Collapse

QTT is not a loose collection of claims; it is the book-level attempt to read physical law as finite capacity accounting on completed address events, with every laboratory number treated as an access image of a source object.

Standard-physics correlate: nearest standard frame: foundations/unification program; differs by treating laboratory quantities as access images of a finite address-capacity ledger.
Book pages (v10.01): pp. 1, 118, 1247-1255
Anchor note: Book master record and current synthesis; cite the stable concept DOI.
Status reading: Current canonical vocabulary in the QTT book/corpus.
Reader links
Artian GeometryThe geometric substrate language of QTT: rotationally closed finite cells, Artian ruler/tick, address closure, and the book's current replacement for older public substrate terminology.QTT-nativecanonicalReadout conventionExpand / Collapse

Artian Geometry supplies the finite geometry in which QTT's address cells are not naked coordinate cubes but rotationally closed capacity objects with finite closure and access rules.

Standard-physics correlate: nearest standard frame: discrete geometry/lattice regularization; differs because cells are completion-counted capacity objects, not inserted coordinate lattice points.
V_pix = (pi/6) ell_A^3; V_SQ = 24 V_pix = 4 pi ell_A^3; Q_Sigma = 8 pi ell_A^2.
Book pages (v10.01): pp. 56, 193, 280, 304
Anchor note: Book v10.01: A5-X noncircular address-ruler source theorem; Pixellate and Space Quantum definitions.
Status reading: Current canonical vocabulary in the QTT book/corpus.
Reader links
Artian's UniverseThe QTT source ontology: a counted 1+3+1 universe whose laboratory 3+1 equations are readout shadows of completed modular-capacity events.QTT-nativecanonicalReadout conventionExpand / Collapse
Aliases: 1+3+1 source ontology, Reality Dimension spine, Artian's Universe source ontology

In the current strong-coupling theorem this is the explicit arena in which the derivation is written. Artian's Universe is not a smooth 3+1 continuum with a decorative extra label, not a hidden spatial road, not a compact bulk, and not a second realm. The additional 1 is the Reality Dimension spine: a non-translational address ledger around which completed bundles close. The ordinary 3 spatial coordinates and the laboratory clock/time coordinate are access readouts of that counted source object.

Standard-physics correlate: nearest standard frame: spacetime ontology; differs because QTT treats laboratory 3+1 spacetime as a readout shadow of a counted 1+3+1 source ontology, not as the deepest arena.
Artian's Universe = 1_Reality-Dimension-spine + 3_spatial-laboratory-readout + 1_clock/time-readout

E in C_T iff Q_E^bundle = 2pi, E_E t_tilde = hbar, and Delta V_{4,E} = 4pi ell_tilde^4.
Book pages (v10.01): pp. 235-238, 263-266; strong-coupling theorem source-ontology box, concept DOI 10.5281/zenodo.20625550; Artian time framework source statement, concept DOI 10.5281/zenodo.20761499
Anchor note: Book v10.01: A1 heartbeat, A5-X completed-address reading, A7/A7-U same-universe completion guardrail, and the strong-coupling theorem source-ontology box.
Status reading: Current canonical vocabulary in the QTT book/corpus.
Human Invented UniverseQTT's name for the rejected idea that physical reality's deepest arena is only a human-invented smooth 3+1 differentiable continuum.QTT-reframeddenied source ontologyDenied source ontologyExpand / Collapse
Aliases: Human-invented smooth-continuum universe, Smooth-continuum source ontology, 3+1 differentiable-manifold universe

QTT denies that the human-invented smooth-continuum universe exists as the source ontology of physical reality. This is not a denial that continuum equations work in laboratories; QTT treats those equations as powerful coarse-grained shadows recovered when many completed address events are read through ordinary space and laboratory time. The denied object is the claim that the continuum itself is the final source arena.

Standard-physics correlate: nearest standard frame: smooth-continuum spacetime realism; QTT keeps the mathematics as a laboratory approximation but denies this continuum as the source ontology of physical reality.
Denied as source ontology:
Reality_source != smooth 3+1 differentiable manifold

Recovered as readout shadow:
many completed address events -> ordinary spatial readout + laboratory time.
Book pages (v10.01): strong-coupling theorem source-ontology box, concept DOI 10.5281/zenodo.20625550; QTT source ontology pp. 235-238, 263-266; Artian time framework source/readout statement, concept DOI 10.5281/zenodo.20761499
Anchor note: Strong-coupling theorem source-ontology box: QTT denies the human-invented smooth-continuum universe as source ontology and replaces it with Artian's Universe.
Status reading: A named contrast object that QTT explicitly rejects as physical source ontology, while retaining any valid laboratory-shadow mathematics.
A1Two-clock kinematics: an absolute background clock T and laboratory proper time tau are related by a positive lapse, while address dials carry real-J phase.QTT-nativecanonicalAxiomExpand / Collapse
Aliases: Artian's Universe Heartbeat, Two-clock structure

A1 says the source ledger has its own fastest clock, while any laboratory clock is a projection through lapse, motion, and access. It also anchors local causality and the real two-component dial.

Standard-physics correlate: nearest standard frame: lapse/proper-time kinematics plus phase-space clock choice; differs by making the source clock and laboratory clock ontologically distinct.
d tau = N(x) gamma^{-1}(v) dT, 0 < N <= 1; c = ell_tilde / t_tilde.
Book pages (v10.01): pp. 235-238, 541, 1255
Anchor note: Book v10.01: Axiom A1 section; half-angle discussion around the two-clock projection.
Status reading: Current canonical vocabulary in the QTT book/corpus.
See also: T, tau, I_clk, pi/4, J
A2Persistence requires one finite 24-pixellate support packet per Artian mass-count unit and source tick; its continuum shadow supplies inverse-square endurance flux and the Newtonian limit.QTT-nativecanonicalAxiomExpand / Collapse
Aliases: Law of Endurance, Blips

The source mass variable is the dimensionless Artian count B=M/m_A. Each count requires one completed support packet per source tick. Gravity is the continuum shadow of that endurance accounting; support use is neither negative entropy nor completed-record deletion.

Standard-physics correlate: nearest standard frame: gravitational continuity/source equation; differs by reading gravity as endurance-current accounting rather than primitive curvature alone.
B=M/m_A; N_SQ^A2=BN_T; N_pix^A2=24BN_T; G_A=ell_A^2 c^3/hbar; G_mu_nu+Lambda_A3 g_mu_nu=(8*pi*G_A/c^4)T_mu_nu^A2.
Book pages (v10.01): pp. 238-241, 268, 1248; A2 Einstein-field concept DOI 10.5281/zenodo.20763263
Anchor note: Book v10.01: Axiom A2 / Law of Endurance section.
Status reading: Current canonical vocabulary in the QTT book/corpus.
A3The creation ledger: every Artian mass-count unit seeds twenty-four White-Void fronts per source tick, and each active front creates one legal space quantum per later tick in the fixed-origin branch.QTT-nativecanonicalAxiomExpand / Collapse
Aliases: Law of Creation, Blops

A3 is not entropy and not an arbitrary dark-energy insert. Under the explicit fixed-origin premise, its finite triangular sum produces a source-volume identity. The source constructor is B=M/m_A; conventional mass units and present cosmic size are downstream comparators only.

Standard-physics correlate: nearest standard frame: cosmological source/vacuum sector; differs by pairing creation accounting with endurance sinks.
N_WV(j)=24Bj; N_SQ^A3=12BN_T(N_T+1); V_src^A3=48*pi*B*ell_A^3*N_T(N_T+1) ~= 48*pi*B*c^2*ell_A*T^2.
Book pages (v10.01): pp. 212-213, 241-246, 540, 711-715, 1209; Creation Ledger concept DOI 10.5281/zenodo.20633582
Anchor note: Book v10.01: Axiom A3 / Law of Creation section.
Status reading: Current canonical vocabulary in the QTT book/corpus.
Arrow of TimeThe QTT framework that keeps several time arrows inside one finite-address ontology without collapsing their counters: A1 orders events, A7 persists completed records, A2 supplies endurance support, A3 creates White-Void/source volume, and access maps produce laboratory readouts.QTT-reframedsource-equation closedReadout conventionExpand / Collapse
Aliases: A3/A2 arrow theorem, single oriented primitive, source-time orientation, address-time completion

The completed-record arrow is not inserted as thermodynamic typicality: A1 supplies order and A7 forbids undeclared loss of a completed record. A2 support and A3 source-volume creation are separate source ledgers. Quantized Now, Time Tilt/Drift, proper time, high-regime boosts, and laboratory records are typed readouts whose individual theorem status must be stated separately. QTT is a new speculative framework until its discriminating tests are run.

Standard-physics correlate: nearest standard frame: thermodynamic/cosmological arrow and Past Hypothesis discussions; differs by deriving the completed-record orientation from A1 ordering plus A7 persistence while keeping A2 support and A3 source-volume ledgers separately typed.
Delta S_QTT=(k_B Delta N_rec,Sigma_acc)^T in R_>=0^2; Delta N_rec>=0
N_SQ^A2=BN_T, N_WV(j)=24Bj, N_SQ^A3=12BN_T(N_T+1), B=M/m_A
Now_R(T_n)={X in R: a(X)=n}, T_w(X)=T_{a(X)}
theta_age=pi/8+pi/48=7pi/48, t0_lab=T0_ABC cos(7pi/48)
d tau=exp(-E_A2)sqrt(1-v^2/c^2)dT
p_{n+1}=p_n+N_n M_* c
G_phys^QTT=G_J^+=Theta_w L_J^-1, Pi_phys G_J^- Pi_src=0
Book pages (v10.01): A2/A3, entropy, Creation Ledger, measurement-record, Quantized Now, delayed-choice, twin-clock, retarded address-operator, proper-time, quantized-Lorentz, and clock-readout anchors; arrow-of-time concept DOI 10.5281/zenodo.20761499
Anchor note: Concept DOI is the stable citation target; the latest concept-family version speaks.
Completed-address monotoneThe A1/A7 source statement that the cumulative completed-record count has no undeclared negative increment.Delta N_recQTT-reframedsource-equation closedReadout conventionExpand / Collapse

This is the source-side spine of the record arrow. It is a persistent-history condition, not a statistical preference and not the A2 support or A3 source-volume count. The legacy term is retained as a stable public anchor.

Standard-physics correlate: nearest standard frame: entropy increase or cosmological initial-condition arrow; differs because QTT counts persistent completed records under A1/A7 rather than identifying entropy with A2 support or A3 volume.
Delta N_rec>=0; Delta S_QTT=(k_B Delta N_rec,Sigma_acc)^T in R_>=0^2.
Book pages (v10.01): A1 event-order and A7 completion/persistence anchors; arrow-of-time concept DOI 10.5281/zenodo.20761499; entropy concept DOI 10.5281/zenodo.20045306
Anchor note: Term indexed to the v10.01 source pages listed above.
A4Each address carries an internal S1 dial; its quarter-turn generator J packages what standard notation writes as complex phase.QTT-nativecanonicalAxiomExpand / Collapse
Aliases: Real U(1) J-dial, Reality Dimension

A4 makes phase and charge into address-dial holonomy rather than an unexplained complex-number primitive. The standard complex unit is the laboratory shorthand for a real two-component rotor.

Standard-physics correlate: nearest standard frame: complex phase/U(1) gauge structure; differs by replacing primitive i with a real address-dial rotor J.
J^2 = -I; e^{J theta} = cos theta + J sin theta; q = N e0.
Book pages (v10.01): pp. 246-250, 381, 1248
Anchor note: Book v10.01: Axiom A4 / internal S1 anchor and U(1) gauge section.
Status reading: Current canonical vocabulary in the QTT book/corpus.
A5-XThe sharpened A5 reading: an address w is one completed modular-capacity event, not a primitive background lattice point.QTT-nativecanonicalAxiomExpand / Collapse
Aliases: Completed address events, World-cell address

A5-X prevents the book from smuggling discreteness into a coordinate label. The counted object is a completed event carrying finite four-volume, action throughput, and bundle closure.

Standard-physics correlate: nearest standard frame: lattice site or event; differs because an address is completed modular capacity, not a background point.
Q_E^bundle = 2 pi; E_E t_tilde = hbar; Delta V_4 = 4 pi ell_tilde^4.
Book pages (v10.01): pp. 56, 250-253, 263
Anchor note: Book v10.01: A5-X noncircular address-ruler theorem and Axiom A5 section.
Status reading: Current canonical vocabulary in the QTT book/corpus.
A6Per-address energy, power, action, and regularity ceilings; the rule that a finite address event cannot overspend its capacity.QTT-nativecanonicalAxiomExpand / Collapse
Aliases: Law of Quantum Capacity, Finite capacity

A6 is both a UV discipline and a bookkeeping rule: one funded address transaction can have many laboratory shadows, but those shadows cannot be counted as separate hidden mechanisms.

Standard-physics correlate: nearest standard frame: UV cutoff/regularity bound; differs because the bound is a physical per-address capacity law, not a regulator trick.
E_cap = hbar c / ell_tilde; P_cap = hbar / t_tilde^2; |S_w| <= hbar Delta T / t_tilde.
Book pages (v10.01): pp. 253-262, 304, 753
Anchor note: Book v10.01: Axiom A6 / capacity and regularity section.
Status reading: Current canonical vocabulary in the QTT book/corpus.
A7Every physical excitation at an address is completed by a visible plus unresolved same-universe complement closing one 2pi modular bundle.QTT-nativecanonicalAxiomExpand / Collapse
Aliases: Law of Bundled Existence, Modular completion

Existence is never a partial naked object at one address. The visible part and its unresolved complement are one same-universe bundle, with the hidden part hidden only relative to an access cut.

Standard-physics correlate: nearest standard frame: superselection/completion rule; differs by requiring visible and unresolved same-universe parts to close one modular bundle.
Q_w^bundle = Q_w^vis + Q_w^hid = 2 pi.
Book pages (v10.01): pp. 262-268, 352, 751
Anchor note: Book v10.01: Axiom A7 / bundled existence section.
Status reading: Current canonical vocabulary in the QTT book/corpus.
Observation links
A7-UThe same-universe reading of A7 after the v4.0 upgrade: hidden completion is not an external universe, reservoir, or adjustable compensator; it is unresolved visible modular share inside the same completed bundle.QTT-nativestructuralAxiomExpand / Collapse
Aliases: Same-universe completion guardrail, Distributed Planck bundles, No-pure-particle theorem

A7-U exists to stop missing energy, mass, phase, purity, or determinant normalization from being hidden in an unobservable elsewhere. The full w-bundle is the source object; every finite laboratory subsystem is an access marginal. That is why the upgraded paper speaks of access-relative purity rather than absolute purity of a detached visible piece.

Standard-physics correlate: nearest standard frame: hidden-sector constraint; differs by forbidding an external reservoir or other-universe completion.
Q_w^bundle = sum_k Q_{k,w}^vis = 2 pi; [X,P]=J hbar(I-M_{O,S,w}); Delta X Delta P >= (hbar/2)(1-eta_{O,S,w}).
Book pages (v10.01): pp. 11, 263-266, 353, 1251; A7U distributed-bundle source concept DOI 10.5281/zenodo.20097247; molecular visibility transport concept DOI 10.5281/zenodo.20796924
Anchor note: Book v10.01: A7-U same-universe completion guardrail; source concept DOI 10.5281/zenodo.20097247; molecular visibility transport concept DOI 10.5281/zenodo.20796924; black-hole information concept DOI 10.5281/zenodo.20346916.
Status reading: No-fit theorem, construction, or leading face; not automatically a precision numerical pass.

Clocks, Dials, and Projection

23 terms
Artian Time FrameworkThe v5.2 time grammar that separates ABC time, address time, proper time, laboratory time, record time, A2 endurance support, and A3 source volume instead of treating time as one primitive smooth parameter.QTT-nativeframework theoremTheorem within QTTExpand / Collapse
Aliases: QTT time framework, four-layer time map, ABC-address-proper-lab time map, Time Tilt / Time Drift bridge

ABC time is the source clock. Address time is completed membership in a w-tick. Proper time is the A2/speed-share clock face. Laboratory time is the finite instrument readout through I_clk and F_A3. Record time is durable address completion. Time Tilt and Creation Drift are source-to-lab clock readouts, not new fitted cosmological knobs. The layers agree in ordinary low-regime limits but are not ontologically identical.

Standard-physics correlate: nearest standard frame: relativistic time/proper-time clock grammar; differs by separating ABC source time, address time, proper time, laboratory time, and record time as access-related but non-identical layers.
T = ABC source clock; T_w(X)=T_{a(X)}; theta_age=pi/8+pi/48=7pi/48; t0_lab=T0_ABC cos(7pi/48)=13.81184 Gyr for T0_ABC=15.4 Gyr; d tau=exp(-E_A2)sqrt(1-v^2/c^2)dT; dt_lab=I_clk F_A3 d tau.
Book pages (v10.01): arrow-of-time concept DOI 10.5281/zenodo.20761499; QTT Main Book v10.01 ABC clock, A2/A3, address, access, and proper-time anchors
Anchor note: Term indexed to the v10.01 source pages listed above.
Time TiltThe fixed two-clock projection angle that tilts the ABC source clock into a laboratory clock readout.QTT-reframedsource-equation closedReadout conventionExpand / Collapse
Aliases: clock tilt, two-clock projection angle, theta_0

Time Tilt is not a tunable Hubble parameter. It is the clock/readout projection face shared with the broader cos(pi/8) family: a laboratory clock sees an access projection of the addressed source ledger rather than the source clock nakedly.

Standard-physics correlate: nearest standard concept: the usual textbook object remains recognizable, but QTT re-reads its source through finite address capacity and access.
theta_0 = pi/8; I_clk = cos(pi/8).
Book pages (v10.01): arrow-of-time concept DOI 10.5281/zenodo.20761499; QTT Main Book v10.01 two-clock projection, ABC clock, and Creation Ledger anchors
Anchor note: Term indexed to the v10.01 source pages listed above.
A2 time-capacity consumptionThe arrow paper's local-clock reading of A2: matter requires one finite 24-pixellate endurance packet per Artian mass-count unit and source tick, so the laboratory clock reads a reduced share of the same ABC tick.QTT-reframedsource-equation closedReadout conventionExpand / Collapse
Aliases: Endurance clock slowing, weak-field A2 clock readout

Gravitational time dilation is not time reversal and not record deletion. It is the clock readout of a finite A2 endurance requirement inside the same oriented ledger.

Standard-physics correlate: nearest standard frame: gravitational time dilation; differs by reading local clock slowing as endurance-capacity expenditure in the same ABC tick.
d tau/dT = exp(Phi/c^2) sqrt(1-v^2/c^2) ~= (1+Phi/c^2) sqrt(1-v^2/c^2).
Book pages (v10.01): A2 endurance and weak-field clock-readout anchors; arrow-of-time concept DOI 10.5281/zenodo.20761499
Anchor note: Term indexed to the v10.01 source pages listed above.
A2 proper-time metric shadowThe current closure that proper time is the A2 endurance/speed-share clock face, now connected to the A2 infrared Einstein-field dynamics closure and the v5.2 Artian time framework.QTT-reframedtheorem within QTTReadout conventionExpand / Collapse
Aliases: proper-time metric shadow, A2 lapse shadow, QTT proper time

QTT keeps the ordinary proper-time interval as a valid laboratory shadow, but it does not make smooth metric time primitive. A2 endurance consumption reduces the local clock share; motion adds the speed-share factor; the lab then reads the result through clock/access factors. The later A2 Einstein-field paper closes the field-dynamics bridge around this clock face.

Standard-physics correlate: nearest standard frame: proper-time interval and metric lapse; differs because QTT reads proper time as the A2 endurance/speed-share clock face now tied to the A2 IR field-equation closure.
d tau_QTT = exp(-E_A2(x)) sqrt(1-v^2/c^2) dT; d tau_QTT^2 = -(1/c^2) g_mu_nu^QTT dx^mu dx^nu.
Book pages (v10.01): arrow-of-time concept DOI 10.5281/zenodo.20761499; A2 Einstein-field concept DOI 10.5281/zenodo.20763263; A2 endurance, proper-time, weak-field, Schwarzschild, and IR field-equation anchors
Anchor note: Term indexed to the v10.01 source pages listed above.
Quantized Lorentz boost ledgerThe current high-regime replacement for treating Lorentz boosting as an infinitely smooth continuum operation.QTT-reframedsource-equation closedReadout conventionExpand / Collapse
Aliases: finite boost ledger, quantized boost ledger, finite address boost

Ordinary SR is recovered in the low-regime shadow, but QTT refuses gamma infinity and v=c as physical completed-address objects. Boosting is a finite impulse-per-tick ledger over completed address events.

Standard-physics correlate: nearest standard frame: Lorentz boost/rapidity kinematics; differs because high-regime boosts are finite address-tick impulse updates rather than smooth gamma-infinity ontology.
p_{n+1}=p_n+N_n M_* c; y_{n+1}=arcsinh(sinh y_n + N_n M_*/m); v_n=c tanh y_n.
Book pages (v10.01): arrow-of-time concept DOI 10.5281/zenodo.20761499; Luminal J-Rotor, quantized Lorentz, A5/A6, and finite address-tick anchors
Anchor note: Term indexed to the v10.01 source pages listed above.
High-regime twin theoremThe current twin row: low-regime SR is recovered, while high-capacity paths are compared as finite sums over completed address ticks.QTT-reframedsource-equation closed / lab test pendingReadout conventionExpand / Collapse
Aliases: high-regime twin deviation, finite-address twin theorem, completed-address twin sum

The two twins do not merely trace ideal smooth worldlines. At high regime, the physical comparison is between completed address histories with A2/A3 clock-access factors and finite boost ticks. The laboratory test remains pending where QTT corrections are independently locked and resolvable.

Standard-physics correlate: nearest standard frame: twin paradox proper-time integral; differs because QTT predicts a finite completed-address tick sum in high-capacity regimes after low-regime SR is recovered.
Delta t_i^QTT = sum_{w_n in gamma_i} I_clk F_A3(w_n) exp(-E_A2(w_n)) sqrt(1-v_{i,n}^2/c^2) t_tilde.
Book pages (v10.01): arrow-of-time concept DOI 10.5281/zenodo.20761499; twin-clock, A2/A3 clock-access, finite boost, and address-history anchors
Anchor note: Term indexed to the v10.01 source pages listed above.
Quantized NowQTT's definition of Now as finite membership in a completed reality-address tick.QTT-reframedsource-equation closedReadout conventionExpand / Collapse
Aliases: QTT Now, finite Now, completed-address present

Now is not an infinitely thin smooth hypersurface and not merely a psychological present. It is the finite set of records whose completed address support belongs to the active reality tick.

Standard-physics correlate: nearest standard frame: simultaneity slice, present moment, or local time label; differs because QTT defines Now as finite membership in a completed reality-address tick.
Now_R(T_n) = {X in R : X in M(w_n)}, T_w(X)=T_a(X), dT_w=t_tilde dn.
Book pages (v10.01): arrow-of-time concept DOI 10.5281/zenodo.20761499; QTT Main Book v10.01 A2/A3, address, access, and ABC-clock anchors
Anchor note: Term indexed to the v10.01 source pages listed above.
Address-time completionThe rule that event-time is completed address membership before a laboratory clock reads it.QTT-nativesource-equation closedReadout conventionExpand / Collapse
Aliases: address time, w-address time

A lab clock does not manufacture source time. It reads a completed address order through an access factor. This keeps the source ledger prior to coordinate convention.

Standard-physics correlate: nearest standard frame: event time or coordinate time; differs because QTT ties time to completed address membership T_w(X)=T_a(X), not passive lab-clock copying.
T_w(X)=T_a(X), dT_w=t_tilde dn; dt_lab = I_clk F_A3 exp(-E_A2) sqrt(1-v^2/c^2) dT.
Book pages (v10.01): arrow-of-time concept DOI 10.5281/zenodo.20761499; QTT Main Book v10.01 completed-address and ABC-clock anchors
Anchor note: Term indexed to the v10.01 source pages listed above.
Twin address-path theoremThe QTT reading of twin-clock asymmetry as different positive clock-access integrals over different address histories.QTT-reframedsource-equation closedReadout conventionExpand / Collapse
Aliases: twin address path, address-path clock theorem

The difference is not a contradiction in reciprocal motion. Each clock carries a different access path through the same oriented source ledger.

Standard-physics correlate: nearest standard frame: twin paradox proper-time integral; differs by reading the clock difference as two positive address-access integrals over different source histories.
Delta t_A - Delta t_B = int_gammaA C_T[gamma_A] dT - int_gammaB C_T[gamma_B] dT.
Book pages (v10.01): arrow-of-time concept DOI 10.5281/zenodo.20761499; A2/A3 clock-access anchors
Anchor note: Term indexed to the v10.01 source pages listed above.
TThe absolute clock used by the substrate ledger; laboratory time is read from it through lapse and access.TextbookcanonicalReadout conventionExpand / Collapse
Aliases: Absolute background clock, ABC clock, Ledger clock

T is the time coordinate of the source ledger, not a wristwatch. It orders creation/consumption and completed-address updates before a laboratory chooses a finite access window.

Standard-physics correlate: nearest standard frame: coordinate/cosmic time; differs as the source ledger clock before laboratory projection.
d tau = N gamma^{-1} dT.
Book pages (v10.01): pp. 235, 278, 541, 1209
Anchor note: Book v10.01: A1 two-clock structure and ABC/WV clock sections.
Status reading: Current canonical vocabulary in the QTT book/corpus.
See also: tau, ABC clock, T0_ABC, I_clk
tauLaboratory proper time, the clock read by observers and instruments.tauTextbookcanonicalReadout conventionExpand / Collapse

tau is the finite laboratory clock, not the full source ledger. QTT uses it to explain why laboratory measurements see projections, delays, and access windows rather than source objects directly.

Standard-physics correlate: nearest standard frame: proper time; differs because it is explicitly an access/readout clock.
d tau / dT <= 1 in fastest-clock normalization.
Book pages (v10.01): pp. 235, 435, 541, 672, 680
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Current canonical vocabulary in the QTT book/corpus.
See also: T, N_dil, I_clk
ABC clockPublic-facing name for the T-clock in cosmology/vacuum records.QTT-nativecanonicalReadout conventionExpand / Collapse
Aliases: Absolute Background Clock

The ABC clock is the cosmological/source clock. It is what lets the corpus distinguish the absolute-background age from the lab-projected age.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
T0^ABC = 15.40 Gyr in the triple-anchor clock record.
Book pages (v10.01): pp. 540, 1199-1205, 1248
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Current canonical vocabulary in the QTT book/corpus.
See also: T, T0_ABC, ABC/WV closure
I_clkThe clock/readout visibility factor cos(pi/8), arising from the half-angle projection of the canonical pi/4 refoliation.QTT-nativecanonicalReadout conventionExpand / Collapse
Aliases: Half-angle invariant, Two-clock projection constant

I_clk is not a speed limit. It is the laboratory-visible projection of a source clock/dial relation, reused across neutrino, Hubble, CHSH, T-gate, collider, and material-response routes.

Standard-physics correlate: nearest standard frame: projection factor/overlap amplitude; differs as a fixed two-clock half-angle readout constant.
I_clk = cos(pi/8) ~= 0.9238795325; rho = 2 pi I_clk.
Book pages (v10.01): pp. 541, 567, 1255
Anchor note: Book v10.01: A1 half-angle discussion; p.134 anchor cited by companion papers.
Status reading: Current canonical vocabulary in the QTT book/corpus.
See also: pi/8, pi/4, rho, Neutrino ratio
pi/4 refoliationThe canonical two-clock refoliation angle used as the source angle behind the half-angle projection.theta_canQTT-nativecanonicalReadout conventionExpand / Collapse

QTT treats the source/lab clock relation as a canonical form, and the laboratory amplitude sees the metaplectic half-angle of that relation.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
theta_can = pi/4; laboratory amplitude angle = theta_can / 2 = pi/8.
Book pages (v10.01): pp. 541, 567, 1255
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Current canonical vocabulary in the QTT book/corpus.
See also: I_clk, pi/8, T, tau
pi/8 projectionThe half-angle laboratory projection angle behind cos(pi/8).QTT-nativecanonicalReadout conventionExpand / Collapse

The angle appears when a source dial is read as a laboratory amplitude; it is the reason the same constant can appear as a clock projection, magic-state overlap, and CHSH optimum.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
cos(pi/8) = sqrt((1 + 1/sqrt(2)) / 2).
Book pages (v10.01): pp. 541, 567, 1255
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Current canonical vocabulary in the QTT book/corpus.
See also: I_clk, rho, CHSH optimum, T-gate overlap
rhoThe completed-loop projection size 2pi cos(pi/8).rhoTextbookcanonicalReadout conventionExpand / Collapse

rho is the full 2pi modular loop seen through the two-clock half-angle projection. It is a recurring scale in neutrino, fine-structure, and Standard-Model ledger formulas.

Standard-physics correlate: nearest standard frame: dimensionless loop factor; differs as a 2pi modular loop seen through I_clk.
rho = 2 pi cos(pi/8) = 5.804906...; in the neutrino theorem rho_nu uses this rail and R_nu = rho_nu^2.
Book pages (v10.01): pp. 541, 594, 637, 1248
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Current canonical vocabulary in the QTT book/corpus.
See also: I_clk, A7, Neutrino ratio
JThe real quarter-turn generator carried by the address dial; standard complex i is its packaged laboratory notation.QTT-reframedcanonicalReadout conventionExpand / Collapse
Aliases: Real-J rotor, Quarter-turn rotor

J keeps QTT's phase ontology real: the complex unit is not a magical scalar but the quarter-turn of a two-component dial at an address.

Standard-physics correlate: nearest standard frame: imaginary unit or symplectic quarter-turn; differs as a real rotor on an address dial.
J^2 = -I; e^{J theta} = cos theta + J sin theta.
Book pages (v10.01): pp. 246-250, 381, 435, 1139
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Current canonical vocabulary in the QTT book/corpus.
See also: A4, Dial holonomy, Real-J phase, Schrodinger projection
Dial holonomyClosed-path phase transport on the real-J/U(1) address dial.QTT-reframedcanonicalReadout conventionExpand / Collapse

Gauge phase, AB phase, AC phase, and spin/clock phase are read as holonomies of the address dial, not as isolated formal decorations.

Standard-physics correlate: nearest standard concept: the usual textbook object remains recognizable, but QTT re-reads its source through finite address capacity and access.
Delta theta[C] = (q/hbar) int_Sigma F + int_Sigma mathcal F.
Book pages (v10.01): pp. 248-250, 404, 428-429, 462-467
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Current canonical vocabulary in the QTT book/corpus.
4pi periodicitySpinor/dyadic double-cover periodicity used in the phase-spine and dyadic closure records.TextbookcanonicalReadout conventionExpand / Collapse

The same real-dial structure that gives ordinary phase also carries the double-cover behavior behind spinor and dyadic closure.

Standard-physics correlate: standard usage: ordinary textbook or audit notation; QTT keeps it mainly as support language rather than a renamed object.
Spinor return requires 4pi while modular bundle closure is 2pi.
Book pages (v10.01): pp. 246-250, 541, 552, 1248
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Current canonical vocabulary in the QTT book/corpus.
See also: J, Dyadic closure, A7
Time driftA locked clock/projection effect used in the cosmology and material-response routes; not a freely fitted drift knob.QTT-nativestructuralStructural theorem/guardrailExpand / Collapse

When QTT uses drift factors, the legal version must be printed from a declared source/access rail rather than fitted afterward to repair a result.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
Example: pi/48 drift angle in clock-sector discussions; F_drift may carry sector labels.
Book pages (v10.01): pp. 712, 1199-1205
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: No-fit theorem, construction, or leading face; not automatically a precision numerical pass.
F_driftA sector-specific drift/access factor; legal only when the relevant paper prints its source and forbids retuning from the observed comparator.QTT-nativecandidateCandidate / map pendingExpand / Collapse

F_drift is dangerous if used as a catch-all repair factor. In the current corpus it must be attached to a declared finite access rail and a no-smuggling derivative.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
K_lab = (cos(pi/8) / F_drift) A_K in the Kerr access factorization; static Kerr cells set F_drift = 1.
Book pages (v10.01): pp. 280, 541, 672, 680; Kerr access record carries the current audit rail
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Printed formula or framework with a named missing lemma, access map, or audit rail.
See also: Kerr constant, No-smuggling, Access window
Physical TerminalA carrier-independent class of durable physical records whose terminal rank is fixed by the unique maximal physical reference write inherited by the record.QTT-nativeconstructor theorem / platform pendingReadout conventionExpand / Collapse
Aliases: physical reference terminal, A1 terminal constructor, terminal-reference class

A physical terminal is not a software label, detector click, elapsed free evolution, or chosen name for time. The record must descend from a completed event through a continuous physical memory chain. The constructor asks what last physically wrote the durable record, whether that ancestry is unique, whether laboratory rewriting stayed below its frozen bound, whether source continuity stayed above its frozen bound, and whether a later overwrite occurred. Only then may a platform call the result a candidate source terminal or a laboratory terminal.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
G_PT = product_{g=1}^{15} g_g in {0,1}. If G_PT=0: INELIGIBLE_NO_THEORY_VERDICT. If G_PT=1: R_ordinary=1, R_QTT-A1=cos(pi/8)^q.
Book pages (v10.01): pp. 235, 381, 541, 672, 680
Anchor note: Book v10.01: axiom compass/A5-X pp. 48-52, two-clock map pp. 235-237, conditional half-angle pp. 541-542, and reference-switch instructions pp. 889-894.
Observation links
T-star candidate terminalA platform history proposed as the source-side terminal, explicitly marked with a star because the laboratory has not yet identified it with the ABC source clock.T^starQTT-nativecandidate until certifiedReadout conventionExpand / Collapse
Aliases: candidate source terminal, T* terminal, completed-event terminal

T-star is careful notation, not a weaker spelling of T. It says that the apparatus claims to preserve memory of one completed source event without a later laboratory overwrite. The star remains until the fifteen-gate certificate passes. This prevents a free-evolution interval, isolated autonomous subsystem, or software-routed arm from being called the absolute clock merely because it looks independent of the laboratory controller.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
T^star requires C_E, Xi_L <= epsilon_L, Xi_S >= eta_S, no later lab overwrite, one final basis-selecting readout, and G_PT=1.
Book pages (v10.01): pp. 235, 381, 541, 672, 680
Anchor note: Book v10.01: completed-event and two-clock anchors pp. 48-52 and 235-237; reference-switch instructions pp. 889-894.
Observation links

Substrate, Address, and Capacity

22 terms
Finite black-hole coreThe QTT denial that an infinite singularity is a legal source object: a black hole may be horizon-bearing, but its completed addresses remain finite-capacity objects.QTT-reframedsource ontology closedReadout conventionExpand / Collapse
Aliases: no infinite black-hole singularity, finite Planck-core black hole, capacity-bounded black-hole core

The singularity belongs to an overextended smooth-continuum readout. At the source, A6 caps action/energy/curvature per completed address and A7 closes the bundle. A larger black hole must distribute support over many legal cells/bundles rather than compress all reality into one infinite point.

Standard-physics correlate: nearest standard frame: singularity-resolution proposal; differs because QTT uses A6 finite capacity and A7 closure to deny infinite source density at a completed address.
rho <= rho_*; K <= K_max ~ 1/ell_tilde^4; no completed address carries infinite energy, action, density, or curvature.
Book pages (v10.01): black-hole information concept DOI 10.5281/zenodo.20346916; A6 finite-capacity, A2 Einstein-field, and no-infinite-singularity anchors
Anchor note: Black-hole information concept DOI 10.5281/zenodo.20346916; A2 Einstein-field concept DOI 10.5281/zenodo.20763263; QTT Main Book v10.01 finite-capacity and no-infinite-singularity anchors.
Artian micro-rulerThe primitive QTT length/ruler before or at the empirical bridge to the Planck length.ell_A, ell_tildeQTT-nativecanonicalReadout conventionExpand / Collapse

QTT must not assume Planck length circularly when deriving G. The Artian ruler is the source micro-ruler; IR matching may identify it with the measured Planck length. The source-only SI endpoint bridge now separates the legal unit rail from the still-amber completed address-capacity numerical certificate.

Standard-physics correlate: nearest standard frame: microscopic length scale/Planck length; differs because it is the source ruler before any G-calibrated identification.
G = ell_tilde^2 c^3 / hbar after the gravity bridge.
Book pages (v10.01): pp. 56, 193, 238-241, 268; source-only SI endpoint bridge concept DOI 10.5281/zenodo.20936013
Anchor note: Book v10.01: A5-X address-ruler theorem and gravity non-circularity firewall.
Status reading: Current canonical vocabulary in the QTT book/corpus.
Artian rulerThe QTT source ruler whose laboratory Planck-length reading must not be constructed by smuggling observed G into the source.ell_A, ell_tildeQTT-nativesource ruler / audit boundaryReadout conventionExpand / Collapse
Aliases: Artian micro-ruler, absolute Artian ruler, source ruler, ell_A, ell_tilde

The Artian ruler is the finite source length carried by the address/capacity ledger. It can be read through gravitational, non-gravitational, or source-only SI routes, but those are different audit classes. A non-G anchor is stronger than a G-circular route, while source-only SI closure is stricter still and remains separated from mere agreement with a laboratory constant.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
Gravity bridge: G_A = ell_A^2 c^3 / hbar. Constructor firewall: partial ell_A / partial G_obs = 0 for non-G/source-only ruler routes.
Book pages (v10.01): pp. 56, 193, 238-241, 268; non-G Artian ruler metrology concept DOI 10.5281/zenodo.21190193; non-G capacity endpoint concept DOI 10.5281/zenodo.21182051; source-only SI endpoint concept DOI 10.5281/zenodo.20936013
Anchor note: QTT Main Book v10.01, micro-ruler and G non-circularity anchors pp. 56, 193, 238-241, 268; scorecard pp. 126-128.
Artian tickThe primitive substrate tick, t_tilde = ell_tilde / c.t_tildeQTT-nativecanonicalReadout conventionExpand / Collapse

The tick is the atomic time-step of address updates and capacity throughput in the source ledger.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
t_tilde = ell_tilde / c; E_cap t_tilde = hbar.
Book pages (v10.01): pp. 56, 238, 253, 268
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Current canonical vocabulary in the QTT book/corpus.
See also: T, A1, E_cap
Source-only SI endpoint bridgeThe QTT bridge that reads the universal Artian capacity endpoint into SI/GeV units without letting laboratory constants write the source.E_*QTT-nativesource bridge green; numerical certificate amberReadout conventionExpand / Collapse
Aliases: Artian source endpoint bridge, SI/GeV endpoint bridge, source-only endpoint firewall

This is a firewall term. It says the unit rail is legal only when E_* is carried by the A5-X completed-address event, A6 finite capacity, and A7 closure, while G, R_infty, electron mass, electroweak masses, alpha, and CODATA rows remain downstream audits. Version 3.1 explicitly inherits the completed-event four-capacity owner theorem, so 4*pi*ell_A^4 is no longer a listed coefficient with hidden provenance. The bridge is green as a source-only SI/GeV ruler map; v3.0 closes the K2 hyperfine factorization and prints the finite cesium packet target. The joint-address hyperfine theorem now proves how finite nuclear and contact source objects compose and why one source pin per connected clock component is required. The fully numerical completed address-capacity certificate remains amber until the heavy-alkali nuclear/contact packet is derived.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
V_pix=(pi/6)ell_A^3; |O_3^+|=24; Delta V_A^(4)=24 V_pix ell_A=4*pi*ell_A^4. Then t_A=ell_A/c; E_* t_A=hbar; E_*=hbar c/ell_A. SI/GeV readouts: E_*[J]=h_SI nu_*[Hz]/(2*pi), E_*[GeV]=h_SI nu_*[Hz]/(2*pi*10^9 e_SI). K2 factorization: N_K2=(alpha_lambda^2/(4*pi))*(m_e^source c^2/E_*)*Phi_Cs^source, with Phi_Cs^target=2.7942472e-6 and nu_*=1.854859e43 Hz at the current audit. Firewall: partial E_*/partial(G_obs,R_infty_obs,m_e_obs,G_F_obs,m_H_obs,m_t_obs,alpha_obs)=0 at fixed ell_A,hbar,c.
Book pages (v10.01): pp. 9-22, 56, 193, 238-241, 250-268, scorecard pp. 126-128; source-only SI endpoint concept DOI 10.5281/zenodo.20936013
Anchor note: QTT Main Book v10.01, source/readout and no-smuggling pp. 9-22, A5-X/A6/A7 pp. 250-268, micro-ruler and G anchors pp. 56, 193, 238-241, 268, scorecard pp. 126-128.
non-G anchorA dimensional anchor route that excludes observed Newton G from the constructor.QTT-nativeanchor class / circularity controlReadout conventionExpand / Collapse
Aliases: non-gravitational anchor, non-G Artian ruler route, no-G anchor

A non-G anchor is a circularity firewall, not automatically a completed source-only SI certificate. It says the Artian ruler or capacity endpoint is being metered through an independent non-gravitational door, while the stricter source-only endpoint still has its own amber certificate boundary.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
At fixed source symbols, partial X_ctor / partial G_obs = 0. Non-G anchored != source-only SI closed.
Book pages (v10.01): pp. 56, 193, 238-241, 268; non-G capacity endpoint concept DOI 10.5281/zenodo.21182051; non-G Artian ruler metrology concept DOI 10.5281/zenodo.21190193; source-only SI endpoint concept DOI 10.5281/zenodo.20936013
Anchor note: QTT Main Book v10.01, source/readout pp. 9-22, micro-ruler pp. 56, 193, 238-241, 268, status scorecard pp. 126-128.
PixellateThe current public/book term for the smallest 3D atom of space-capacity.QTT-nativecanonicalReadout conventionExpand / Collapse
Aliases: QTT pixellate substrate, modern replacement for Fabrika

A pixellate is not a naked cube. Its support is the diameter-ell_A ball B^3_(ell_A/2), whose ordinary volume is (pi/6)ell_A^3. Rotational completion belongs to the separate 24-state proper-frame fibre; it is not hidden inside the one-pixellate volume.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
V_pix = (pi/6) ell_A^3.
Book pages (v10.01): pp. 57-59, 193, 280
Anchor note: Book v10.01: Definition (Pixellate: the 3D atom of space).
Status reading: Current canonical vocabulary in the QTT book/corpus.
Reader links
Completed-event four-capacityThe finite QTT event support obtained from one spherical pixellate, the complete 24-state proper-orientation fibre, and one completed address stride.Delta V_A^(4)QTT-nativesource-equation closed / owner theorem release candidateReadout conventionExpand / Collapse
Aliases: QTT fourth UEL face, Artian four-capacity, completed-event support, four-capacity owner theorem

This is a product-capacity measure, not 24 material spheres laid over one spatial region. Ordinary three-volume measures the diameter-ell_A spherical support; counting measure closes the proper signed-permutation orientation fibre; and one source stride contributes ell_A. The resulting 4*pi*ell_A^4 is the support on which the QTT four-density acts. One orientation member through one stride is a different typed object and is smaller by exactly 24.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
V_pix=Vol(B^3_(ell_A/2))=(pi/6)ell_A^3; O_3^+={proper signed-permutation frames}; |O_3^+|=3!*2^(3-1)=24; Delta V_A^(4)=(mu_3 tensor #_(O_3^+) tensor mu_1)(B^3_(ell_A/2) times O_3^+ times I_A)=4*pi*ell_A^4; delta V_pix,A^(4)=(pi/6)ell_A^4; Delta V_A^(4)=24 delta V_pix,A^(4); E_*=rho_A^(4)Delta V_A^(4).
Book pages (v10.01): pp. 56, 193, 250-268, 751
Anchor note: QTT Main Book v10.01 supplies the source ingredients and fourth-face identity; the standalone owner theorem makes their typed product-measure composition explicit without changing the book.
Space QuantumA completed 24-state proper-frame capacity packet, the molecule of space-capacity used by the endurance ledger.V_SQQTT-nativecanonicalReadout conventionExpand / Collapse

The 24 count is the order of the proper signed-permutation frame fibre, 3!*2^(3-1). It is discrete proper-frame closure, not full continuous SO(3) Haar measure and not a claim that 24 ordinary spheres occupy the same region. Coupled to one spherical pixellate support it yields V_SQ=4*pi*ell_A^3.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
V_SQ = 24 V_pix = 4 pi ell_A^3.
Book pages (v10.01): pp. 57-59, 193, 238-241
Anchor note: Book v10.01: Definition (Space Quantum: the molecule of space).
Status reading: Current canonical vocabulary in the QTT book/corpus.
Q_SigmaThe complete Artian area quantum used in capacity/area accounting.Q_SigmaQTT-nativecanonicalReadout conventionExpand / Collapse

Q_Sigma is the area face of the same finite-cell grammar that gives the space quantum and completed address.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
Q_Sigma = 8 pi ell_A^2 = 32 S_min.
Book pages (v10.01): pp. 56, 193, 280
Anchor note: Book v10.01: A5-X address-ruler theorem; fine-structure and capacity notes.
Status reading: Current canonical vocabulary in the QTT book/corpus.
S_minMinimum area/capacity patch in the Artian address-ruler accounting.S_minQTT-nativecanonicalReadout conventionExpand / Collapse

S_min is the local patch unit beneath Q_Sigma. It keeps surface/area counting finite and tied to the same address-ruler source.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
S_min = (pi/4) ell_A^2; Q_Sigma / S_min = 32.
Book pages (v10.01): pp. 56, 193, 280
Anchor note: Book v10.01: A5-X address-ruler theorem.
Status reading: Current canonical vocabulary in the QTT book/corpus.
See also: Q_Sigma, Capacity, A6
Address wThe irreducible operational support label of one completed modular-capacity event.QTT-nativecanonicalReadout conventionExpand / Collapse
Aliases: World-cell address, Completed-event support

w is not a hidden coordinate where magic happens. It is the receipt that a finite modular charge event has closed in the ABC ledger.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
a(w) = (1/2pi) sum_{w_b prec w} Q_{w_b}^bundle in N.
Book pages (v10.01): pp. 53-54, 165, 174, 250-253
Anchor note: Book v10.01: A5-X completed address events.
Status reading: Current canonical vocabulary in the QTT book/corpus.
Completed address eventA physical event that has closed its modular charge, action-throughput tick, and finite four-volume.QTT-nativecanonicalReadout conventionExpand / Collapse

This is the object A5-X says can be counted. It replaces vague references to a background lattice with a closure receipt, and in the Lagrangian framework it becomes the event whose finite action spend is summed before any continuum laboratory integral is introduced. Its four-capacity is owned by the finite spherical-support x proper-frame-fibre x one-stride constructor, not by dimensional analogy.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
Q_E^bundle = 2pi; E_E t_tilde = hbar; V_pix=(pi/6)ell_tilde^3; |O_3^+|=24; Delta V_4=24 V_pix ell_tilde=4pi ell_tilde^4.
Book pages (v10.01): pp. 50-54, 250-253, 526
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Current canonical vocabulary in the QTT book/corpus.
Modular chargeThe dimensionless anchored capacity/bundle charge used to track completion at an address.Q_wQTT-nativecanonicalReadout conventionExpand / Collapse

Modular charge is what fills the bundle budget. The visible share may change with access, but the completed same-universe bundle must close.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
Q_w(rho||omega) = 2pi S(rho||omega); Q_w^bundle = 2pi.
Book pages (v10.01): pp. 53-54, 263-266, 751
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Current canonical vocabulary in the QTT book/corpus.
Q_bundleThe fixed 2pi modular budget of a completed address bundle.Q_w^bundleQTT-nativecanonicalReadout conventionExpand / Collapse

Q_bundle is the closure condition: visible plus hidden same-universe shares complete one modular circle.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
Q_w^bundle = Q_w^vis + Q_w^hid = 2pi.
Book pages (v10.01): pp. 263-266, 751
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Current canonical vocabulary in the QTT book/corpus.
See also: A7, A7-U, Modular charge
CapacityFinite address capacity: the per-address budget for energy, action, power, phase, and admissible readout.QTT-nativecanonicalReadout conventionExpand / Collapse

Capacity is the book's way of preventing unlimited local storage, hidden counterterms, and duplicated mechanisms. Every claimed theorem must say what capacity is being counted.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
E_cap = hbar c / ell_tilde; |S_w| <= hbar Delta T / t_tilde.
Book pages (v10.01): pp. 253-262, 304, 753
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Current canonical vocabulary in the QTT book/corpus.
See also: A6, E_cap, No-smuggling
E_capThe per-address energy ceiling.E_capQTT-nativecanonicalReadout conventionExpand / Collapse

E_cap is the finite energy budget of a completed address tick. It appears as a UV/capacity object, not a fitted high-energy cutoff.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
E_cap = hbar c / ell_tilde; E_cap t_tilde = hbar.
Book pages (v10.01): pp. 253-262, 304, 753
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Current canonical vocabulary in the QTT book/corpus.
See also: A6, Artian tick, UEL
Unified Equilibrium LawThe QTT capacity-equilibrium identity reading mass, energy, frequency, four-density, and modular bundle capacity as faces of one primitive capacity.UELQTT-nativecanonicalReadout conventionExpand / Collapse

UEL is the load-bearing conversion spine: it ties endpoint capacity and modular charge to energy without treating mass-energy as an isolated postulate. Its fourth face is not only a dimensional rewrite: QTT constructs the finite support from one diameter-ell_A spherical pixellate, the complete 24-state proper-frame capacity fibre, and one completed address stride.

Standard-physics correlate: nearest standard frame: mass-energy/action-frequency conversion; differs by treating the conversions as faces of one capacity identity.
V_pix=(pi/6)ell_A^3; |O_3^+|=24; Delta V_A^(4)=24 V_pix ell_A=4pi ell_A^4; E_*=rho_A^(4)Delta V_A^(4). At the endpoint coordinate: E_P=m_P c^2=hbar omega_P=rho_(4)(4pi ell_P^4)=(hbar c/(2pi ell_P))Q_P, with Q_P=2pi.
Book pages (v10.01): pp. 23-32, 540, 751, 1247
Anchor note: Book v10.01 and UEL modular-charge fifth-face record.
Status reading: Current canonical vocabulary in the QTT book/corpus.
See also: A7, Modular charge, E_cap
UELThe searchable acronym for the Unified Equilibrium Law, the QTT capacity-equilibrium identity used throughout the corpus.QTT-nativestructuralStructural theorem/guardrailExpand / Collapse
Aliases: Unified Equilibrium Law

The acronym UEL should be findable on its own because papers and blog cards often cite it compactly. It points to the same capacity identity as the full Unified Equilibrium Law entry, including the QTT-native completed-event fourth face.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
Delta V_A^(4)=24((pi/6)ell_A^3)ell_A=4pi ell_A^4; E_*=rho_A^(4)Delta V_A^(4); E_P=(hbar c/(2pi ell_P))Q_P and Q_P=2pi.
Book pages (v10.01): pp. 23-32, 540, 751, 1247
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: No-fit theorem, construction, or leading face; not automatically a precision numerical pass.
BLOPThe compact public name for the A3 source-side creation event in the QTT volume/vacuum/cosmology ledger.QTT-nativestructuralStructural theorem/guardrailExpand / Collapse
Aliases: Blop, Law of Creation source event

BLOP is not an extra particle. It is the named creation-side ledger object paired against endurance sinks in the A3/vacuum branch. The cosmological-constant ledger additionally requires any Blop amplitude claim to specify a finite legal event set, measure, homogeneous share, and normalization; naming the event alone does not predict epsilon.

Standard-physics correlate: nearest standard frame: cosmological creation/vacuum-source event; differs by naming the A3 source-side volume-creation ledger object.
B=M/m_A; V_src^A3=48*pi*B*ell_A^3*N_T(N_T+1) ~= 48*pi*B*c^2*ell_A*T^2; epsilon_src=(1/Z_Blop) sum m_Blop p_hom remains pending until the finite certificate is axiom-unique.
Book pages (v10.01): pp. 241-246, 540, 1199-1205
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: No-fit theorem, construction, or leading face; not automatically a precision numerical pass.
A6 bounded wave-packet spaceThe complete spatial spectral sector that supports bounded two-sided free histories of the finite source recurrence.QTT-nativesource theoremTheorem within QTTExpand / Collapse
Aliases: A6 free packet space, bounded spectral packet, P_A6 packet projector

A6 is fixed per address. For the free wave law, that finite capacity becomes a spectral admissibility gate: modes outside the unit band are not stable physical free histories, while every mode inside it has bounded real frequency and exact all-tick propagation.

Standard-physics correlate: nearest standard frame: the stable spectral subspace of a finite-difference evolution; differs because QTT identifies it as the complete physical free sector admitted by fixed per-address capacity.
Q=-Delta/4; P_A6=1_[0,1](Q); H_A6=Ran P_A6. A two-sided bounded free history exists exactly for spectral support in q in [0,1].
Book pages (v10.01): A6 fixed per-address capacity and source-wave packet theorem; concept DOI 10.5281/zenodo.20723081
Anchor note: Term indexed to the v10.01 source pages listed above.
Observation links
Nonlinear wave-capacity completion gateThe boundary between the closed free-packet theorem and a still-unproved lawful nonlinear interaction map.QTT-nativeclosed no-go / open theorem targetOpenExpand / Collapse
Aliases: nonlinear packet closure gate, wave interaction completion, A6 nonlinear boundary

Free packet closure cannot be promoted to interacting closure by prose. Generic local products create spectral support outside the A6 band; a QTT interaction must therefore include its own finite capacity-routing theorem.

Standard-physics correlate: nearest standard frame: closure of a band-limited function space under nonlinear interaction; differs because QTT prints the generic quadratic failure as a no-go and leaves the lawful nonlinear source map as a separate theorem target.
q(K1)=q(K2)=1/2 can hold while q(K1+K2)=3/2; hence generic pointwise quadratic products do not preserve H_A6.
Book pages (v10.01): A6 interaction-boundary no-go and open nonlinear theorem target; concept DOI 10.5281/zenodo.20723081
Anchor note: Term indexed to the v10.01 source pages listed above.

Access Law and Audit Method

30 terms
No-past-rewrite boundaryDelayed-choice-style experiments refine unresolved shared address support; they do not rewrite sealed past records.QTT-reframedsource-equation closedReadout conventionExpand / Collapse
Aliases: no past rewrite, delayed-choice boundary, quantum-time no-past-rewrite theorem

QTT allows a later access choice to decide which unresolved shared support becomes readable. It does not allow a completed address event to be re-edited after closure.

Standard-physics correlate: nearest standard frame: delayed-choice and quantum-eraser interpretation; differs because QTT allows unresolved shared support to be refined without rewriting sealed completed records.
sealed completed records stay sealed; only unresolved support inside the access window is refined.
Book pages (v10.01): arrow-of-time concept DOI 10.5281/zenodo.20761499; measurement/access and delayed-choice anchors
Anchor note: Term indexed to the v10.01 source pages listed above.
A7 horizon visible/hidden cutThe access split at a horizon: visible and hidden faces are different laboratory cuts through one completed same-universe bundle.QTT-nativesource-equation closedReadout conventionExpand / Collapse
Aliases: horizon visible-hidden split, A7 horizon cut, visible/hidden modular share

The horizon hides part of the completed bundle from a given observer, but hiding is not annihilation. The cut changes what can be read; it does not change what exists at the source.

Standard-physics correlate: nearest standard frame: horizon tracing / outside-observer marginal; differs because QTT treats the split as access-relative, not as an ontological loss channel.
H_src = H_vis ⊕ H_hid as access bookkeeping; Q_bundle = Q_vis + Q_hid = 2pi.
Book pages (v10.01): black-hole information concept DOI 10.5281/zenodo.20346916; A7 same-universe completion, Access Law, entropy, and horizon visible/hidden anchors
Anchor note: Black-hole information concept DOI 10.5281/zenodo.20346916; A7 same-universe completion and access-window anchors.
Observation links
No Hawking constructorThe v4.0 firewall: Hawking radiation is not needed and is not allowed as a source constructor for QTT black-hole entropy or unitarity.QTT-reframedsource-constructor rejectedReadout conventionExpand / Collapse
Aliases: Hawking constructor rejected, Hawking radiation source constructor rejected, no Hawking source ontology

QTT can allow a thermal-looking exterior channel as a downstream access/readout question, but the source theorem is closed before that channel appears. Radiation may be tested as phenomenology; it may not be used as the reason information survives, the reason entropy exists, or the reason the horizon is finite.

Standard-physics correlate: nearest standard frame: Hawking radiation as black-hole source mechanism; differs because QTT rejects Hawking radiation as source ontology while allowing optional downstream thermal-looking access phenomenology.
partial S_H^QTT/partial(T_H^Hawking)=0; partial S_H^QTT/partial(Hawking flux)=0; partial S_H^QTT/partial(vacuum pair creation)=0.
Book pages (v10.01): black-hole information concept DOI 10.5281/zenodo.20346916; source-constructor firewall and optional thermal-access anchors
Anchor note: Black-hole information concept DOI 10.5281/zenodo.20346916; source-constructor firewall and optional thermal-access anchors.
Observation links
Effective horizon temperature access readoutThe QTT reading of the familiar horizon-temperature form as a first-law/access derivative after A7/A6 entropy is already fixed.QTT-reframedaccess readout closedReadout conventionExpand / Collapse
Aliases: T_eff horizon readout, first-law horizon temperature, Hawking temperature as access derivative

The same algebraic temperature form can appear without carrying Hawking source ontology. In QTT, temperature is the laboratory slope of energy against the already-counted entropy ledger, not proof that vacuum pairs created the entropy or destroyed information.

Standard-physics correlate: nearest standard frame: Hawking temperature; differs because QTT reads the same temperature form as a first-law/access derivative after entropy is fixed, not as proof of vacuum pair creation.
T_eff=(partial E/partial S_H^QTT)_{J,Q}=hbar*kappa_s/(2*pi*k_B*c).
Book pages (v10.01): black-hole information concept DOI 10.5281/zenodo.20346916; first-law/access temperature and A2 horizon-shadow anchors
Anchor note: Black-hole information concept DOI 10.5281/zenodo.20346916; first-law/access temperature and A2 horizon-shadow anchors.
Observation links
Hawking/greybody access readoutThe QTT interpretation of any Hawking-like thermality or greybody spectrum as optional access/readout phenomenology rather than source-level information erasure or entropy construction.QTT-reframedoptional access phenomenology / source constructor rejectedReadout conventionExpand / Collapse
Aliases: Hawking access readout, greybody access transfer, thermal horizon marginal

QTT does not need Hawking radiation as a rescue mechanism for black-hole information and does not use it to construct Bekenstein entropy. A thermal-looking radiation channel, if observed and convention-matched, is a laboratory marginal produced by access transfer weights after the source ledger is already finite and unitary.

Standard-physics correlate: nearest standard frame: Hawking radiation and greybody factors; differs because QTT keeps any thermal-looking exterior channel as optional laboratory access phenomenology, not as a source constructor or evidence for source-level information destruction.
N_out^lab(omega)=Gamma_access(omega) N_access(omega); the access spectrum is not a pure-to-mixed source map.
Book pages (v10.01): black-hole information concept DOI 10.5281/zenodo.20346916; optional thermal exterior flux, greybody/access, and source/readout split anchors
Anchor note: Black-hole information concept DOI 10.5281/zenodo.20346916; optional thermal exterior flux, greybody/access, and source/readout split anchors.
Observation links
Access-relative purityThe A7U rule that purity claims depend on the declared access window: the completed same-universe bundle may be pure while the visible subsystem is necessarily a marginal.QTT-reframedstructuralStructural theorem/guardrailExpand / Collapse
Aliases: relational purity, finite-access purity

QTT does not let a laboratory-visible subsystem pretend it is the whole object. If the access projector leaves co-members of the bundle unresolved, the subsystem carries mixedness relative to that cut. This is not a hidden-reservoir claim; the complement is same-universe modular share.

Standard-physics correlate: nearest standard frame: subsystem purity/mixedness; differs because QTT treats finite visible purity as access-relative while the completed same-universe bundle remains the source object.
rho_{S|w}^{(O)} = M rho_B M / Tr(M rho_B); eta_{O,S,w}=Tr(rho M_{O,S,w}); strict visible purity is access-relative.
Book pages (v10.01): A7U source concept DOI 10.5281/zenodo.20097247; molecular visibility transport concept DOI 10.5281/zenodo.20796924; Access Law, A5/A6/A7, Born/projection, and matter-wave source-access anchors
Anchor note: A7U source concept DOI 10.5281/zenodo.20097247; molecular visibility transport concept DOI 10.5281/zenodo.20796924.
Status reading: No-fit theorem, construction, or leading face; not automatically a precision numerical pass.
Observation links
Last-reference-write ruleThe rule that assigns terminal rank from the unique maximal physical reference write inherited by a durable record, not from the label attached to the readout channel.QTT-nativeconstructor theoremReadout conventionExpand / Collapse
Aliases: unique maximal physical write, terminal-rank rule, physical write ancestry

A read-only camera may reveal a record without changing its terminal rank. A later physical overwrite does change the rank. If two incomparable maximal writes remain, the history is ambiguous and cannot activate an A1 verdict. The rule therefore turns the source-versus-laboratory distinction into an auditable ancestry question instead of a verbal declaration.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
rank(R)=rank(max W_phys(R)) only when the maximal inherited physical write is unique; otherwise G_PT=0.
Book pages (v10.01): pp. 9-18, 177, 672, 680
Anchor note: Book v10.01: source/readout and reference-switch methodology pp. 889-894; the carrier-independent theorem is concept DOI 10.5281/zenodo.21739215.
Observation links
Access LawThe source/readout separation rule: observation is finite access to a completed address sector. Version 11.01 preserves the lawful central-effect theorem and adds a dated public-priority certificate, an explicit claim-allocation ledger, and a branch-resolved APPROVE/REFUSE/DEFER record-qualification interface for the unchanged sealed same-effect test.QTT-nativesource law closed / central-effect constructor closed / relative priority certified / finite-record interface closed / hardware qualification pendingReadout conventionExpand / Collapse

The Access Law is the reason QTT distinguishes source equations from laboratory numbers. A lab result is an access image through declared finite windows and independently built effects. The effect may be unsharp; the original central projector is recovered exactly as the sharp case. Neither an observed work gain nor a residual may be inverted into a convenient access operator. The immutable May QTT version was DataCite-registered 113 days 15 hours 36 minutes 55 seconds before Cho and Lee's arXiv:2609.01303v1, documenting version-specific earlier disclosure for the finite-address ontology and Access Law relative to that paper. The generic source-channel-measurement-record chain remains standard, and Cho and Lee retain ownership of their finite-library completion/refusal theorem and hardware demonstrations. Version 11.01 also separates frozen design labels from stochastic outcomes, so setting, epoch, timestamp, or calibration labels cannot manufacture a record response.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
O_lab=C_lab[P_A(rho_src)], partial rho_src/partial C_lab=0; [X,P]=J hbar(I-M_w); A_w(L)=I-Z_w[K_coh(L)^dagger K_coh(L)], 0<=A_w<=I; eta=Tr(rho A_w); Delta X Delta P >= (hbar/2)(1-eta); T_e(Y) != N_rec(T) != R_acc(T;Gamma); p_k(u)=Pr(U=u|X=x_k^(p)), q_k(u)=Pr(U=u|X=x_k^(q)); D=H^2(p,q), B=H^2(T#p,T#q), R=D-B>=0; APPROVE + original gates => eligible frozen QTT analysis; REFUSE or DEFER => INELIGIBLE_NO_THEORY_VERDICT.
Book pages (v10.01): pp. 9-18, 177, 672, 680
Anchor note: Book v10.01: pp. 9-18, 139-150, 177-182, 232, 431-433, 525, 529-530, 554-573, 668, 871, 1250; Observation as Access concept DOI 10.5281/zenodo.20114403.
Central access effectThe positive central effect constructed from coherent survival and address centralization before any work or commutator target is opened.A_wQTT-nativeeffect-level theorem / sharp-projector recovery exactReadout conventionExpand / Collapse
Aliases: A_w, operational access effect, thermodynamic access effect

The laboratory does not earn an access operator by observing a convenient deficit. It must first specify the coherent-survival kernel, the positive unital address-centralization map, the complete physical instrument, and the label transport. That independently constructed effect then carries one trace weight into the work ceiling and uncertainty floor. When the effect is idempotent and self-adjoint, it is exactly the original central projector.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
A_w(L)=I-Z_w[K_coh(L)^dagger K_coh(L)]; 0<=A_w<=I; eta=Tr(rho A_w); i_A=N^-1 I(K:Q); A_w^2=A_w=A_w^dagger recovers M_w.
Book pages (v10.01): pp. 9-18, 177, 672, 680
Anchor note: Term indexed to the v10.01 source pages listed above.
etaAccess efficiency in the Access Law; the trace weight of the independently constructed central access effect, with the co-location projector as its sharp special case.etaTextbookcanonicalReadout conventionExpand / Collapse

eta measures how much of the source/support is available to the finite readout. It is not a tunable excuse and cannot be inferred by inverting a work anomaly. The effect constructor must be frozen first. The information density i_A and eta are generally different quantities.

Standard-physics correlate: standard usage: ordinary textbook or audit notation; QTT keeps it mainly as support language rather than a renamed object.
eta=Tr(rho A_w); if A_w=M_w and M_w^2=M_w, eta=Tr(rho M_w); Delta X Delta P >= (hbar/2)(1-eta); generally i_A != eta.
Book pages (v10.01): pp. 337, 672, 680
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Current canonical vocabulary in the QTT book/corpus.
M_wThe projector onto shared or available completed-address support.QTT-nativecanonicalReadout conventionExpand / Collapse
Aliases: w-co-location projector, Access projector

M_w makes access precise: a measurement does not see everything, only the part whose completed-address support lies inside the relevant source/receiver overlap.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
M_W^{SR} = sum_{w in W(S) cap W(R)} |w><w|.
Book pages (v10.01): pp. 337, 672, 680
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Current canonical vocabulary in the QTT book/corpus.
w-co-locationExact shared completed-address support between systems, observers, or records.QTT-nativecanonicalReadout conventionExpand / Collapse

Co-location in w is not ordinary spatial contact and does not allow signalling. It is shared membership in a completed address support sector.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
E(S1,...,SN) iff intersection_i W(S_i) is nonempty.
Book pages (v10.01): pp. 83, 144, 435-438
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Current canonical vocabulary in the QTT book/corpus.
See also: Address w, M_w, Entanglement
Access windowA declared finite laboratory/readout map from a QTT source object to an observed number.QTT-reframedcanonicalReadout conventionExpand / Collapse

Access windows are the legal way a source theorem becomes an experiment-facing value. They must be printed, finite, and forbidden from absorbing residuals after the fact.

Standard-physics correlate: nearest standard concept: the usual textbook object remains recognizable, but QTT re-reads its source through finite address capacity and access.
X_obs = A_R[X_source], not X_obs = X_source by default.
Book pages (v10.01): pp. 13-18, 177, 672, 680
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Current canonical vocabulary in the QTT book/corpus.
Source/readout splitThe distinction between the internal QTT object and the laboratory image through finite access.QTT-reframedcanonicalReadout conventionExpand / Collapse

This is the method behind QTT's precision discipline: a formula can be source-closed while an access convention remains pending, or vice versa.

Standard-physics correlate: nearest standard concept: the usual textbook object remains recognizable, but QTT re-reads its source through finite address capacity and access.
X_lab = A_R[X_source].
Book pages (v10.01): pp. 9-18, 177, 672, 680
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Current canonical vocabulary in the QTT book/corpus.
Constructor domainThe inputs allowed to build a prediction before comparison with observed data.TextbookcanonicalReadout conventionExpand / Collapse

The constructor domain is the wall that keeps QTT from using the answer as an ingredient. It should contain axioms, printed constants, independent material inputs, and declared access maps only.

Standard-physics correlate: standard usage: ordinary textbook or audit notation; QTT keeps it mainly as support language rather than a renamed object.
Allowed: A1-A7, fixed kernels, independent inputs; forbidden: observed comparator.
Book pages (v10.01): pp. 22, 599-600, 974, 1072
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Current canonical vocabulary in the QTT book/corpus.
See also: Audit domain, No-smuggling, No-retune rule
Audit domainThe observed/comparator values used only after the prediction is constructed.TextbookcanonicalReadout conventionExpand / Collapse

The audit domain is where residuals are measured. It may falsify, support, or expose missing access rails, but it cannot feed back into the constructor.

Standard-physics correlate: standard usage: ordinary textbook or audit notation; QTT keeps it mainly as support language rather than a renamed object.
Residual = prediction - comparator; no parameter moves after audit.
Book pages (v10.01): pp. 118, 599-600, 974, 1072
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Current canonical vocabulary in the QTT book/corpus.
See also: Audit residual, Constructor domain, No-retune rule
No-smuggling ruleThe firewall forbidding observed target values from entering the constructor.QTT-nativecanonicalReadout conventionExpand / Collapse
Aliases: No-smuggling firewall, constructor firewall, observed-answer firewall

No-smuggling is QTT's self-defense against numerology. If a supposedly derived expression has a hidden derivative with respect to the observed answer, it fails the method. The newer Keystone and Constructor Alphabet papers make this a public audit rule rather than a slogan.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
partial A / partial observed = 0; for ruler rows, partial X_ctor / partial G_obs = 0 when the route claims non-G status.
Book pages (v10.01): pp. 198, 303, 599, 974, 1072, 1114
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Current canonical vocabulary in the QTT book/corpus.
No-smuggling firewallThe operational form of the no-smuggling rule: observed targets may audit a QTT constructor, but may not write it.QTT-nativemethod firewallReadout conventionExpand / Collapse
Aliases: constructor firewall, no observed-answer smuggling, no-G firewall

The firewall is the difference between a derivation and a numerology exercise. A legal QTT row declares its constructor domain, audit domain, status class, and falsifier before the comparator is allowed to judge the result.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
D_obs X_src = 0; partial X_ctor / partial y_obs = 0.
Book pages (v10.01): pp. 198, 303, 599, 974, 1072, 1114; Keystone Audit concept DOI 10.5281/zenodo.21141060; Constructor Alphabet concept DOI 10.5281/zenodo.21182091
Anchor note: QTT Main Book v10.01, no-smuggling/status anchors pp. 198, 303, 599, 974, 1072, 1114.
Target-fit burdenThe complete ledger of choices learned from target-bearing data before a model is credited with prediction or first-principles explanation.B_MQTT-nativepermanent corpus comparison protocolReadout conventionExpand / Collapse
Aliases: fit-burden vector, zero-target-fit comparison, B_M

A fitted effective model may be useful and may predict held-out samples, but its fitted coefficients are not thereby derived. QTT may claim a zero-target-fit empirical victory only on the same held-out observable and covariance. When QTT closes only the source fact, the allowed claim is a zero-fit source-explanatory victory with the trajectory verdict still open.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
B_M=(N_c,N_d,N_w,N_n,N_u,N_h). B_M != 0 means parameter-free derivation of the fitted output is open. Same observable + same covariance + B_QTT=0 + acceptable frozen prediction permits QTT-ZERO-TARGET-FIT-EMPIRICAL-VICTORY.
Book pages (v10.01): pp. 9-18, 177, 672, 680
Anchor note: Term indexed to the v10.01 source pages listed above.
Observation links
Keystone classThe status class that says whether a QTT result is unconditional, anchored, anchor-designated, reconstructive, or still Keystone-dependent.QTT-nativeclassification ledgerReadout conventionExpand / Collapse
Aliases: Keystone status class, U/A/A-des/R/K class, dimensional conditionality class

Keystone classes prevent public rows from mixing pure-number closures, dimensional anchored results, reconstruction rows, and absolute-ruler-dependent claims. They are especially important for the Planck/E-star/G corridor and for HVP, where Version 49 closed a zero-Class-K theorem and Version 50 subsequently executed the BaBar full-covariance row without changing that classification.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
K:{row objects}->{U,A,A-des,R,K}. Example HVP v49: (N_U,N_A,N_A-des,N_R,N_K)=(7,2,1,1,0).
Book pages (v10.01): scorecard/status pp. 126-128; source/readout pp. 9-22; Keystone Audit concept DOI 10.5281/zenodo.21141060
Anchor note: QTT Main Book v10.01, scorecard/status pp. 126-128 and source/readout pp. 9-22.
Numerical Provenance LedgerThe Keystone v3 ledger that records how a headline number was built, when it became public, which anchors it spends, and what could falsify it.QTT-nativeaudit theoremReadout conventionExpand / Collapse
Aliases: eight-field provenance card, constructor chronology ledger, target-Jacobian audit

A numerical landing is not allowed to carry one undifferentiated status. Each source object is read through eight fields: source word, constructor domain, logical load, dimensional anchor, forbidden-target Jacobian, public chronology, empirical status, and falsifier. A zero static target Jacobian proves that the printed expression does not directly contain the comparator; chronology still decides whether the landing was prospective or retrospective. Shared upstream rails are exposed so correlated agreements are not multiplied into fictional independent evidence. In the photon-edge word, 24 is an Artian Geometry source integer: the A5-X completed pixellate-bundle count, not a cube-rotation import and not a number selected from the laboratory target.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
P(X)=(S_X,D_X,L_X,A_X,J_X,C_X,E_X,F_X); Stat(X)=(equation,constructor,anchor,chronology,empirical,scope)_X.
Book pages (v10.01): pp. 9-18, 177, 672, 680
Anchor note: QTT Main Book v10.01, constructor/no-smuggling/status anchors pp. 118, 198, 303, 599, 974, 1072, 1114; Keystone Audit concept DOI 10.5281/zenodo.21141060.
Observation links
Constructor AlphabetThe declared finite alphabet used to judge whether a QTT constructor is a constrained source object rather than a post-hoc number hunt.QTT-nativenull-model auditReadout conventionExpand / Collapse
Aliases: constructor alphabet null model, null-model audit alphabet, anti-numerology alphabet

The Constructor Alphabet is the anti-numerology workbench. It asks what symbol set, operator grammar, and trial family were available before the audit, then charges the row for the search space instead of pretending a found expression was free.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
Declare alphabet A_ctor and trial family T before audit; judge significance against the null model, not against an unpriced expression hunt.
Book pages (v10.01): status/no-smuggling pp. 118, 198, 303, 599, 974, 1072, 1114; Constructor Alphabet null-model concept DOI 10.5281/zenodo.21182091; qtt-verify concept DOI 10.5281/zenodo.21138431
Anchor note: QTT Main Book v10.01, no-smuggling/status anchors pp. 118, 198, 303, 599, 974, 1072, 1114.
No-retune ruleOnce a prediction or ratio is locked, it is not adjusted after seeing the comparator.QTT-nativecanonicalReadout conventionExpand / Collapse

No-retune is the public-audit discipline behind the DOI corpus: a prediction should be frozen before it is judged.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
Same kernel, same inputs, no post-audit coefficient movement.
Book pages (v10.01): pp. 586, 1010-1011, 1022-1023
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Current canonical vocabulary in the QTT book/corpus.
See also: Pre-registration, Audit residual, No-smuggling rule
Pre-registration lockThe DOI/timestamp act of fixing a prediction before audit.TextbookcanonicalReadout conventionExpand / Collapse

Pre-registration makes the corpus auditable: readers can reconstruct when a claim was fixed and whether later data were allowed to move it.

Standard-physics correlate: standard usage: ordinary textbook or audit notation; QTT keeps it mainly as support language rather than a renamed object.
Concept DOI gives the stable family; timestamped deposits freeze the audit trail without becoming reader-facing citation targets.
Book pages (v10.01): pp. 118, 1247-1255
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Current canonical vocabulary in the QTT book/corpus.
Finite Access-Window LemmaThe general rule that an observed quantity must be a declared finite window acting on an internal QTT core.QTT-nativestructuralStructural theorem/guardrailExpand / Collapse

The lemma prevents direct source-to-observation comparison unless the access window is explicitly the identity.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
X_obs = X_core + sum Delta_i^R or X_obs = X_core prod_i exp(epsilon_i I_i^R).
Book pages (v10.01): pp. 13, 177
Anchor note: Book v10.01: Finite Access-Window Lemma entry.
Status reading: No-fit theorem, construction, or leading face; not automatically a precision numerical pass.
A1-A6 propagator discriminatorThe frozen difference between the A1-A6 finite-source phase and the declared continuum phase after an integer number of ticks.QTT-nativesource-derived / access pendingLocked predictionExpand / Collapse
Aliases: parameter-free wave phase residual, directional source propagator residual, DeltaPhi_N

The source law fixes the phase, sign, directional tensor, one-rail null, and hard A6 support before any laboratory row is read. A laboratory verdict still requires a source-to-field camera, ruler and orientation map, response, sensitivity, and covariance; those objects transport the theorem but do not choose its coefficients.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
DeltaPhi_N=N(Omega-K)=N K^3(1-sum_a n_a^4)/24+O(N K^5); eta_1=0; eta_2=(1-sum_a n_a^4)/24; gamma_2=3 eta_2.
Book pages (v10.01): Parameter-free source residual and source-to-readout gate; concept DOI 10.5281/zenodo.20723081
Anchor note: Term indexed to the v10.01 source pages listed above.
Observation links
Linear-free Lorentz-violation falsifierThe falsifier that a robust source-clean linear vacuum-dispersion term would break the A1 stencil theorem.QTT-nativeyellow-predictionLocked predictionExpand / Collapse
Aliases: linear-free dispersion falsifier, linear Planck-dispersion firewall

The wave-shadow paper does not claim an observed Lorentz-violation signal. It claims the opposite structural constraint: the legal source stencil is even, so a linear channel cannot be inserted without changing the source law.

Standard-physics correlate: nearest standard frame: Planck-scale Lorentz-violation test; differs by predicting the absence of a robust linear vacuum-dispersion channel from the source stencil.
Exact stencil is even in k and omega; leading formal correction is quadratic, while a linear-in-energy vacuum-speed term is forbidden.
Book pages (v10.01): A1 source-wave anchors and wave-shadow record; concept DOI 10.5281/zenodo.20723081
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Locked no-retune prediction awaiting decisive data.
Observation links
Completed historical recordThe monotone count of completed physical records, kept distinct from whatever memory a present laboratory can still retrieve.N_recQTT-nativetheorem distinctionReadout conventionExpand / Collapse
Aliases: completed-record count, historical completion ledger, N_rec

A completed record belongs to history: it certifies that a physical event closed and left a durable record somewhere in the declared ledger. Erasing one local copy, reversing a unitary subsystem, or returning an instantaneous microstate does not subtract that historical completion. This is the precise object that protects the arrow/record theorem from Loschmidt and recurrence objections; counting currently available storage instead would not.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
N_rec(T_2) >= N_rec(T_1) for T_2 >= T_1; a local erasure may change M_acc without changing N_rec.
Book pages (v10.01): pp. 9-18, 177, 672, 680
Anchor note: Book v10.01: A1 event order, A7 completion/persistence, A5-X completed-event support, entropy/measurement-record, and access-law anchors. The standalone theorem is concept DOI 10.5281/zenodo.21902886.
Observation links
Accessible memory stateThe present laboratory memory or record sector that can still be interrogated, erased, transferred, or hidden without rewriting completed history.M_accQTT-nativeoperational access objectReadout conventionExpand / Collapse
Aliases: retrievable record state, access memory, M_acc

Accessible memory is an instrument-facing state, not the historical ledger itself. It can decay, be erased, be moved behind an access cut, or be reconstructed from redundant fragments. The theorem therefore permits ordinary quantum erasure and recoherence of a qualified subsystem while denying that such operations delete a previously completed record from history.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
M_acc(T) = A_T[rho_rec(T)]; M_acc may decrease under local erasure while Delta N_rec = 0.
Book pages (v10.01): pp. 9-18, 177, 672, 680
Anchor note: Book v10.01: source/readout, Access Law, Born/projection, measurement-record, and entropy anchors. Observation as Access is concept DOI 10.5281/zenodo.20114403.
Observation links
Boundary half-share ruleThe cross-sector grammar that a minimal symmetric boundary crossing carries a one-half share unless extra structure is explicitly derived.QTT-nativeyellow-predictionLocked predictionExpand / Collapse
Aliases: minimal symmetric boundary crossing rule, A6 boundary half-share

The rule prevents arbitrary boundary multipliers. Later sector papers must either use the half-share or print why the crossing has more structure than a single two-side symmetric boundary.

Standard-physics correlate: nearest standard frame: boundary coefficient or interface normalization; differs by requiring a minimal symmetric boundary crossing to carry a one-half share unless extra source structure is printed.
minimal symmetric boundary crossing => 1/2 share; PMNS example: b_partial=(1/2)(1/3)=1/6.
Book pages (v10.01): A6/A7 boundary anchors and PMNS source-access anchors pp. 158-162, 1113-1114, 1134-1138; concept DOI 10.5281/zenodo.20744161
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Locked no-retune prediction awaiting decisive data.
Observation links

Core Equations and Theorems

36 terms
A2 Einstein-field dynamicsThe theorem that the infrared Einstein field equations are the laboratory metric shadow of A2 endurance, not a primitive smooth-continuum source law.QTT-reframedframework theoremTheorem within QTTExpand / Collapse
Aliases: A2 endurance-to-Einstein bridge, Einstein-field IR shadow, A2 IR field dynamics

A2 supplies sink counts and support current. The laboratory can then draw a smooth metric field only after the IR uniqueness gate is passed: locality, address-relabeling covariance, second-order capacity response, and local endurance closure. QTT therefore recovers GR's field equation as an infrared readout while still denying the human-invented smooth continuum as source ontology.

Standard-physics correlate: nearest standard frame: Einstein field equations and GR weak-field tests; differs because QTT derives them as the infrared metric shadow of finite A2 endurance, not as source-continuum ontology.
G_mu_nu + Lambda_A3 g_mu_nu = (8*pi*G_A/c^4) T_mu_nu^A2; G_A = ell_tilde^2 c^3 / hbar.
Book pages (v10.01): A2 Einstein-field concept DOI 10.5281/zenodo.20763263; A2 endurance, G, proper-time, Einstein-Hilbert, and continuum-shadow anchors
Anchor note: Term indexed to the v10.01 source pages listed above.
Observation links
Universal endpoint gainThe dimensionless source-to-laboratory gain that relates the endurance coupling scale to the gravitational endpoint readout. The Tier-K no-go theorem proves that the core source axioms do not automatically choose its full-gain value.chi_gQTT-nativeno-go closed / branch pendingReadout conventionExpand / Collapse
Aliases: chi_g, gravity endpoint gain, source-to-laboratory gravity gain

A finite source current and a finite capacity bound do not by themselves declare how a laboratory camera reads that current. In the stated local real-linear, origin-preserving, SO(3)-equivariant class, the residual freedom is one scalar gain, not an unprinted fit parameter.

Standard-physics correlate: nearest standard frame: source-to-detector response gain; differs because QTT treats the source-to-laboratory gain as a separately typed camera coefficient, bounded by the declared source class but not assumed to saturate a per-address capacity bound.
G_end=chi_g G_A, 0<=chi_g<=1; P_chi(J)=chi J/t_A. A2+A5-X+A6+A7 do not imply chi_g=1 in the declared camera class.
Book pages (v10.01): pp. 268, 381, 435-438, 535, 751
Anchor note: Term indexed to the v10.01 source pages listed above.
Observation links
Finite-address correction mapThe first QTT-specific correction map under the smooth A2 Einstein/Newton field: shell coverage, finite patch count, estimator covariance, and causal turn-on.QTT-nativeyellow-predictionLocked predictionExpand / Collapse
Aliases: A2 finite-address correction, A2 patch-count estimator, traction-count covariance, causal shell turn-on

The smooth field is a mean readout over many address events. The correction map refuses imaginary sub-cell motion: a laboratory patch sees integer space-quantum hits whose averages and fluctuations produce the apparent continuous acceleration field.

Standard-physics correlate: nearest standard frame: stochastic/covariance correction to a coarse field readout; differs because the event count, shell coverage, causal turn-on, and covariance are fixed by the A2 address ledger.
f_cover=mu/n^2; lambda=(M/m_tilde)(Delta T/t_tilde)A/(4*pi*r^2); E[g_hat_P]=-(G_A M/r^2) r_hat; Var(g_hat_P)/|E g_hat_P|^2=1/lambda; E[g_hat_P(r,k)]=-(G_A M/r^2)Theta(k-n) r_hat.
Book pages (v10.01): A2 Einstein-field concept DOI 10.5281/zenodo.20763263; finite shell coverage, causal turn-on, patch estimator, and count-covariance anchors
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Locked no-retune prediction awaiting decisive data.
Observation links
AB holonomyThe QTT source-access reading of electromagnetic and gravitational Aharonov-Bohm phases.QTT-reframedsource-equation closedReadout conventionExpand / Collapse
Aliases: Aharonov-Bohm holonomy, Artian holonomy, A4 dial holonomy, A2 endurance holonomy

Electromagnetic AB is the A4 real-J dial reading of a completed address-loop rotation. Gravitational AB is the A2 endurance/proper-time reading of a matter-wave action difference. The usual complex phase is the laboratory projection J -> i, not the source primitive.

Standard-physics correlate: nearest standard concept: the usual textbook object remains recognizable, but QTT re-reads its source through finite address capacity and access.
W_gamma^QTT = exp{J[(q/(hbar c)) int_gamma A_mu dx^mu - (mc^2/hbar) int_gamma d tau_A2]}; lambda_e^AB=|delta S_e^AB|/(hbar n_e)<=1.
Book pages (v10.01): pp. 268, 381, 435-438, 535, 751
Anchor note: Term indexed to the v10.01 source pages listed above.
Observation links
A2 source packetThe finite source object a blind A2 tabletop test must preserve beneath the same reduced infrared phase.QTT-nativeyellow-predictionLocked predictionExpand / Collapse
Aliases: finite A2 address packet, A2 blind-test packet, endurance source packet

Ordinary GR/QM may compress two protocols into the same reduced action. QTT asks whether the finite A2 address packet underneath that phase remains distinguishable through declared covariance rows. The packet must be frozen before unblinding.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
A_A2(P)=({e},{delta S_e^A2},{n_e},{lambda_e^A2},C_P,Sigma_P^lab); lambda_e^A2=|delta S_e^A2|/(hbar n_e); Theta_IR(P_A)=Theta_IR(P_B) but A_A2(P_A)!=A_A2(P_B).
Book pages (v10.01): pp. 268, 381, 435-438, 535, 751
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Locked no-retune prediction awaiting decisive data.
Observation links
Retarded support theoremThe support-level QTT radiation arrow: retarded support is allowed only along nonnegative completed-record advance. In the current Arrow paper this ancestor statement is promoted to the closed retarded address-operator row.QTT-reframedsupport-level ancestor / current operator row closedReadout conventionExpand / Collapse
Aliases: radiative retarded support, support-level radiation arrow

Retardedness is not treated as a loose convention pasted onto symmetric equations. In earlier versions it was held at support level; the current family closes the operator statement as the physical forward address operator.

Standard-physics correlate: nearest standard frame: retarded Green functions and radiation boundary conditions; differs by tying allowed support to nonnegative completed-record advance rather than adding retardedness as an independent convention.
supp G_ret subseteq {Delta N_rec >= 0}; P_T = (1/2)(I + sigma_T T_hat).
Book pages (v10.01): radiative/outgoing-support anchors and arrow-of-time concept DOI 10.5281/zenodo.20761499; superseded operationally by the retarded address operator row in the current concept family
Anchor note: Term indexed to the v10.01 source pages listed above.
Retarded address operatorThe current QTT radiative arrow statement: the physical operator is the forward completed-address operator and the advanced source-to-physical channel is blocked.QTT-reframedsource-equation closedReadout conventionExpand / Collapse
Aliases: retarded address-operator theorem, G_J plus, forward address Green operator

Radiation does not need retardedness pasted onto a symmetric equation as taste. The physical operator has forward address support because A1 orders events and A7 preserves completed source records; this is not inferred from A3 volume growth.

Standard-physics correlate: nearest standard frame: retarded Green operator; differs because QTT closes the physical operator as the forward address operator G_J^+ and blocks advanced source-to-physical support.
G_phys^QTT = G_J^+ = Theta_w L_J^-1; Pi_phys G_J^- Pi_src = 0; supp G_phys^QTT subset {Delta N_rec >= 0}.
Book pages (v10.01): arrow-of-time concept DOI 10.5281/zenodo.20761499; Maxwell/radiative address-operator anchors
Anchor note: Term indexed to the v10.01 source pages listed above.
Black-hole information-loss denialThe QTT claim that a black hole does not destroy information at the source: the horizon is an access cut through one finite A7/A6 ledger, and Bekenstein entropy is counted without invoking Hawking radiation as a source constructor.QTT-reframedsource-equation closedReadout conventionExpand / Collapse
Aliases: A7 black-hole information theorem, black-hole information paradox denial, no pure-to-mixed source loss

A black hole is a finite A2/A6/A7 bundled object. An outside observer sees a horizon-cut marginal, so an exterior channel may look thermal and mixed. QTT denies that this marginal is the whole source state. The hidden face is same-universe completion, not an external reservoir, A7 closure preserves the completed modular ledger, and the Bekenstein quarter comes from boundary capacity counting before any thermal readout.

Standard-physics correlate: nearest standard frame: black-hole information paradox; differs because QTT derives the Bekenstein count without a Hawking source constructor, denies source-level pure-to-mixed destruction, and allows mixed laboratory marginals only through visible/hidden access cuts.
Q_Sigma=8*pi*ell_tilde^2; N_H=A/(4*ell_tilde^2); S_H^QTT=k_B*A/(4*ell_tilde^2).
rho_vis(T)=Tr_hid rho_src(T); forbidden source move: pure rho_src -> fundamentally mixed rho_src by horizon loss.
Book pages (v10.01): black-hole information concept DOI 10.5281/zenodo.20346916; QTT Main Book v10.01 A2/A6/A7, entropy, access, horizon, Page-envelope, and finite-core anchors
Anchor note: Black-hole information concept DOI 10.5281/zenodo.20346916; QTT Main Book v10.01 A2/A6/A7, entropy, access, horizon, Page-envelope, and finite-core anchors.
Observation links
Source-unitary evaporationThe QTT reading of any black-hole drain/readout as source-unitary ledger transfer. Evaporation is not needed to save unitarity, and Hawking radiation is not a source constructor.QTT-reframedsource-equation closed / microscopic programme pendingReadout conventionExpand / Collapse
Aliases: unitary ledger evaporation, source-unitary black-hole evaporation

The source ledger transfers accessible support through finite A2/A7 channels only if a declared exterior channel exists; it does not need radiation to keep information alive. What is pending is the fully populated species-resolved microscopic horizon S-matrix, not the permission to destroy source information.

Standard-physics correlate: nearest standard frame: unitary black-hole evaporation programme; differs because QTT sources unitarity in A7 bundle closure and A6 finite capacity rather than in an added rescue mechanism.
rho_src(T2)=U_A7(T2,T1) rho_src(T1) U_A7^dagger; Tr rho_src and source purity are preserved inside the legal bundle.
partial S_H^QTT/partial(Hawking flux)=0.
Book pages (v10.01): black-hole information concept DOI 10.5281/zenodo.20346916; A7 bundle closure, A2 transfer, entropy, and Page-envelope anchors
Anchor note: Black-hole information concept DOI 10.5281/zenodo.20346916; A7 bundle closure, A2 transfer, entropy, and microscopic S-matrix programme anchors.
Observation links
Bekenstein without HawkingThe v4.0 black-hole entropy claim: QTT derives the Bekenstein area quarter from A7/A6 boundary capacity counting before any radiation or temperature readout is introduced.QTT-reframedGREEN source count closedReadout conventionExpand / Collapse
Aliases: Bekenstein entropy without Hawking radiation, A7/A6 black-hole quarter, black-hole entropy without Hawking constructor

The entropy is a count of legal horizon boundary addresses. The quarter is not borrowed from a Hawking flux calculation; it is the boundary-share ratio 2pi/8pi. This lets the black-hole information row keep the observed Bekenstein structure while refusing to treat Hawking radiation as the source constructor.

Standard-physics correlate: nearest standard frame: Bekenstein-Hawking entropy; differs because QTT derives the area quarter from A7/A6 boundary counting without needing Hawking radiation as a source constructor.
Q_Sigma=8*pi*ell_tilde^2; N_H=2*pi*A/Q_Sigma=A/(4*ell_tilde^2); S_H^QTT=k_B*A/(4*ell_tilde^2); 1/4=2pi/8pi.
Book pages (v10.01): black-hole information concept DOI 10.5281/zenodo.20346916; A7/A6 boundary-count entropy anchors
Anchor note: Black-hole information concept DOI 10.5281/zenodo.20346916; A7/A6 boundary-count entropy anchors.
Observation links
Hamiltonian frameworkThe laboratory Hamiltonian as an access image of the deeper substrate ledger.QTT-nativestructuralStructural theorem/guardrailExpand / Collapse

QTT does not treat H as a primitive operator floating in Hilbert space. H is the lab-access representation of the source update rule over finite address objects.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
X^{n+1} = Pi_A7 Pi_A6 exp(Delta T J_h H_h^n / hbar) X^n.
Book pages (v10.01): pp. 151, 763-767, 832-837
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: No-fit theorem, construction, or leading face; not automatically a precision numerical pass.
See also: Artian Lagrangian Framework, Computational framework, J, A6, A7
Completed-event HamiltonianThe source theorem that fixes the primitive two-state Hamiltonian direction, proves the local magnitude no-go, and isolates the extra closure premise required to determine its coefficient.QTT-nativestructuralTheorem within QTTExpand / Collapse
Aliases: Artian Completed-Event Hamiltonian Theorem, primitive completed-event generator

A completed source event has a finite primitive exchange face. Exchange symmetry and self-adjointness leave one physical generator direction after the identity term is quotiented away. That classification does not manufacture a magnitude: every legal C_H remains in the local family until an independent record-spend allocation theorem closes the global action budget.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
Comm(S_e)_sa / R I ~= R S_e; H_tot(C_H) = E_*[(1-C_H/2)I + (C_H/2)S_e], 0 < C_H <= 1. The direction and coefficient no-go are closed; C_H = 1 is conditional on the global one-action allocation identity.
Book pages (v10.01): completed-address action pp. 52-61; finite capacity pp. 72-75 and 254-262; real-J source law pp. 139-145 and 1249-1250; A2 endurance pp. 200, 215-216, 238-239; finite Noether/action bridges pp. 659-662, 717, 817; concept DOI 10.5281/zenodo.21428033
Anchor note: Book v10.01 anchors: completed-address action pp. 52-61; finite capacity pp. 72-75 and 254-262; real-J source law pp. 139-145 and 1249-1250; A2 endurance pp. 200, 215-216, 238-239; finite Noether/action bridges pp. 659-662, 717, 817.
Status reading: No-fit theorem, construction, or leading face; not automatically a precision numerical pass.
Record-spend quotientThe quotient that groups multiple records of one primitive funded event into one spend class, preventing the same completed event from being charged twice.P_EQTT-nativecandidateCandidate / map pendingExpand / Collapse
Aliases: funded spend classes, record-funding quotient

A transport receipt, A2 endurance record, A3 creation record, A7 closure record, boundary record, and internal-path record need not be independent recipients of action. The quotient asks which are lawful images of the same funded source transaction before any coefficient is inferred. Its mathematical work order is explicit; the complete funding equivalence and path-complete valuation remain amber.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
R_E = {Tr, A3, A2, A7, Bdy, Int, Null}; P_E = R_E / ~_fund. A legal valuation a_E: P_E x Hist(E) -> [0,hbar] is source-natural, additive, null-invariant, refinement-covariant, comparator-independent, and normalized to hbar per completed event.
Book pages (v10.01): completed-address action pp. 52-61; A2 endurance pp. 200, 215-216, 238-239; A6/A7 closure pp. 254-268; concept DOI 10.5281/zenodo.21428033
Anchor note: Book v10.01 anchors: completed-address action pp. 52-61; A2 endurance pp. 200, 215-216, 238-239; A6/A7 closure pp. 254-268.
Status reading: Printed formula or framework with a named missing lemma, access map, or audit rail.
Wave equation as shadowThe standard continuum wave equation read as the smooth-access image of an exactly bounded finite A1 real-J free-packet evolution.QTT-reframedframework theoremTheorem within QTTExpand / Collapse
Aliases: A1 wave shadow, d'Alembert shadow, source-wave shadow

QTT does not start from an already smooth field living in spacetime. The source object is a completed-address dial update restricted to the A6-admissible packet space; the laboratory d'Alembert equation is what a coarse enough access window sees.

Standard-physics correlate: nearest standard frame: continuum wave equation; differs because d'Alembert propagation is the smooth-access shadow of a finite A1 real-J dial stencil.
[theta_J(n+1,m)-2 theta_J(n,m)+theta_J(n-1,m)]/t_tilde^2 = (c_QTT^2/ell_tilde^2) Delta_ell theta_J(n,m) -> partial_T^2 theta_J - c_QTT^2 nabla^2 theta_J = 0.
Book pages (v10.01): A1/A4/A5/A6/A7 source-wave anchors and compact corpus ledger; concept DOI 10.5281/zenodo.20723081
Anchor note: Term indexed to the v10.01 source pages listed above.
Observation links
Discrete real-J dial ledgerThe finite address-tick update whose smooth access limit becomes wave propagation.QTT-nativeframework theoremTheorem within QTTExpand / Collapse
Aliases: real-J source stencil, A1 dial update, J-dial wave ledger

The ledger is a source-law object: it counts legal neighbouring address transfers in the real-J dial before a continuum wave field is drawn by the laboratory reader.

Standard-physics correlate: nearest standard frame: lattice wave update; differs because the update is a source clock/address rule, not a numerical discretization of an already-continuum field.
c_QTT = ell_tilde/t_tilde; the A1 second-difference update is the source law, not a numerical approximation added after the fact.
Book pages (v10.01): A1/A4/A5/A6/A7 source-wave anchors; concept DOI 10.5281/zenodo.20723081
Anchor note: Term indexed to the v10.01 source pages listed above.
Observation links
Real-J orthogonal wave propagatorThe exact first-order real-J lift of the finite second-order wave recurrence on the A6 packet space.QTT-nativesource theoremTheorem within QTTExpand / Collapse
Aliases: A6 wave rotor, exact wave quadrature propagator, U_A6

The companion quadrature is not an extra field fitted to stabilize the stencil. It is the real-J orientation needed to rotate every admitted source packet without changing its finite quadratic packet norm.

Standard-physics correlate: nearest standard frame: a unitary or symplectic first-order lift of a second-order wave recurrence; differs because the real-J quadrature is constructed exactly on the A6 packet space before a continuum field is introduced.
C=I-2Q; R=2 sqrt(Q(I-Q)); U_A6=[[C,R],[-R,C]]; U_A6^T U_A6=I. For every integer tick N, U_A6^N is the corresponding Chebyshev polynomial in C and R.
Book pages (v10.01): A4 real-J quadrature and A6 free-packet theorem; concept DOI 10.5281/zenodo.20723081
Anchor note: Term indexed to the v10.01 source pages listed above.
Observation links
Chebyshev all-tick wave propagatorThe exact integer-tick evolution of every lawful A6 free packet, written as a polynomial of the already fixed one-tick rotor.QTT-nativesource theoremTheorem within QTTExpand / Collapse
Aliases: exact all-tick wave rotor, Chebyshev packet propagator, U_A6 power law

Chebyshev polynomials are standard mathematics. The QTT claim is that this polynomial is the physical evolution of a finite A1 source packet on the A6 lawful-history space, including the constant and alternating endpoint modes, with no fitted effective propagation coefficient at later ticks.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
U_A6^N=[[T_N(C), R U_{N-1}(C)],[-R U_{N-1}(C), T_N(C)]], N>=1; U_A6^{-N}=(U_A6^N)^T.
Book pages (v10.01): A1/A4/A6 exact integer-tick wave theorem; concept DOI 10.5281/zenodo.20723081
Anchor note: Term indexed to the v10.01 source pages listed above.
Observation links
Stencil dispersionThe exact dispersion relation of the A1 wave-shadow stencil.QTT-reframedframework theoremTheorem within QTTExpand / Collapse
Aliases: sine-squared stencil dispersion, A1 dispersion

The finite source stencil does not merely approximate continuum propagation. Its exact parity structure says which Lorentz-violation channels are legal and which are not.

Standard-physics correlate: nearest standard frame: lattice dispersion relation; differs because it is the exact source dispersion that forbids a linear vacuum-dispersion term by parity.
sin^2(omega t_tilde/2) = (c_QTT t_tilde/ell_tilde)^2 sum_a sin^2(k_a ell_tilde/2).
Book pages (v10.01): A1 source-wave anchors and wave-shadow record; concept DOI 10.5281/zenodo.20723081
Anchor note: Term indexed to the v10.01 source pages listed above.
Observation links
Artian Lagrangian FrameworkThe action-language companion to the Hamiltonian framework: a finite source-action ledger over completed A5-X events whose laboratory Lagrangian is an Access-Law image.QTT-reframedframework theoremTheorem within QTTExpand / Collapse
Aliases: QTT Lagrangian framework, Source Lagrangian, Access-projected Lagrangian

The source object is not a smooth continuum action assumed first. A history is legal only when its completed address events close the A7 bundle, obey the A6 action spend, carry A5-X four-volume support, and survive the declared access window. The laboratory least-action integral is the smoothed readout of that finite source ledger.

Standard-physics correlate: nearest standard concept: the usual textbook object remains recognizable, but QTT re-reads its source through finite address capacity and access.
S_src[Gamma] = sum_{E in C_T(Gamma)} L_src,E(q_E,D_T q_E,J_E,Q_bundle,E) Delta T_E

C_T = {E: Q_bundle,E = 2pi, E_E t_tilde = hbar, Delta V_4,E = 4pi ell_tilde^4}

S_lab[phi;W] = A_W[S_src[Gamma]] = int_W d^4x sqrt(-g) L_lab(phi,nabla phi,x).
Book pages (v10.01): Lagrangian framework v2.1: pp. 481-596, 691-770, 816-901, 1749-1786; Book v10.01 anchors pp. 42-61, 100-106, 425-427, 809-811
Anchor note: Lagrangian framework v2.1 and Book v10.01 anchors: source/access ontology pp. 42-61; A1-A7 pp. 191-217; hbar from A5-X pp. 809-811; least action pp. 425-427.
Finite action ledgerThe finite sum of action spends over legal completed events before any continuum laboratory integral is introduced.QTT-reframedframework theoremTheorem within QTTExpand / Collapse
Aliases: Source action ledger, completed-event action sum

The finite action ledger is the receipt layer: each completed event has an action cost payable under A6 and bundle closure under A7. Continuum field theory remains useful, but only after this source ledger is read through a finite access window.

Standard-physics correlate: nearest standard concept: the usual textbook object remains recognizable, but QTT re-reads its source through finite address capacity and access.
S_src[Gamma;T0,T1] = sum_{E in C_T(Gamma;T0,T1)} Delta S_E,
Delta S_E^tick = E_E t_tilde = hbar,
D_T q_E = (q_{E+} - q_E)/(T_{E+} - T_E).
Book pages (v10.01): Lagrangian framework v2.1: pp. 481-596 and compact master equation pp. 1749-1786; Book v10.01 anchors pp. 42-61, 100-106, 809-811
Anchor note: Term indexed to the v10.01 source pages listed above.
Computational framework v1.0The DOI-minted computational contract for QTT problem tuples, update operators, projections, capacity constraints, and audit protocols.Q_hQTT-nativecanonicalReadout conventionExpand / Collapse

The computational framework translates book ontology into a reproducible object: configuration, address set, clock step, Hamiltonian, constraints, projections, and observations.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
Q_h = (C_h, W_h, Delta T, ell_tilde, J, H_h, A_h, B_h, C_h, P_lab, O_h).
Book pages (v10.01): pp. 1247-1255
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Current canonical vocabulary in the QTT book/corpus.
Least actionHamilton's principle as a capacity-rotor theorem rather than an independent variational postulate.QTT-reframedstructuralStructural theorem/guardrailExpand / Collapse

QTT reads stationary action as the legal closed phase route for a finite capacity rotor. In the Lagrangian framework this is sharpened into stationarity of the finite source-action ledger before the laboratory integral appears.

Standard-physics correlate: nearest standard concept: the usual textbook object remains recognizable, but QTT re-reads its source through finite address capacity and access.
d theta = dS_tot / hbar; h = 2pi hbar; delta S_tot = 0.

Lagrangian form: delta S_src = 0 -> finite QTT Euler-Lagrange equations ->_access delta S_lab = 0.
Book pages (v10.01): pp. 388, 393, 433-435, 1249
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: No-fit theorem, construction, or leading face; not automatically a precision numerical pass.
Reader links
Feynman path integralThe complex path integral as the laboratory shadow of real-J rotor phase and finite A6 path admissibility.QTT-reframedstructuralStructural theorem/guardrailExpand / Collapse

QTT keeps the path integral but changes its ontological reading: paths carry real rotor phase, and A6 filters inadmissible over-capacity histories.

Standard-physics correlate: nearest standard concept: the usual textbook object remains recognizable, but QTT re-reads its source through finite address capacity and access.
K_J(b,a) = int D[x] D_A6[x] R_J(S[x]/hbar) -> int D[x] exp(iS[x]/hbar).
Book pages (v10.01): pp. 433-435, 1249
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: No-fit theorem, construction, or leading face; not automatically a precision numerical pass.
See also: Least action, Real-J phase, Capacity
Schrodinger projectionThe standard Schrodinger equation is recovered from a real-J source ledger after a fixed normalized coisometric address readout and an address-blind self-adjoint generator are supplied.QTT-reframedconditional recovery / exact given stated premisesReadout conventionExpand / Collapse

The wavefunction is a laboratory readout rather than the source substrate. The projection theorem is exact once its readout and generator premises are declared; it does not claim that A1-A7 uniquely select the Galilean Hamiltonian.

Standard-physics correlate: nearest standard concept: the usual textbook object remains recognizable, but QTT re-reads its source through finite address capacity and access.
P_c rho=sum_w conjugate(c_w)rho_w, ||c||_2=1; J hbar partial_T rho=H_T rho -> i hbar partial_tau Psi=H_lab Psi, H_lab=H_T/N for d tau=N dT.
Book pages (v10.01): pp. 381, 435-438, 1247
Anchor note: Term indexed to the v10.01 source pages listed above.
Wavefunction projectionThe laboratory wavefunction is the fixed normalized address functional applied to the source ledger.QTT-reframedfixed-readout representationReadout conventionExpand / Collapse

The readout is a coisometry over completed address support, not an unrestricted or retrospectively chosen sum. Measurement remains access to a recorded sector rather than a metaphysical destruction of the source state.

Standard-physics correlate: nearest standard concept: the usual textbook object remains recognizable, but QTT re-reads its source through finite address capacity and access.
Psi=P_c rho=sum_w conjugate(c_w)rho_w, c in l^2(W), ||c||_2=1, P_c P_c^*=I.
Book pages (v10.01): pp. 435-438, 1247
Anchor note: Term indexed to the v10.01 source pages listed above.
Born ruleThe squared real-J norm is the unique finite additive address-capacity form in the paper's declared symmetry class; its use as laboratory frequency requires explicit bridge premises.QTT-reframedquadratic capacity closed / frequency representation conditionalReadout conventionExpand / Collapse

QTT counts normalized source capacity before probability is read. The algebraic square c(w)=||rho(w)||_J^2 is closed in the declared class. Identifying that capacity with address frequency and representing fixed-address outcome weights by a trace functional remain conditional rather than being hidden inside the word measurement.

Standard-physics correlate: nearest standard concept: the usual textbook object remains recognizable, but QTT re-reads its source through finite address capacity and access.
c(w)=||rho(w)||_J^2; if mu(w)=c(w) and the fixed-address functional is normalized, effect-additive, and instrument-equivalent, p(alpha|M)=sum_w c(w)<psi_w|Pi_alpha psi_w>_J=Tr_J(rho_eff Pi_alpha).
Book pages (v10.01): pp. 268, 435-438, 1247
Anchor note: Term indexed to the v10.01 source pages listed above.
Measurement as accessObservation is finite access to a completed address sector. Version 11.01 preserves the operational central-effect constructor, exact information identity, thermodynamic work ceiling, scalar-inversion no-go, and exact sharp-projector recovery, while adding the dated priority, record-type, and independent qualification layers.QTT-reframedframework theorem / central-effect theorem / relative priority certified / QTT discriminator independently qualified and sealedReadout conventionExpand / Collapse

The measurement problem is reorganized by separating source object, access event, pointer, completed historical record, accessible memory, and operational access effect rather than treating collapse as a new dynamical primitive. A local erasure may remove accessible memory without deleting the completed historical event. One independently constructed effect must carry both the thermodynamic and canonical consequences; it cannot be selected from either target after the fact.

Standard-physics correlate: nearest standard concept: the usual textbook object remains recognizable, but QTT re-reads its source through finite address capacity and access.
Observation=a(S,T)=a(O,T); A_w=I-Z_w[K_coh^dagger K_coh]; eta=Tr(rho A_w); i_A=N^-1 I(K:Q); collapse=conditional access to a recorded sector; N_rec is history dependent while M_acc(tau) is laboratory-accessible memory.
Book pages (v10.01): pp. 138, 435-438, 672, 680
Anchor note: Term indexed to the v10.01 source pages listed above.
Planck-mass superselectionThe former claim that local A6 capacity enforces one global Planck-mass coherence ceiling is not a consequence of the stated axioms.QTT-reframednot derived / no-go certifiedReadout conventionExpand / Collapse

A6 may bound what one completed address can carry, but K legal addresses can jointly carry K local unit budgets. A global ceiling would require a separate cross-address no-stacking or shared-capacity theorem; it may not be inferred by renaming a local budget.

Standard-physics correlate: nearest standard concept: the usual textbook object remains recognizable, but QTT re-reads its source through finite address capacity and access.
B_{w_j}=1 and Q_{w_j}^{bundle}=2*pi for j=1,...,K imply B_total=sum_j B_{w_j}=K; therefore local B_w<=1 does not imply B_total<=1.
Book pages (v10.01): pp. 263, 534, 539
Anchor note: Term indexed to the v10.01 source pages listed above.
See also: A7, A6, Q_bundle
GIn QTT, G is not primitive once the Artian micro-ruler and endurance ledger are admitted; the current paper tracks this through a six-face Artian G ledger.QTT-reframedderived/removedTheorem within QTTExpand / Collapse
Aliases: Newton's constant, Artian G

The claim is not that a number was fitted to Planck length. It is that gravitational coupling is the continuum bridge of the Artian ruler, tick, and endurance capacity ledger. The current six-face paper then checks whether unrelated sector faces read the same capacity endpoint without observed G or observed alpha writing the source equations. The dimensional anchor is kept honest: alpha alone does not determine a dimensionful G.

Standard-physics correlate: nearest standard concept: the usual textbook object remains recognizable, but QTT re-reads its source through finite address capacity and access.
G_A = ell_A^2 c^3 / hbar = hbar c^5/E_*^2; G_A^(gamma H)=6.674301412456e-11 m^3 kg^-1 s^-2, z_G=+0.009416 sigma; G_mu_nu + Lambda_A3 g_mu_nu = (8*pi*G_A/c^4)T_mu_nu^A2.
Book pages (v10.01): pp. 56, 238-241, 268, 1248
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Axiom-forced replacement of a fitted or inherited input, in the book's status vocabulary.
Observation links
Endurance currentThe speed-like volumetric flux of space-quantum renewal around mass.J_endQTT-nativecanonicalReadout conventionExpand / Collapse

Endurance current is the substrate flux whose shell-averaged continuum shadow becomes gravitational acceleration. In the current A2 field theorem it is the bridge from sink counting to Newton-Poisson normalization and then to the IR metric field equation.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
div J_end = - (V_SQ / (m_tilde t_tilde)) rho; g = (c / ell_tilde) J_end; lambda=(M/m_tilde)(Delta T/t_tilde)A/(4*pi*r^2).
Book pages (v10.01): pp. 198-208, 238-241, 268
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Current canonical vocabulary in the QTT book/corpus.
Inertia theoremA positive finite source operator gives one mass spectrum whose A1 free-branch curvature, A1 weak-lapse coupling, and A2 endurance rate read as inertial, passive, and active mass. Newton's second law is the low-velocity shadow of that operator theorem.QTT-reframedtheorem within QTT / sector population openReadout conventionExpand / Collapse

Inertial mass is not inserted as an unrelated mechanical constant. Each completed address contributes a visible funded fraction to a finite source operator. A1 makes its eigenvalue the curvature of the free worldline action and the coefficient of the weak-lapse coupling; A2 reads the same eigenvalue as active endurance demand. A6 and A7 bound each address and make the operator finite, but do not by themselves populate the physical sector or select a particular composite spectrum.

Standard-physics correlate: nearest standard concept: the usual textbook object remains recognizable, but QTT re-reads its source through finite address capacity and access.
B_R = H_rest/E_* = M_in/m_* = M_pass/m_* = M_active/m_* = t_tilde Gamma_A2; H_b^2-c^2 p^2=b^2 E_*^2; F=b m_* a; 0<=b_p<=1 and 0<=B_R<=|P_R|.
Book pages (v10.01): pp. 236-241, 253-266, 695-704, 1247-1248; inertial-mass operator concept DOI 10.5281/zenodo.20059779
Anchor note: Term indexed to the v10.01 source pages listed above.
Navier-Stokes shadowClassical fluid equations as the hydrodynamic shadow of a capacity-bounded address ledger.QTT-reframedstructuralStructural theorem/guardrailExpand / Collapse

The continuum fluid law is treated as a coarse-grained readout of finite tick/address updates rather than a primitive continuous ontology.

Standard-physics correlate: nearest standard concept: the usual textbook object remains recognizable, but QTT re-reads its source through finite address capacity and access.
partial_T rho + div(rho v) = 0; rho D_T v = div sigma + rho g.
Book pages (v10.01): pp. 535, 1248
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: No-fit theorem, construction, or leading face; not automatically a precision numerical pass.
See also: Capacity, A2, Continuum shadow
Maxwell transportMaxwell's equations as the monadic address-transport theorem of the QTT charge/dial ledger.QTT-reframedstructuralStructural theorem/guardrailExpand / Collapse

Electromagnetism is read as address-dial holonomy and local transport, with the usual field equations arising as the laboratory continuum form.

Standard-physics correlate: nearest standard concept: the usual textbook object remains recognizable, but QTT re-reads its source through finite address capacity and access.
standard four Maxwell equations from address transport.
Book pages (v10.01): pp. 248-250, 1248, 1253
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: No-fit theorem, construction, or leading face; not automatically a precision numerical pass.
Casimir-bundle theoremCasimir energy as an access-law boundary projection and A7 bundle reshuffling.QTT-reframedstructuralStructural theorem/guardrailExpand / Collapse

The plates do not create particles from nothing; they change the finite access ledger of modes and expose a boundary difference.

Standard-physics correlate: nearest standard concept: the usual textbook object remains recognizable, but QTT re-reads its source through finite address capacity and access.
E_Cas / A = - pi^2 hbar c / (720 L^3).
Book pages (v10.01): pp. 535, 1248, 1253
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: No-fit theorem, construction, or leading face; not automatically a precision numerical pass.
See also: A7 reshuffling, Access window, Vacuum capacity
Entropy anchored modular chargeSecond-law and entropy production read as anchored modular charge accounting.QTT-reframedstructuralStructural theorem/guardrailExpand / Collapse

Entropy is not primitive disorder; it is finite address-counted modular charge production under declared access and transport conditions.

Standard-physics correlate: nearest standard concept: the usual textbook object remains recognizable, but QTT re-reads its source through finite address capacity and access.
Book pages (v10.01): pp. 751
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: No-fit theorem, construction, or leading face; not automatically a precision numerical pass.
Reader links
See also: Modular charge, A7, UEL
Capacity/QED kernelThe single-kernel capacity layer used in precision QED, noise, heat, spectroscopy, and ultraviolet audits.QTT-reframedstructuralStructural theorem/guardrailExpand / Collapse

QTT tries to replace independent regulator/counterterm choices with one finite capacity kernel whose use is fixed before audit. The photon-edge gate is the upstream alpha source object and the electron/Rydberg theorem supplies the source electron packet; QED windows then test no-retune reuse rather than construct alpha, K_lambda, or m_e^source. Precision QED v3.03 keeps the old five-window table as prototype evidence, restores the detailed technical scaffolding, and marks the full frozen-source covariance suite pending.

Standard-physics correlate: nearest standard concept: the usual textbook object remains recognizable, but QTT re-reads its source through finite address capacity and access.
int_0^infty K(omega)/(pi omega) d omega = alpha.
Book pages (v10.01): pp. 304, 540, 782, 1037-1045
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: No-fit theorem, construction, or leading face; not automatically a precision numerical pass.
See also: Photon-edge gate, Fine-structure constant, A6, No-smuggling

Particles, Fields, and Materials

75 terms
Lambda3The shared three-flavour QCD scale rail used across QTT meson, baryon, and glue-sector readout rows.Lambda_3QTT-nativecandidateCandidate / map pendingExpand / Collapse
Aliases: Λ₃, three-flavour QCD scale

Lambda3 is printed as an upstream rail so related QCD outputs are not double-counted as independent miracles. It belongs in the Lexicon because Observatory rows use it as dependency structure.

Standard-physics correlate: nearest standard frame: three-flavour QCD Lambda scale; differs as a shared upstream QCD rail printed across meson, baryon, and glue rows.
Lambda_MS^(3),QTT = 334.650962 MeV in the current glueball/QCD workpack row.
Book pages (v10.01): pp. 1094-1103, 1008-1020, scorecard pp. 126-128
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Printed formula or framework with a named missing lemma, access map, or audit rail.
Photon-edge gateThe residual five-rail source-edge theorem for the fine-structure constant.lambda_gammaQTT-reframedstructuralStructural theorem/guardrailExpand / Collapse

The photon-edge gate is not another decimal expression for alpha. It says the laboratory electromagnetic coupling is the readout of a finite source object: photon house 8, neutral projected half-loop rho/2, and a residual five-rail edge whose denominators and signs are fixed before audit.

Standard-physics correlate: nearest standard frame: fine-structure/QED coupling normalization; differs by treating alpha as a finite residual source-edge theorem before CODATA or QED-window audit.
alpha_QTT^-1 = 4*pi*(8 + rho/2 + lambda_gamma), lambda_gamma = 0.00252517226324577, alpha_QTT^-1 = 137.035999165998.
Book pages (v10.01): pp. 304, 1037-1045; photon-edge theorem concept DOI 10.5281/zenodo.20628735 carries the current source-edge route
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: No-fit theorem, construction, or leading face; not automatically a precision numerical pass.
Observation links
Rydberg Source AuditThe QTT precision-metrology audit in which the electron source/lab access rail is fixed first and the Rydberg constant, atomic units, and QED windows are opened only afterward.R_infty^QTTQTT-reframedsource/lab corridor greenReadout conventionExpand / Collapse
Aliases: electron source-lab Rydberg theorem, Rydberg corridor, Rydberg source equation, electron/Rydberg source-lab audit

This term names the firewall, not just the number. The Rydberg row is a laboratory corridor for a frozen source/lab electron rail: the rank-anatomy denominator, gamma-W micro-access bridge, source electron mass, scalar-lock provenance gate, and photon-edge alpha are printed before the CODATA Rydberg comparison. Version 5.01 also propagates the same source packet into atomic units and freezes the QED no-retune window suite. Observed Rydberg, hydrogen, Lamb/HFS, a_e, muonium, or positronium rows can stress or falsify the rail, but they are not allowed to tune it.

Standard-physics correlate: nearest standard concept: the usual textbook object remains recognizable, but QTT re-reads its source through finite address capacity and access.
R_e^ctor=256*384*198*97=1,888,026,624
I_e^src/lab=1/(rho R_e)+1/(64 R_e)=9.951823065003947e-11
m_e^source=0.510998950610811 MeV
R_infty^QTT=alpha_lambda^2 m_e^source c/(2h)=10,973,731.568156838 m^-1; z_R=-0.0135 sigma.
Atomic-unit packet = F(alpha_lambda,m_e^source,h,c).
Book pages (v10.01): pp. 1037-1045, 1094-1103, electron micro-rail pp. 1192-1198, scorecard pp. 126-128; electron/Rydberg concept DOI 10.5281/zenodo.20800371; source-only SI endpoint concept DOI 10.5281/zenodo.20936013
Anchor note: QTT Main Book v10.01, Koide/access pp. 1037-1045 and 1094-1103; electron micro-rail pp. 1192-1198; scorecard pp. 126-128.
Observation links
gamma-W micro-access railThe finite electron source/lab bridge used by the Rydberg theorem: a photon-access rail crossed with a W-address covariance rail.I_e^{gamma W}QTT-nativesource-equation closedReadout conventionExpand / Collapse
Aliases: gamma W rail, electron gamma-W rail, electron gamma-W source/lab bridge, gammaW micro-access rail

The gamma-W rail is not the Lorentz gamma factor and not a Dirac gamma matrix. It is a named QTT access path: the electron source row reaches the laboratory Rydberg readout through a finite rank rail plus a legal covariance door whose denominator is 64=2_cov*32_Sigma. Only the rank rail and gamma-W covariance rail carry active source/lab metric weight in this theorem.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
64=2_cov*32_Sigma
I_e^{src/lab,QTT}=1/(rho R_e^ctor)+1/(64 R_e^ctor)
D_e^{gamma W} F_e = (rho R_e)^(-1/2) r_rank + (64 R_e)^(-1/2) r_gammaW.
Book pages (v10.01): electron micro-rail pp. 1192-1198; charged-lepton family-rank pp. 1037-1045 and 1094-1103; electron/Rydberg concept DOI 10.5281/zenodo.20800371
Anchor note: QTT Main Book v10.01, electron micro-rail pp. 1192-1198; charged-lepton family-rank pp. 1037-1045 and 1094-1103.
Observation links
Artian joint-address hyperfine compositionThe finite composition that joins a nuclear magnetic-response source object to an electronic-contact source object without replacing either by a continuum point interaction.boxtimes_hfsQTT-nativesource composition theorem closedReadout conventionExpand / Collapse
Aliases: hyperfine composition theorem, joint-address hyperfine theorem, finite hyperfine composition

The nucleus and bound electron are not two freely multiplied laboratory fit factors. Each is a finite source object carrying the same real-J scalar action and address ledger. Their hyperfine interaction is formed on the balanced tensor product over that shared scalar algebra. The continuum delta-contact Hamiltonian is recovered only as a laboratory readout limit of the finite co-address overlap.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
boxtimes_hfs: Nuc_J^fin x El_J^fin -> Pair_J^fin; J_NE=J_N tensor 1=1 tensor J_E; H_hfs^src=Lambda_A g_N c_E I dot J.
Book pages (v10.01): pp. 136, 246-249, 280, 304, 541, 1008-1020
Anchor note: QTT Main Book v10.01, source/readout pp. 9-22, A4 finite real-J dial pp. 213-227, A5-X/A6/A7 pp. 250-268, atomic/hyperfine context pp. 1037-1045 and 1094-1103.
Observation links
Clock-constellation identifiability gateThe theorem that states exactly which nuclear-response and electronic-contact factors a connected family of hyperfine clock lines can identify.rank B=v-qQTT-nativestructural theorem closed; numerical source packet amberReadout conventionExpand / Collapse
Aliases: hyperfine identifiability theorem, Rb/Cs clock-constellation gate, bipartite clock gate

One line reads one product G_a C_b. More decimal precision does not split that product. The isotope/orbital family is therefore treated as a bipartite graph: every connected component retains one multiplicative source gauge until one independently derived nuclear or contact factor pins it. Closed alternating cycles test the source factorization without choosing that gauge.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
y_ab=G_a C_b; z=B theta; rank B=v-q; dim ker B=q; product_cycle y_(a_i b_i)/y_(a_(i+1) b_i)=1; nu_87Rb/nu_133Cs=(7/6)(G_87 C_87,5s)/(G_133 C_133,6s).
Book pages (v10.01): pp. 136, 246-249, 280, 304, 541, 1008-1020
Anchor note: QTT Main Book v10.01, source/readout and no-smuggling pp. 9-22; atomic/hyperfine context pp. 1037-1045 and 1094-1103.
Observation links
Atomic-unit source propagationThe V5.01 electron/Rydberg closure that treats the atomic-unit rows as one correlated source packet rather than independent constants.F(alpha_lambda,m_e^source,h,c)QTT-reframedsource-equation closedReadout conventionExpand / Collapse
Aliases: atomic-unit source packet, QTT atomic-unit packet, source-propagated atomic units

Once alpha_lambda and the source electron are frozen, QTT reads the Compton wavelengths, Bohr radius, Hartree, Rydberg energy, Rydberg constant, clock, velocity, momentum, classical electron size, and atomic time as one propagated packet through h and c. No observed hydrogen line, CODATA-adjusted electron mass, anomalous magnetic moment, Lamb shift, hyperfine splitting, proton radius, or isotope-shift row is allowed to write this packet.

Standard-physics correlate: nearest standard concept: the usual textbook object remains recognizable, but QTT re-reads its source through finite address capacity and access.
lambda_C, lambda_Cbar, a_0, E_h, E_R, R_infty, nu_C, nu_R, v_0, p_0, r_e, t_atom = F(alpha_lambda,m_e^source,h,c).
Book pages (v10.01): electron/Rydberg source theorem pp. 27-29 and 35-37; scorecard pp. 126-128; electron/Rydberg concept DOI 10.5281/zenodo.20800371
Anchor note: Electron/Rydberg source theorem v5.01, source-propagation pp. 27-29 and atomic-unit audit table pp. 35-37.
Observation links
QED no-retune window suiteThe rule that downstream atomic and QED windows audit the frozen electron/photon packet but do not retune it.partial K_lambda/partial O_a^exp = 0QTT-nativefrozen; multi-row audit pendingReadout conventionExpand / Collapse
Aliases: QED no-retune windows, hydrogen/QED row separation, single-kernel QED no-retune inheritance

Real hydrogen is a readout window, not the source constructor. The frozen source packet supplies alpha_lambda, m_e^source, R_e, and the legal gamma-W access door; Lamb shifts, recoil, finite-proton rows, hyperfine splitting, a_e, muonium, and positronium are downstream windows. Precision QED v3.03 makes the status split explicit and restores the detailed audit scaffolding: the inherited five-window table is a prototype no-drift audit, while the full frozen-source covariance execution remains pending.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
partial K_lambda/partial O_a^exp = partial alpha_lambda/partial O_a^exp = partial m_e^source/partial O_a^exp = 0.
Book pages (v10.01): electron/Rydberg source theorem pp. 28-30 and 33-38; photon-edge/QED pages pp. 114-117; electron/Rydberg concept DOI 10.5281/zenodo.20800371
Anchor note: Electron/Rydberg source theorem v5.01, hydrogen row separation pp. 28-30 and QED windows pp. 33-38; Precision QED v3.03 concept DOI 10.5281/zenodo.20121952.
HVP Source-Access Reference FrameworkQTT's current hadronic-vacuum-polarization reference framework for muon g-2: source, muon kernel, and laboratory rows are kept as separate objects.a_mu^HVPQTT-reframedgreen method and packet gates; red frozen BaBar lineshapeReadout conventionExpand / Collapse

The hadronic vector source is not written by the experimental muon anomaly, lattice HVP, measured R(s), covariance packets, nuisance directions, or fitted resonance parameters. Experiments read the frozen QCD vector-current source through declared access rows; they do not construct the source. Version 50.0 closes the BaBar publication-camera, control, finite-bin, covariance, robustness, and no-retune gates, then records that the present frozen resolved two-pion lineshape is rejected by the BaBar covariance row even though the integrated scalar pulls remain moderate.

Standard-physics correlate: nearest standard frame: hadronic vacuum polarization contribution to muon g-2; differs by separating frozen QCD vector-current source, muon kernel, laboratory access rows, and access covariance before any comparator is read.
a_mu^HVP = (alpha_lambda^2 / 3 pi^2) int K_VP(s/m_mu^2) R_src(s) d ln s; chi2_full=z_a_mu^2+chi2_shape; z_a_mu={+1.361223,-0.593757}; chi2_shape={57765.6144,85030.2611}, nu=139; D_obs R_src^QTT=0.
Book pages (v10.01): pp. 583-620 and p. 1262; concept DOI 10.5281/zenodo.20732034
Anchor note: Term indexed to the v10.01 source pages listed above.
Observation links
HVP constructor firewallThe no-smuggling guardrail that forbids HVP comparator data from choosing the QTT source.QTT-nativestructuralStructural theorem/guardrailExpand / Collapse

The firewall protects the source/readout split: observation rows may falsify the printed source, but they may not tune the source after the central values are known.

Standard-physics correlate: nearest standard frame: blinding/preregistration and fit-domain separation; differs by forbidding a_mu^exp, lattice HVP, measured R(s), covariance packets, nuisance directions, or fitted resonance parameters from writing R_src.
delta R_src^QTT/delta y_d = delta R_src^QTT/delta Sigma_d^lab = delta R_src^QTT/delta theta_d = delta R_src^QTT/delta a_mu^exp = delta R_src^QTT/delta a_mu^HVP,lat = 0.
Book pages (v10.01): pp. 583-620; concept DOI 10.5281/zenodo.20732034
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: No-fit theorem, construction, or leading face; not automatically a precision numerical pass.
Observation links
HVP access-covariance mapThe current formal map that lets laboratory R(s), F_pi, lattice, e+e-, and tau rows audit the frozen HVP source with their own correction, nuisance, binning, background, and covariance objects.QTT-reframedsource-equation closedReadout conventionExpand / Collapse

Access covariance belongs on the laboratory row side. It describes how a row reads the source and how its uncertainty is audited; it is not allowed to change the source being read.

Standard-physics correlate: nearest standard frame: covariance propagation and chi-square goodness-of-fit; differs by making covariance an access-row audit object after the source is fixed, not a hidden constructor of the source.
mu_d^QTT(theta_d)=P_d[C_d(theta_d)A_d^QTT R_src^QTT]+b_d(theta_d); Sigma_d^AC=Sigma_d^lab+J_d V_{theta,d} J_d^T+Sigma_d^miss; chi_AC^2=Delta^T(Sigma^AC)^-1 Delta.
Book pages (v10.01): pp. 583-620 and Observatory HVP row; concept DOI 10.5281/zenodo.20732034
Anchor note: Term indexed to the v10.01 source pages listed above.
Observation links
HVP laboratory row packetThe frozen current-version object that names the data vector, lab covariance, binning map, correction map, QTT access map, background model, nuisance domain, and row hash for one HVP laboratory row.QTT-reframedsource-equation closedReadout conventionExpand / Collapse

A row packet makes the row inspectable before it is used. The QTT source is upstream; the row packet carries the finite laboratory access conditions that can confirm, stress, or falsify the source.

Standard-physics correlate: nearest standard frame: experimental data vector, covariance matrix, response matrix, and background model; differs as a declared finite access object D_d^{R(s)} that reads the source without rewriting it.
D_d^{R(s)}=(s_d,y_d,Sigma_d^lab,P_d,C_d,A_d^QTT,b_d,Theta_d,H_d); Delta_d=y_d-mu_d^QTT(theta_d^*); z_d=L_d^-1 Delta_d.
Book pages (v10.01): pp. 583-620 and Observatory HVP row; concept DOI 10.5281/zenodo.20732034
Anchor note: Term indexed to the v10.01 source pages listed above.
Observation links
HVP vector source ledgerThe eight-row QCD vector-current source ledger used by the HVP reference framework.QTT-nativestructuralStructural theorem/guardrailExpand / Collapse

The ledger is the source side of the HVP object before laboratory row access. Its row weights are printed as finite source accounting rather than inferred from the muon anomaly.

Standard-physics correlate: nearest standard frame: e+e- hadronic spectral function or QCD vector-current source; differs because the eight-row source weights are printed as a finite QTT source ledger before laboratory rows.
nu = (1/704)(279,31,62,9,1,2,256,64) over (rho/2pi, omega, phi, 4pi, omega pi, K Kbar, c, b).
Book pages (v10.01): pp. 583-590; concept DOI 10.5281/zenodo.20732034
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: No-fit theorem, construction, or leading face; not automatically a precision numerical pass.
Observation links
18:2:4 light-vector charge ledgerThe light-vector charge split used in the HVP source ledger.QTT-nativestructuralStructural theorem/guardrailExpand / Collapse

QTT reads the rho/omega/phi light-vector shares as source charge accounting: the laboratory resonances are access images of the source ledger, not adjustable partitions.

Standard-physics correlate: nearest standard frame: rho/omega/phi electromagnetic current decomposition; differs by treating the squared-charge shares as a source ledger, not fitted branching fractions.
(rho, omega, phi) shares = (3/4, 1/12, 1/6) = (1/24)(18,2,4).
Book pages (v10.01): pp. 583-590; concept DOI 10.5281/zenodo.20732034
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: No-fit theorem, construction, or leading face; not automatically a precision numerical pass.
Observation links
2pi/rho scalar access factorThe HVP intermediate-window access factor from the 15/(64 rho) source-access word.lambda_8QTT-nativegreen-candidateCandidate / map pendingExpand / Collapse

The factor is an audit bridge, not a final HVP value. It is legal only when its integer source word is printed before the scalar comparator is read.

Standard-physics correlate: nearest standard frame: HVP dispersion-window rescaling; differs because QTT derives the factor from the 15/(64 rho) source-access word rather than fitting it to close muon g-2.
lambda_8 = exp[-15/(64 rho)] = 0.960428894985; 198.8(1.1)e-10 -> 206.9909(1.1453)e-10, +0.257 sigma against 206.6(1.0)e-10.
Book pages (v10.01): pp. 591-600; concept DOI 10.5281/zenodo.20732034
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Numerical access pass with an explicit structural caveat or pending convention map.
Observation links
HVP row-topology ladderThe metadata-only HVP row-depth ladder that generates legal row integers before central values are opened.QTT-nativecandidateCandidate / map pendingExpand / Collapse

The row class is selected by declared topology bits and covariance metadata, not by the observed scalar pull. This keeps the future blind HVP row honest.

Standard-physics correlate: nearest standard frame: dataset convention corrections and row compatibility factors; differs because legal row integers are generated from frozen metadata topology bits before central values are opened.
chi_0 = 15/(512 rho); q_HVP = exp[-15/(512 rho)] = 0.994965798198; legal n in {0,2,3,4,8}.
Book pages (v10.01): pp. 591-600 and 609-620; concept DOI 10.5281/zenodo.20732034
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Printed formula or framework with a named missing lemma, access map, or audit rail.
Fine-structure constantQTT's Artian Geometry door into electromagnetic coupling, now anchored by the photon-edge gate theorem rather than treated as a fitted input.alphaQTT-reframedstructuralStructural theorem/guardrailExpand / Collapse

The alpha route is one of the central Artian's Constants claims: if the photon-edge and capacity rails are legal, the observed electromagnetic coupling is a downstream readout, not a free number. CODATA is used as an audit after the five-rail residual source object is fixed.

Standard-physics correlate: nearest standard frame: electromagnetic coupling alpha; differs by moving the construction from fitted input to a photon-edge source/readout theorem.
alpha_QTT^-1 = 4*pi*(8 + rho/2 + lambda_gamma) = 137.035999165998; CODATA 2022 audit: -0.523927 sigma.
Book pages (v10.01): pp. 23, 41, 304, 540, 782, 1037-1045; photon-edge theorem concept DOI 10.5281/zenodo.20628735 is the current theorem-grade citation
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: No-fit theorem, construction, or leading face; not automatically a precision numerical pass.
Observation links
Artian's ConstantsThe family of constants the corpus attempts to derive from Artian Geometry/QTT rather than fit independently.QTT-nativestructuralStructural theorem/guardrailExpand / Collapse

The phrase should always carry ownership as Artian's Constants. It groups the photon-edge fine-structure theorem, Kerr, Boltzmann, Stefan-Boltzmann, and related capacity constants under the same finite-geometry program.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
Book pages (v10.01): pp. 280, 304, 540, 748-755, 1037-1045
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: No-fit theorem, construction, or leading face; not automatically a precision numerical pass.
Kerr constantElectro-optic Kerr response factorized into a trace-free Artian source rail, clock/access projection, and independent material polarizability rail.QTT-reframedgreen-candidateCandidate / map pendingExpand / Collapse

The QTT claim is the source/access form, not that nitrobenzene or TGG are derived from axioms alone. The material rail must be computed from independent material inputs.

Standard-physics correlate: nearest standard concept: the usual textbook object remains recognizable, but QTT re-reads its source through finite address capacity and access.
Delta n = lambda K E^2; K_lab = cos(pi/8) A_K for static cells after legal access factors.
Book pages (v10.01): pp. 280, 541, 672, 680; DOI record carries the full access audit
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Numerical access pass with an explicit structural caveat or pending convention map.
See also: Trace-free Artian tensor, F_drift, No-smuggling
Trace-free Artian tensorThe unique trace-free quadratic source tensor in the Kerr response theorem.Q_ij^EQTT-reframedstructuralStructural theorem/guardrailExpand / Collapse

The isotropic trace is removed because the Kerr birefringence source is a direction-reading access rail, not total scalar field energy.

Standard-physics correlate: nearest standard concept: the usual textbook object remains recognizable, but QTT re-reads its source through finite address capacity and access.
Q_ij^E = E_i E_j - (1/3) E^2 delta_ij.
Book pages (v10.01): pp. 280, 541
Anchor note: Book v10.01: trace-free dyadic closure p.34 cited by Kerr paper.
Status reading: No-fit theorem, construction, or leading face; not automatically a precision numerical pass.
See also: Kerr constant, Trace-free dyadic closure, Access window
Boltzmann constantFinite-reservoir weighting with an exact marginal, a controlled canonical limit, and an additive units theorem for k_B.k_BQTT-reframedconditionalReadout conventionExpand / Collapse

QTT supplies a finite completed-event support for the reservoir count. Microcanonical equiprobability remains an explicit premise; the exponential Boltzmann law is a controlled large-reservoir limit rather than a primitive bath assumption, and k_B is the unique positive additive conversion from dimensionless entropy to thermodynamic units.

Standard-physics correlate: nearest standard concept: the usual textbook object remains recognizable, but QTT re-reads its source through finite address capacity and access.
p_a = g_a Omega_R(E_tot-E_a)/sum_b g_b Omega_R(E_tot-E_b); exp(-2 eps_R) <= p_a/q_a <= exp(2 eps_R).
Book pages (v10.01): pp. 369-372, 748, 755
Anchor note: Term indexed to the v10.01 source pages listed above.
Stefan-Boltzmann constantPhoton-throughput theorem of Artian Geometry and phase topology.QTT-reframedstructuralStructural theorem/guardrailExpand / Collapse

The radiation constant is treated as a finite throughput/readout of photon capacity rather than an isolated empirical coefficient.

Standard-physics correlate: nearest standard concept: the usual textbook object remains recognizable, but QTT re-reads its source through finite address capacity and access.
Book pages (v10.01): pp. 540, 748-755
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: No-fit theorem, construction, or leading face; not automatically a precision numerical pass.
See also: Photon throughput, Artian's Constants, A6
Dyadic closureThe SU(2)/Z2-style two-rail closure used in spin, weak/chiral, and mirror-doublet exclusion routes.QTT-reframedstructuralStructural theorem/guardrailExpand / Collapse

Dyadic closure says a two-door capacity object must close without producing a mirror duplicate when the finite address and dial constraints are enforced.

Standard-physics correlate: nearest standard concept: the usual textbook object remains recognizable, but QTT re-reads its source through finite address capacity and access.
Book pages (v10.01): pp. 552, 1248, 1255
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: No-fit theorem, construction, or leading face; not automatically a precision numerical pass.
Triadic closureThe three-center/color closure grammar behind the color-confinement and glueball records.QTT-reframedstructuralStructural theorem/guardrailExpand / Collapse

Triadic closure is the color-sector counterpart of finite bundle closure: open color cannot remain as an asymptotic record if the A6/A7 color boundary is legal.

Standard-physics correlate: nearest standard concept: the usual textbook object remains recognizable, but QTT re-reads its source through finite address capacity and access.
Book pages (v10.01): pp. 132, 543-545, 1008
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: No-fit theorem, construction, or leading face; not automatically a precision numerical pass.
Color closureA7 modular boundary closure in the SU_J(3) color sector, blocking nonzero triadic center charge as an open asymptotic record.QTT-reframedstructuralStructural theorem/guardrailExpand / Collapse

Color confinement is read as an address/boundary-completion rule, not a rhetorical renaming of QCD.

Standard-physics correlate: nearest standard concept: the usual textbook object remains recognizable, but QTT re-reads its source through finite address capacity and access.
No open-color asymptotic records when nonzero triadic center charge cannot close the boundary.
Book pages (v10.01): pp. 1008-1020
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: No-fit theorem, construction, or leading face; not automatically a precision numerical pass.
No-open-color gateThe color-sector boundary condition that forbids unclosed color records from appearing as asymptotic states.QTT-reframedstructuralStructural theorem/guardrailExpand / Collapse

The gate is an A6/A7 access-boundary statement: a color source may exist internally, but the observed record must be color-closed.

Standard-physics correlate: nearest standard concept: the usual textbook object remains recognizable, but QTT re-reads its source through finite address capacity and access.
Book pages (v10.01): pp. 1008-1020
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: No-fit theorem, construction, or leading face; not automatically a precision numerical pass.
See also: Color closure, A6, A7
Glueball mass gapThe QTT finite mass-gap/glueball spectrum prediction from the A1-A7 source and SU_J(3) color-closure spine.QTT-reframedyellow-predictionLocked predictionExpand / Collapse

The record gives a sharp particle-sector claim: if the color-closure spine and the locked QCD sheet scale are correct, glueball masses read as fixed ratios against sqrt(sigma_3), not as fitted resonance assignments.

Standard-physics correlate: nearest standard concept: the usual textbook object remains recognizable, but QTT re-reads its source through finite address capacity and access.
m_G^QTT = r_G sqrt(sigma_3)^QTT; sqrt(sigma_3)^QTT = 444.253151 MeV; m_0++^QTT = 1.731197064 GeV.
Book pages (v10.01): pp. 122, 1008-1020
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Locked no-retune prediction awaiting decisive data.
NICKNeutral Identity Color Kernel: the named QTT strong-sector anchor whose current source-form theorem gives chi_YM(m_Z) and alpha_s(m_Z), with string-tension and glueball rows downstream.QTT-nativestructuralStructural theorem/guardrailExpand / Collapse
Aliases: Neutral Identity Color Kernel, NICK strong anchor

NICK is a QTT-native color-sector kernel, not a synonym for ordinary QCD running. The strong-coupling form is now a printed source theorem; string tension and glueball transfers remain downstream audits of the same rail.

Standard-physics correlate: nearest standard frame: QCD strong-coupling anchor; differs by using a named neutral identity color kernel rather than a fitted alpha_s input.
chi_YM(m_Z) = 2/3 + 1/(4 rho^2), rho = 2pi cos(pi/8); alpha_s(m_Z) = 1/(4pi chi_YM) = 0.11805244792.
Book pages (v10.01): pp. 136, 246-249, 1008-1020; strong-coupling theorem concept DOI 10.5281/zenodo.20625550 carries the current strong-anchor route
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: No-fit theorem, construction, or leading face; not automatically a precision numerical pass.
Observation links
NICK formulaCompact QTT expression for the strong-coupling source form: chi_YM(m_Z) = 2/3 + 1/(4 rho^2).QTT-nativestructuralStructural theorem/guardrailExpand / Collapse

NICK belongs to the QTT-novel Standard-Model program. The comparator value is an audit after the source form is fixed, not a constructor input.

Standard-physics correlate: nearest standard frame: QCD alpha_s normalization; differs as the compact NICK strong-anchor expression.
chi_YM(m_Z) = 2/3 + 1/(16pi^2 cos^2(pi/8)); alpha_s(m_Z) ~= 0.1180524479.
Book pages (v10.01): pp. 136, 246-249, 1008-1020; strong-coupling theorem concept DOI 10.5281/zenodo.20625550 carries the current source-form route
Anchor note: Book v10.01: Standard-Model scorecard / NICK-H compact form; current source-form theorem concept DOI 10.5281/zenodo.20625550.
Status reading: No-fit theorem, construction, or leading face; not automatically a precision numerical pass.
A6 Hadamard center-sheet half-share theoremThe QCD center-sheet theorem fixing the minimal nonzero A6 boundary crossing at one half and, in v4.0, closing the compact-color kernel beneath the beta_Z/Haar-root source chain.S_A6(k=±1)QTT-nativeframework theoremTheorem within QTTExpand / Collapse
Aliases: Artian A6 Hadamard Center-Sheet Half-Share Theorem, A6 half-share theorem

A nonzero Z3 center boundary forces a center sheet. A local sheet crossing has two sides, inside and outside, and A6 finite capacity forbids a preferred side. Therefore the only real, capacity-preserving, unbiased transfer is the Hadamard half-share. Version 4.0 then forces the first-order compact-color source kernel before comparison. The half-share, beta_Z, kernel, and Haar coefficient are not chosen to match string tension; the string-tension comparator audits the already-locked source afterward.

Standard-physics correlate: nearest standard frame: boundary-condition or lattice center-factor normalization; differs because QTT treats the 1/2 as an A6 capacity-preserving two-side transfer, not as a tunable multiplier.
H_cap = (1/sqrt(2)) [[1,1],[1,-1]]; S_A6(k=±1)=1/2; Phi_3(U)=(1/3)Re_J Tr(U); K_betaZ^QTT(U)=exp[(beta_Z/3)Re_J Tr(U)]; c_3/c_1(beta_Z)=0.849017324821154.
Book pages (v10.01): QCD/string/glue scorecard pp. 126-128; color/QCD source anchors pp. 1008-1020; concept DOI 10.5281/zenodo.20744161
Anchor note: Term indexed to the v10.01 source pages listed above.
Observation links
Center-sheet half-shareThe one-half capacity share carried by a minimal symmetric nonzero center-sheet crossing.1/2QTT-nativestructuralTheorem within QTTExpand / Collapse
Aliases: Hadamard half-share, two-side capacity share

The center sheet is not an adjustable lattice convention in QTT. It is a finite boundary object whose crossing must split the local capacity budget without preferring either side.

Standard-physics correlate: nearest standard frame: Z3 center sheet or domain-wall crossing; differs because the local crossing is counted as an unbiased two-side capacity share.
minimal symmetric center crossing => inside/outside share = (1/2,1/2).
Book pages (v10.01): QCD/string/glue scorecard pp. 126-128; concept DOI 10.5281/zenodo.20744161
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: No-fit theorem, construction, or leading face; not automatically a precision numerical pass.
Observation links
sigma_3 QCD sheet scaleThe locked QTT QCD sheet scale fixed by the A6 half-share, forced compact-color kernel, beta_Z source stiffness, and compact SU_J(3) Haar-root readout.sqrt(sigma_3)QTT-nativegreen-candidateTheorem within QTTExpand / Collapse
Aliases: QCD sheet scale, sqrt(sigma_3), A6-locked string scale

sigma_3 is the source QCD sheet scale underneath several downstream rows. It should not be retuned separately for string tension, vector centroids, HVP weights, chiral scales, or glueball masses. The v4.0 record makes the source kernel explicit before any laboratory comparator is read.

Standard-physics correlate: nearest standard frame: static-source string tension; differs because QTT locks the source scale before the lattice/string comparator is read.
s_3^A6 = -ln[(1/3)(c_3/c_1)] + 1/2 = 1.76228797539733; sqrt(sigma_3)^QTT = 444.25315096 MeV; sigma_3^QTT = 0.1973608621 GeV^2.
Book pages (v10.01): QCD/string/glue scorecard pp. 126-128; concept DOI 10.5281/zenodo.20744161
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Numerical access pass with an explicit structural caveat or pending convention map.
Compact-color kernelThe unique first-order QTT compact-color source kernel forced inside the declared local one-plaquette real-J SU_J(3) transfer class.K_betaZ^QTT(U)QTT-nativeframework theoremTheorem within QTTExpand / Collapse
Aliases: QTT compact-color source kernel, A6 compact-color transfer kernel, K_betaZ kernel

The compact-color kernel is not borrowed from a human-chosen continuum or lattice regulator. QTT declares the legal first-order source class first: compact real-J SU_J(3), class-function readout, one nonzero Z3 boundary, one fundamental color face, real-J-even generator, and no second access rail. Inside that class, Phi_3(U) is the only legal nonconstant generator.

Standard-physics correlate: nearest standard frame: Wilson one-plaquette/lattice source kernel; differs because QTT derives the first-order source kernel from a declared compact real-J color transfer class rather than choosing an action family phenomenologically.
Phi_3(U)=(1/3)Re_J Tr(U); K_betaZ^QTT(U)=exp[(beta_Z/3)Re_J Tr(U)].
Book pages (v10.01): QCD/string/glue scorecard pp. 126-128; color/QCD source anchors pp. 1008-1020; concept DOI 10.5281/zenodo.20744161
Anchor note: Term indexed to the v10.01 source pages listed above.
Observation links
SU_J(3) Haar-root readoutThe compact real-J SU_J(3) one-plaquette source readout that supplies the color-sheet Haar coefficient at the fixed beta_Z source point.c_3/c_1(beta_Z)QTT-nativeframework theoremTheorem within QTTExpand / Collapse
Aliases: Haar-root readout, compact Haar-root coefficient, c3/c1 beta_Z readout

The Haar-root coefficient is not a reverse-solved string-tension knob. It is the Peter-Weyl coefficient of the declared source kernel after rho, chi_Z, beta_Z, and the compact-color kernel have already been printed. It is therefore upstream of the static-source comparator and downstream of the A6 half-share.

Standard-physics correlate: nearest standard frame: SU(3) one-plaquette/Weyl-Haar coefficient; differs because QTT reads it at a declared beta_Z source point rather than tuning it to a measured string tension.
beta_Z=6chi_Z=4.04451443141649; c_3/c_1(beta_Z)=0.849017324821154; s_3^A6=-ln[(1/3)(c_3/c_1)]+1/2=1.76228797539733.
Book pages (v10.01): QCD/string/glue scorecard pp. 126-128; color/QCD source anchors pp. 1008-1020; concept DOI 10.5281/zenodo.20744161
Anchor note: Term indexed to the v10.01 source pages listed above.
Observation links
Static-source string tensionThe lattice/static-source audit comparator for the locked QTT QCD sheet scale.sqrt(sigma_stat)QTT-reframedgreen-candidateAudit or failed-route labelExpand / Collapse

The comparator is downstream. It tests whether the source/readout-matched static-source convention approaches the locked QTT value; it does not choose the half-share, Haar root, or sigma_3 scale.

Standard-physics correlate: nearest standard frame: lattice QCD string tension; differs because QTT treats it as an audit of the locked QCD sheet scale after source/readout conventions are matched.
sqrt(sigma_stat) -> 444.25315096 MeV after source/readout convention matching; audit comparator 445(3)(6) MeV gives about -0.11 sigma.
Book pages (v10.01): QCD/string/glue scorecard pp. 126-128; concept DOI 10.5281/zenodo.20744161
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Numerical access pass with an explicit structural caveat or pending convention map.
Observation links
Vector source centroidsThe source-level rho/omega and phi centroids implied by the locked QCD sheet scale.QTT-reframedyellow-predictionLocked predictionExpand / Collapse
Aliases: rho/omega source centroid, phi source centroid, HVP source centroids

These are source centroids, not PDG pole masses. The next scientific object is the source-access-pole map that explains how the laboratory resonance rows read the source centroids without retuning the source.

Standard-physics correlate: nearest standard frame: rho, omega, and phi pole masses; differs because QTT states source centroids before source-access-pole maps convert them into laboratory resonances.
M_rho/omega^src = sqrt(3) sqrt(sigma_3) = 769.469029 MeV; M_phi^src = (4/3) M_rho/omega^src = 1025.958705 MeV.
Book pages (v10.01): HVP/QCD source anchors pp. 583-620 and QCD anchors pp. 1008-1020; concept DOI 10.5281/zenodo.20744161 and HVP concept DOI 10.5281/zenodo.20732034
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Locked no-retune prediction awaiting decisive data.
GEORGEThe named charge-normalization convention that reads Standard Model fractional charges as integer dial charges before electron-normalized laboratory units.QTT-nativestructuralReadout conventionExpand / Collapse
Aliases: charge-ledger normalization, GEORGE normalization

GEORGE is a normalization bridge. It should not be confused with a new force; it tells the reader which charge unit is primitive in the ledger and which unit is the laboratory electron convention.

Standard-physics correlate: nearest standard frame: charge normalization convention; differs by reading fractional Standard Model charges as integer dial charges before electron-normalized readout.
e_* = e_gamma / 3; N_f = 3 Q_f in Z.
Book pages (v10.01): pp. 246-249, 283-291, 303
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: No-fit theorem, construction, or leading face; not automatically a precision numerical pass.
GEORGE normalizationThe Standard-Model charge-ledger normalization in which the primitive charge unit is e_gamma/3 before electron-normalized lab readout.QTT-reframedstructuralStructural theorem/guardrailExpand / Collapse

GEORGE is the bridge that reads Standard-Model fractional charge as integer dial charge in the underlying ledger.

Standard-physics correlate: nearest standard frame: Standard Model charge convention; differs by using e_gamma/3 as the ledger primitive.
e_* = e_gamma / 3; N_f = 3 Q_f in Z.
Book pages (v10.01): pp. 246-249, 283-291, 303
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: No-fit theorem, construction, or leading face; not automatically a precision numerical pass.
MARIAMThe charged-fermion family-rank ladder and quark source/readout route separating source birth sheets from QCD, QED, electroweak, CKM, and scheme access windows.QTT-nativegreen/yellowStructural theorem/guardrailExpand / Collapse
Aliases: MARIAM birth masses, quark access/scheme mass readout, quark family-rank ladder

MARIAM belongs to the access-law discipline: quark and charged-lepton mass numbers are not treated as naked source masses or fitted Yukawa knobs. They are source-family objects read through declared transport, holonomy, and scheme windows.

Standard-physics correlate: nearest standard frame: quark mass/scheme running; differs by separating birth masses from QCD, QED, electroweak, and scheme access windows.
D_U=diag(m_u,m_c,m_t), D_D=diag(m_d,m_s,m_b); V_CKM^src = R_23 R_13^J R_12; m_q^lab = Access_QCD,QED,EW,scheme(m_q^birth).
Book pages (v10.01): pp. 1127-1148; quark flavor pp. 1146-1148 and scorecard pp. 126-128; quark family-rank concept DOI 10.5281/zenodo.20722978
Anchor note: Term indexed to the v10.01 source pages listed above.
Quark family-rank and CKM reference frameworkThe current citable framework for the QTT quark sector: finite source complex, up/down mass sheets, CKM as a real-J source holonomy, and the v4.0 finite precision micro-provenance packet.QTT-nativegreen/yellowStructural theorem/guardrailExpand / Collapse
Aliases: Artian quark family-rank, quark CKM framework, quark reference framework

The framework is green for source/access separation, finite CKM source-word enumeration, finite face uniqueness, and precision micro-provenance: quark masses and CKM entries are not independent fitted knobs. It remains yellow where the paper explicitly leaves the global correlated CKM covariance packet, quark-mass source-word compiler, and baryon/proton unlock pending.

Standard-physics correlate: nearest standard frame: quark Yukawa/CKM sector; differs by building finite up/down source sheets and a real-J CKM holonomy before comparator data are opened.
(n12,u12,n23,a13,p_delta,q_delta,n_L)=(20,10,104,6,7,12,192); s12=0.225042858584379, s23=0.042713531540749, s13=0.003708134796885, delta=1.147687258136975; V=R_23 R_13^J R_12.
Book pages (v10.01): pp. 1127-1148 and scorecard pp. 126-128; concept DOI 10.5281/zenodo.20722978
Anchor note: Term indexed to the v10.01 source pages listed above.
Quark source complexThe finite source-side object behind the quark family-rank framework.QTT-nativegreen/yellowStructural theorem/guardrailExpand / Collapse
Aliases: finite quark source complex, up/down source sheets, quark mass sheets

The source complex is the object whose up/down sheets are read by laboratory mass schemes and CKM access. It prevents the page from treating six quark masses and four CKM parameters as unrelated empirical dials.

Standard-physics correlate: nearest standard frame: quark mass matrices; differs because the up/down sheets are source objects whose laboratory values require declared access/scheme maps.
Q_q^src = (D_U,D_D,V_CKM^src; A1-A7, MARIAM gates), with D_U and D_D source sheets before access/readout.
Book pages (v10.01): pp. 1127-1148; concept DOI 10.5281/zenodo.20722978
Anchor note: Term indexed to the v10.01 source pages listed above.
CKM holonomyThe QTT reading of CKM as a path-ordered real-J holonomy between quark source sheets.QTT-reframedgreen/yellowStructural theorem/guardrailExpand / Collapse
Aliases: Artian CKM holonomy, CKM source holonomy, V_CKM source holonomy

The CKM matrix is not introduced as a fitted unitary table. It is a source-sheet transport object whose faces are printed before global-fit corridors are opened, with access/scheme caveats kept visible.

Standard-physics correlate: nearest standard frame: CKM mixing matrix; differs as a path-ordered Artian source holonomy rather than a fitted unitary matrix.
V_CKM^src=R_23 R_13^J R_12; v4.0 precision packet: s12^prec=0.225042858584379, s23^prec=0.042713531540749, s13^prec=0.003708134796885, delta_prec=1.147687258136975, epsilon_23^L=1/(192rho).
Book pages (v10.01): pp. 1127-1148 and scorecard pp. 126-128; concept DOI 10.5281/zenodo.20722978
Anchor note: Term indexed to the v10.01 source pages listed above.
Observation links
Charged-Lepton Family-Rank Constructor TheoremThe QTT theorem that fixes a finite charged-lepton family-rank constructor class before observation and then audits the resulting e, mu, tau readout.D_EQTT-nativegreen/yellowStructural theorem/guardrailExpand / Collapse
Aliases: charged-lepton constructor theorem, family-rank constructor theorem, Σ-CL-FAMILY-RANK-CONSTRUCTOR-CLOSURE

The theorem says what a non-fitting charged-lepton construction must be inside its declared Artian/MARIAM class: a finite source-word object, integer rank rows, no observed-mass constructor, determinant-one family readout, and observation opened only after the source words are fixed. Version 3.7 is stronger than the earlier shape theorem because 288 candidate words leave one survivor, but the paper keeps global uniqueness outside the declared class open.

Standard-physics correlate: nearest standard frame: charged-lepton Yukawa sector, chain complexes, and Koide phenomenology; differs by requiring a source-side finite family complex, observation-Jacobian zero, and determinant-one access before individual lepton masses are opened.
0 -> C_2^E --D_E-> C_1^E --partial_E-> C_0^E -> 0, partial_E D_E = 0
N_E^QTT = (N_e,N_mu,N_tau) = R_E(D_E,G_E;A1-A7), partial N_l^QTT / partial m_j^obs = 0
I_E^FR = Pi_sl3 diag(1/(rho N_e),1/(rho N_mu),1/(rho N_tau)), rho=2pi cos(pi/8), Tr I_E^FR=0, det exp(I_E^FR)=1
Book pages (v10.01): pp. 1037-1045, 1094-1103, electron micro-rail pp. 1192-1198, scorecard pp. 126-128; charged-lepton family-rank concept DOI 10.5281/zenodo.20698191
Anchor note: Term indexed to the v10.01 source pages listed above.
Observation links
Reader links
Charged-Lepton Family-Rank GateThe determinant-one charged-lepton access gate sitting inside the fuller charged-lepton family-rank constructor theorem.D_EQTT-nativegreen/yellowStructural theorem/guardrailExpand / Collapse
Aliases: charged-lepton determinant-one family-rank gate, family-rank gate, charged-lepton access gate

This is not a fitted Yukawa triple. It is a family-volume conservation and no-smuggling firewall: all three charged-lepton masses must be read through one finite family object before comparison with e, mu, and tau data. In v3.7 the declared source-word class prints one survivor with ranks (N_e,N_mu,N_tau)=(1,888,026,624,17,526,2,347), while the broader uniqueness question remains open.

Standard-physics correlate: nearest standard frame: charged-lepton Yukawa sector and Koide phenomenology; differs by requiring one determinant-one access gate before individual lepton masses are opened.
R_E^FR = exp(I_E^FR), Tr I_E^FR = 0, det R_E^FR = 1
(m_e,m_mu,m_tau)_lab = R_E^FR (m_e,m_mu,m_tau)_core
Book pages (v10.01): pp. 1037-1045, 1094-1103, electron micro-rail pp. 1192-1198, scorecard pp. 126-128; charged-lepton family-rank concept DOI 10.5281/zenodo.20698191
Anchor note: Term indexed to the v10.01 source pages listed above.
Observation links
Reader links
Determinant-one family accessThe charged-family access rule that preserves the product of the three simultaneous lepton readouts while allowing individual access exponents to redistribute the laboratory masses.QTT-nativestructuralStructural theorem/guardrailExpand / Collapse
Aliases: trace-free family access, family-volume access, SL(3,R+) family access

QTT uses determinant-one family access as an audit firewall. A legal charged-lepton construction may move mass among e, mu, and tau readout channels, but it may not smuggle in an arbitrary overall family scale after the core object is declared.

Standard-physics correlate: nearest standard frame: SL(3)-style trace-free linear algebra; differs because the determinant-one condition is a no-smuggling family-volume law for mass readout, not a fitted matrix ansatz.
Tr I_E = 0 -> det exp(I_E) = 1
m_e m_mu m_tau|lab = m_e m_mu m_tau|core
Book pages (v10.01): pp. 1037-1045, 1094-1103; charged-lepton family-rank concept DOI 10.5281/zenodo.20698191
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: No-fit theorem, construction, or leading face; not automatically a precision numerical pass.
Observation links
Koide charged-lepton coneThe charged-lepton square-root mass cone used by QTT as a family-access constraint rather than as an isolated numerical curiosity.QTT-reframedgreen-candidateCandidate / map pendingExpand / Collapse
Aliases: Koide cone, square-root capacity cone, charged-lepton square-root cone

The Koide cone fixes charged-family shape discipline, not the full finite family-rank constructor by itself. In the current Observatory row it is carried alongside the v3.7 finite source-word audit, whose charged-lepton mass pulls are e +0.072, mu +0.188, tau -0.046 sigma.

Standard-physics correlate: nearest standard frame: Koide charged-lepton mass relation; differs because QTT treats the square-root cone as a constraint on family access/readout, not as an unexplained numerological coincidence.
K_E = (m_e + m_mu + m_tau)/(sqrt(m_e)+sqrt(m_mu)+sqrt(m_tau))^2 = 2/3
Book pages (v10.01): pp. 1037-1045 and scorecard pp. 126-128; charged-lepton family-rank concept DOI 10.5281/zenodo.20698191
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Numerical access pass with an explicit structural caveat or pending convention map.
Observation links
beta_ZThe Wilson-normalized QTT color-door source point fixed by the Z-boundary stiffness rail in the A6 compact-color theorem.β_ZQTT-nativeframework theoremTheorem within QTTExpand / Collapse
Aliases: Z-sector source stiffness, Wilson-normalized color-door source point

beta_Z should be read as a declared source stiffness in the QTT color-sector route, not as a freely retuned lattice regulator. It is printed before the forced compact-color kernel and SU_J(3) Haar coefficient are read.

Standard-physics correlate: nearest standard frame: Wilson/lattice coupling beta; differs as a fixed Z-sector source stiffness rather than a tunable regulator.
rho=2pi cos(pi/8); chi_Z=2/3+1/(4rho^2)=0.6740857385694149; beta_Z=6chi_Z=4.04451443141649.
Book pages (v10.01): pp. 1008-1020; color/glue workpack notation
Anchor note: Term indexed to the v10.01 source pages listed above.
chi_ZThe QTT Z-boundary stiffness/response rail that fixes beta_Z in the A6 compact-color source chain.χ_ZQTT-nativeframework theoremTheorem within QTTExpand / Collapse
Aliases: Z-sector response factor

chi_Z names a declared response rail. It must be printed before comparison, not adjusted afterward to rescue a color-sector claim. In the A6 compact-color theorem it is the bridge from the projected rho rail to the Wilson-normalized beta_Z source point.

Standard-physics correlate: nearest standard frame: Z-sector susceptibility/response factor; differs as a declared access response rail rather than an empirical patch.
chi_Z = 2/3 + 1/(4rho^2), rho=2pi cos(pi/8), so chi_Z=0.6740857385694149 and beta_Z=6chi_Z.
Book pages (v10.01): pp. 1008-1020; color/glue workpack notation
Anchor note: Term indexed to the v10.01 source pages listed above.
Charge ledgerThe modular-holonomy partition structure underlying Standard-Model charge assignments.QTT-reframedstructuralStructural theorem/guardrailExpand / Collapse

Electric charge is read as integer dial/holonomy accounting before the electron-normalized lab convention is applied.

Standard-physics correlate: nearest standard concept: the usual textbook object remains recognizable, but QTT re-reads its source through finite address capacity and access.
q = N e0; in SM bridge, N_f = 3 Q_f.
Book pages (v10.01): pp. 247-249, 285-293, 303
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: No-fit theorem, construction, or leading face; not automatically a precision numerical pass.
Neutrino ratioThe conditional QTT neutrino mass-squared ratio, carried by the Artian LIA theorem and its explicit neutral-branch audit.QTT-reframedconditional identity / source auditReadout conventionExpand / Collapse
Scope correction · 31 July 2026
The ratio identity is conditional; its finite source construction remains open.

Once the nonzero source vector (0, 1, ρ) is supplied, Δm231 / Δm221 = ρ2 follows exactly. The audit closes a necessary correction: common completed-bundle and A1 factors cancel, so they cannot by themselves supply a relative ρ.

A finite asymmetric branch pair and a finite certificate for the five-fold neutral completion remain amber gates. The frozen JUNO target remains a separate observational test of the conditional line.

Read the A1 neutral-branch audit · 10.5281/zenodo.21721466
Aliases: LIA neutrino ratio, neutral family-rank ratio, rho_nu squared

The ratio is a no-retune observational test only after the nonzero source vector is supplied, because the absolute source scale m_Delta then cancels. The v1.1 audit closes common-factor cancellation and keeps the finite asymmetric source event and five-fold neutral completion open. Oscillation gaps, endpoint bounds, cosmological sums, PMNS fits, CODATA Planck units, and measured G audit the conditional line after the source rail is declared; they do not write rho_nu.

Standard-physics correlate: nearest standard concept: the usual textbook object remains recognizable, but QTT re-reads its source through finite address capacity and access.
rho_nu = 2*pi*cos(pi/8); Delta m^2_31 / Delta m^2_21 = rho_nu^2 = 4*pi^2*cos^2(pi/8) = 33.69693720145647...
Book pages (v10.01): pp. 121-124, 521, 541, 966-967, 1195-1196; current neutrino family-rank concept DOI 10.5281/zenodo.20571452; neutral-branch audit concept DOI 10.5281/zenodo.21721466
Anchor note: Term indexed to the v10.01 source pages listed above.
Reader links
Neutrino family-rank reference theoremThe current QTT theorem packaging the LIA neutrino source ratio, minimal neutral spectrum, legal-class/firewall discipline, and observation-last audit gates.QTT-nativesource-ratio closedReadout conventionExpand / Collapse
Aliases: Artian LIA Neutrino Family-Rank Reference Theorem, Sigma-NEUTRINO-FAMILY-RANK-REFERENCE-THEOREM

The theorem is source-first: it declares the neutral family-rank rail and minimal branch before reading NuFIT, JUNO, DUNE, Hyper-K, KATRIN, DESI, Euclid, CMB-S4, or neutrinoless-double-beta constraints.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
rho_nu = 2*pi*cos(pi/8); (m1,m2,m3)=m_Delta*(0,1,rho_nu)/sqrt(rho_nu^2-1); R_nu=rho_nu^2.
Book pages (v10.01): pp. 1195-1196 and compact ledger p. 1252; concept DOI 10.5281/zenodo.20571452
Anchor note: Term indexed to the v10.01 source pages listed above.
Minimal neutral spectrumThe QTT neutral-family spectrum in which the first row is a protected null branch and the remaining rows are fixed by rho_nu and m_Delta.QTT-nativeclosed within declared source theoremReadout conventionExpand / Collapse
Aliases: minimal active-branch spectrum, neutral source branch

It is a source spectrum, not a fit to observed oscillation gaps. The laboratory gaps audit it only after the branch is printed.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
(m1,m2,m3)=m_Delta*(0,1,rho_nu)/sqrt(rho_nu^2-1).
Book pages (v10.01): pp. 1195-1196 and compact ledger p. 1252; concept DOI 10.5281/zenodo.20571452
Anchor note: Term indexed to the v10.01 source pages listed above.
m_DeltaThe absolute neutrino source scale in the LIA family-rank theorem.QTT-nativeaudit-open source scaleReadout conventionExpand / Collapse
Aliases: neutrino absolute source scale, neutral source scale

m_Delta is not allowed to be reverse-engineered from oscillation data and then called a source derivation. Until a non-oscillation QTT source rail derives it independently, numerical SI-ruler and G rows remain observation-last audit rows.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
Delta m^2_21 = m_Delta^2/(rho_nu^2 - 1); Delta m^2_31 = rho_nu^2*m_Delta^2/(rho_nu^2 - 1).
Book pages (v10.01): pp. 1195-1196 and compact ledger p. 1252; concept DOI 10.5281/zenodo.20571452
Anchor note: Term indexed to the v10.01 source pages listed above.
Non-gravitational Artian-ruler corridorThe neutrino-paper bridge from the neutral source scale to an Artian ruler without using measured G as an input.QTT-nativeformula closed / numerical audit openReadout conventionExpand / Collapse
Aliases: Artian-ruler bridge, G_A^(nu) audit corridor

The formula is closed inside the paper, but the numerical ruler and G-style audit remain observation-last until m_Delta is independently sourced.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
m_Delta*E_*=(2*pi)^5*v_Q^2; ell_A^(nu)=hbar*c*m_Delta/((2*pi)^5*v_Q^2); G_A^(nu)=hbar*c^5*(m_Delta/((2*pi)^5*v_Q^2))^2.
Book pages (v10.01): pp. 1195-1196 and compact ledger p. 1252; concept DOI 10.5281/zenodo.20571452
Anchor note: Term indexed to the v10.01 source pages listed above.
PMNS source-access theoremThe QTT source-access reading of the PMNS neutrino mixing matrix as the relative real-J orientation of the charged-lepton and neutral LIA bases.U_PMNS^srcQTT-reframedgreen finite enumeration/source angles/solar bridge/CKM/CP / yellow octant and CP-profile gatesReadout conventionExpand / Collapse
Aliases: Artian/QTT PMNS Neutrino Mixing Reference Framework, PMNS source-face theorem, PMNS angle-word root-gate certificate

The source object is U_PMNS^src=(U_E^src)^{T_J}U_nu^src. Version 5.0 keeps the source rows and observation rows separated, preserves the declared finite first-order source-word enumeration, and prints the CKM micro-provenance bridge that supplies the solar row. Atmospheric-octant, CP-profile likelihood, Majorana, and end-to-end access rows remain observation windows; they may audit or falsify the source, but they may not write it.

Standard-physics correlate: nearest standard frame: PMNS neutrino mixing matrix; differs by reading the matrix as the real-J source orientation between charged-lepton and neutral LIA bases, with NuFIT rows as comparators only.
L_PMNS^(1)=H_13 x B_23 x B_12 x D_CP; |L_PMNS^(1)|=36; w_star=(h_triangle,+b_3,+b_boundary,pi); s_C^bridge=sqrt(2)sin(pi/20)(1+1/(10rho)); U_PMNS^(src,QTT)=(U_E^(src,QTT))^(T_J) U_nu^(src,QTT).
Book pages (v10.01): pp. 158-162, 1113-1114, 1134-1138; PMNS source-access concept DOI 10.5281/zenodo.20735493
Anchor note: Term indexed to the v10.01 source pages listed above.
Observation links
PMNS source-face certificateThe v5.0 PMNS certificate around the source-access framework: it prints the finite 36-word source alphabet, the one active survivor, the CKM-derived solar bridge, the source angles, and the CP-area theorem without letting observation rows write the source.C_PMNSQTT-nativeGREEN finite enumeration uniquenessReadout conventionExpand / Collapse
Aliases: PMNS finite registry certificate, PMNS label-permutation certificate, PMNS angle-word root-gate certificate, PMNS V5.0 certificate

The certificate strengthens the source side while keeping the remaining gates visible. The legal source alphabet has 36 words; source gates leave exactly one active survivor, one access shadow, two quarantined CP side branches, and 32 excluded source words. This greens the finite enumeration and solar bridge inside the declared class without claiming that every laboratory PMNS access row is already green.

Standard-physics correlate: nearest standard frame: PMNS parameter-label ambiguity and convention audit; differs by printing a finite 36-word source enumeration with one active survivor before observation rows are opened.
|L_PMNS^(1)|=2*3*3*2=36; |S_PMNS^active|=1; PASS_SOURCE_UNIQUE=1; ACCESS_SHADOW_NOT_SOURCE=1; QUARANTINED_CP_SIDE_BRANCH=2; SOURCE_GATE_EXCLUDED=32.
Book pages (v10.01): pp. 158-162, 1113-1114, 1134-1138; finite angle-word/root-gate certificate under concept DOI 10.5281/zenodo.20735493
Anchor note: Term indexed to the v10.01 source pages listed above.
Observation links
PMNS joint triad coefficient packetThe v5.0 source-side coefficient object for the PMNS angle packet: equilateral triad height, barycentric family share, charged/neutral boundary half-share, and the CKM-derived solar bridge.{sqrt(3)/2, 1/3, 1/6}QTT-nativeGREEN-COEFFICIENTReadout conventionExpand / Collapse
Aliases: Joint Triad Coefficient Theorem, PMNS triad coefficients, PMNS angle coefficient packet

The coefficient packet is not three fitted numbers. It is one source-side triad object: the height gives the reactor small face, the barycentric share moves the atmospheric angle above maximal, and the boundary half-share enters the solar interface after the charged-family Cabibbo bridge is supplied by the v5.0 CKM micro-provenance theorem.

Standard-physics correlate: nearest standard frame: phenomenological angle ansatz; differs because QTT treats {sqrt(3)/2, 1/3, 1/6} as one declared source-side triad object before observation rows are read.
h_triangle=sqrt(3)/2; b_3=1/3; b_boundary=1/6; sin(theta13)=h_triangle/rho; theta23=pi/4+b_3/rho; theta12=pi/4-theta_C^bridge+b_boundary/rho.
Book pages (v10.01): pp. 158-162, 1113-1114, 1134-1138; coefficient and bridge theorem under concept DOI 10.5281/zenodo.20735493
Anchor note: Term indexed to the v10.01 source pages listed above.
Observation links
PMNS solar Cabibbo interfaceThe v5.0 PMNS solar row: theta12 is supplied by a CKM micro-provenance source bridge rather than by a fitted PMNS solar decimal.theta_C^bridgeQTT-nativeGREEN-SOLAR-BRIDGEReadout conventionExpand / Collapse
Aliases: PMNS solar interface, solar Cabibbo bridge, theta12 bridge

The solar row is the door between the charged-family sector and the neutral PMNS face. Version 5.0 prints the CKM path-ordering bridge directly and refuses to use the PMNS solar decimal as a hidden constructor. The bridge is therefore a source certificate, not a fitted solar knob.

Standard-physics correlate: nearest standard frame: quark-lepton complementarity or Cabibbo-corrected mixing; differs because QTT now derives the solar bridge from a CKM micro-provenance source theorem before PMNS observation rows are opened.
s_C^bridge=sqrt(2)sin(pi/20)(1+1/(10rho))=0.225042858584379; theta12=pi/4-arcsin(s_C^bridge)+1/(6*rho); sin^2(theta12)=0.306880189271769; Delta s_C^path=8.03050918e-5.
Book pages (v10.01): pp. 158-162, 1113-1114, 1134-1138; solar-bridge closure under concept DOI 10.5281/zenodo.20735493
Anchor note: Term indexed to the v10.01 source pages listed above.
CKM micro-provenance bridgeThe v5.0 source-side bridge that supplies the Cabibbo input used by the PMNS solar row without reading PMNS observations.s_C^bridgeQTT-nativeGREEN-CKM-MICROPROVENANCEReadout conventionExpand / Collapse
Aliases: precision Cabibbo bridge, source-side Cabibbo bridge, solar-bridge closure theorem

This bridge sits at the quark/PMNS boundary. The isolated Artian-MARIAM core face gives a near Cabibbo value, but the v5.0 theorem adds the path-ordering uplift from the quark source-access sector. The result is allowed to enter theta12 because it is a quark-sector source certificate; it is not a fit to solar, KamLAND, or NuFIT PMNS data.

Standard-physics correlate: nearest standard frame: Cabibbo-angle input or quark-lepton complementarity insert; differs because QTT treats the precision Cabibbo bridge as a source-side quark path-ordering certificate, not as a PMNS fit parameter.
s_C^core=sqrt(exp(-3)+exp(-7)-2exp(-10))=0.224962553493; s_C^bridge=sqrt(2)sin(pi/20)(1+1/(10rho))=0.225042858584379; Delta s_C^path=8.03050918e-5.
Book pages (v10.01): pp. 158-162, 1113-1114, 1134-1138; PMNS bridge under concept DOI 10.5281/zenodo.20735493; full quark/CKM precision packet under concept DOI 10.5281/zenodo.20722978
Anchor note: Term indexed to the v10.01 source pages listed above.
PMNS candidate faceThe printed QTT normal-ordering PMNS face: upper-octant, CP-even, with reactor, solar, atmospheric, CKM-bridge, and finite-enumeration source rows green inside the v5.0 source algebra.QTT-nativegreen finite source face / yellow atmospheric access rowReadout conventionExpand / Collapse
Aliases: QTT PMNS book face, upper-octant CP-even PMNS face

The face is a source object, not a fitted NuFIT table. Version 5.0 makes the source side stronger without overclaiming the lab side: finite enumeration, source angles, the solar bridge, and CP branch are green inside the declared class, while atmospheric-octant, likelihood-grid, Majorana, CP-profile, and access rows remain live tests.

Standard-physics correlate: nearest standard frame: fitted PMNS mixing angles and CP phase; differs because QTT prints one upper-octant, CP-even source face while keeping the atmospheric-octant and CP-profile gates visibly live.
sin^2 theta12=0.3068801893; sin^2 theta13=0.0222572157; sin^2 theta23=0.5572965438; delta_PMNS=pi.
Book pages (v10.01): pp. 160-162 and 1134-1138; concept DOI 10.5281/zenodo.20735493
Anchor note: Term indexed to the v10.01 source pages listed above.
Observation links
PMNS constructor firewallThe no-smuggling rule for PMNS: observed angles, CP fits, likelihood tables, and oscillation probabilities cannot construct the source matrix.QTT-nativestructuralStructural theorem/guardrailExpand / Collapse

The firewall is the reason v5.0 can call theta13/theta23, the CKM-derived theta12 bridge, the coefficient packet, and the CP theorem green without pretending that every observation row is green. The source is fixed first; NuFIT rows, lab probabilities, and likelihood packets read it later.

Standard-physics correlate: nearest standard frame: blinding/preregistration and fit-domain separation; differs by forbidding NuFIT angles, CP phase, and likelihood packets from writing the source PMNS matrix.
d U_PMNS^src / d theta_ij^obs = d U_PMNS^src / d delta_CP^obs = d U_PMNS^src / d NuFIT = 0 as constructor directions.
Book pages (v10.01): pp. 158-162, 1113-1114, 1134-1138; concept DOI 10.5281/zenodo.20735493
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: No-fit theorem, construction, or leading face; not automatically a precision numerical pass.
Observation links
PMNS atmospheric octant branchThe live PMNS falsifier: QTT prints an upper-octant theta23 source face while SK-inclusive fits currently stress the lower-octant row.QTT-nativeyellow active branchReadout conventionExpand / Collapse
Aliases: theta23 active branch, upper-octant PMNS branch

The v5.0 theorem derives theta23=pi/4+1/(3*rho) as a direct source output. The branch still stays observationally live because atmospheric, DUNE, Hyper-K, IceCube/DeepCore, and row-packet choices can break the printed upper-octant source face.

Standard-physics correlate: nearest standard frame: theta23 octant ambiguity; differs because QTT declares the upper-octant source branch as a falsifiable row rather than a fitted preference.
sin^2 theta23^QTT=0.5572965438, theta23=48.29007776 deg; lower-octant stress row in the paper is +5.82 sigma.
Book pages (v10.01): pp. 160-162 and 1134-1138; concept DOI 10.5281/zenodo.20735493
Anchor note: Term indexed to the v10.01 source pages listed above.
Observation links
PMNS access shadowThe lower-octant access reflection associated with theta23; v5.0 keeps the upper-octant source word and treats the mirror as a readout/reflection issue, not a replacement source.QTT-nativeaccess shadow / not sourceReadout conventionExpand / Collapse
Aliases: mu-tau access shadow, theta23 access reflection

This is not a second source solution. It is what a row-label/access reflection looks like after the source face is printed. It remains important because the SK-inclusive row currently stresses the active upper-octant branch.

Standard-physics correlate: nearest standard frame: theta23 octant/reflection degeneracy; differs because QTT treats the mu-tau reflection as an access shadow, not a replacement source.
sin^2 theta23=0.5572965438 -> 1 - sin^2 theta23 = 0.4427034562; certificate status ACCESS_SHADOW_NOT_SOURCE.
Book pages (v10.01): pp. 160-162 and 1134-1138; finite source-face discussion under concept DOI 10.5281/zenodo.20735493
Anchor note: Term indexed to the v10.01 source pages listed above.
Observation links
PMNS CP registryThe v5.0 CP-branch rule: the active neutral LIA PMNS face has no independent oriented CP two-cell, so the real-J source plaquette area vanishes and delta_PMNS=pi.QTT-nativeactive pi branch / 9pi8 quarantinedReadout conventionExpand / Collapse
Aliases: PMNS CP branch registry, 9pi/8 PMNS quarantine, PMNS side branch

The CP registry prevents two physically different CP branches from coexisting silently in the corpus. Version 5.0 keeps the active pi branch as the source branch and the 9pi/8 branch quarantined unless a separate source theorem or public erratum activates it.

Standard-physics correlate: nearest standard frame: PMNS delta_CP convention and CP-branch bookkeeping; differs by deriving the active CP-even branch from a real-J zero-area theorem and quarantining the 9pi/8 side branch unless a source theorem or public erratum activates it.
A_CP^J(alpha beta; i j)=Jcoeff[U_ai U_bj (U_aj)^(T_J)(U_bi)^(T_J)]; Sigma_CP^(nu,src)=empty => A_CP^J=0; delta_PMNS=pi; J_PMNS=0.
Book pages (v10.01): pp. 160-162 and 1134-1138; CP-area theorem and quarantine ledger under concept DOI 10.5281/zenodo.20735493
Anchor note: Term indexed to the v10.01 source pages listed above.
Observation links
PMNS root angle-word derivationThe v5.0 finite source-word theorem for the PMNS angle packet: within the declared first-order class, one active source word survives and the solar row is supplied by a printed CKM bridge.QTT-nativeGREEN finite first-order enumeration / broader access gates liveReadout conventionExpand / Collapse
Aliases: PMNS angle-word theorem, root PMNS angle derivation

Version 5.0 preserves the finite first-order enumeration while adding the CKM micro-provenance bridge. It does not say that every possible higher-order source grammar, laboratory access map, atmospheric row, Majorana row, or CP-profile question is finished. It says the printed first-order PMNS source alphabet has one active survivor before observation rows enter.

Standard-physics correlate: nearest standard frame: model-building derivation of mixing angles; differs because QTT now closes the declared finite first-order PMNS angle-word enumeration while keeping observation rows outside the constructor.
GREEN finite enumeration inside L_PMNS^(1); not equal to full empirical PMNS closure.
Book pages (v10.01): pp. 158-162, 1113-1114, 1134-1138; v5.0 preserves the declared finite first-order source-word enumeration and adds the CKM bridge under concept DOI 10.5281/zenodo.20735493
Anchor note: Term indexed to the v10.01 source pages listed above.
Observation links
J_PMNSThe PMNS CP readout in the active QTT branch, equal to zero because the v5.0 real-J source plaquette has zero oriented CP area and selects delta_PMNS=pi.QTT-reframedGREEN-CP source branch / observation rows liveReadout conventionExpand / Collapse
Aliases: leptonic Jarlskog invariant, PMNS CP branch

QTT reads the CP phase as a real-J holonomy branch. Version 5.0 keeps the CP-area theorem explicit: the pi branch is source-active and the 9pi/8 branch is quarantined; future long-baseline rows can falsify the active branch, but may not tune the source phase.

Standard-physics correlate: nearest standard frame: leptonic Jarlskog invariant; differs by reading CP violation through the real-J branch, with the current candidate delta=pi giving J_PMNS=0.
J_PMNS = c12*s12*c23*s23*c13^2*s13*sin(delta); delta_PMNS=pi => J_PMNS=0.
Book pages (v10.01): pp. 160-162 and 1134-1138; concept DOI 10.5281/zenodo.20735493
Anchor note: Term indexed to the v10.01 source pages listed above.
Observation links
ChiralityQTT capacity selection of left-handed weak interactions and active-neutrino spectrum.QTT-reframedstructuralStructural theorem/guardrailExpand / Collapse
Aliases: V-A access, Left-handed weak selection

The chirality claim is that the visible weak access rail selects the left-handed door from the same A1/A5/A6/A7 substrate that supports the neutrino mass ratio.

Standard-physics correlate: nearest standard concept: the usual textbook object remains recognizable, but QTT re-reads its source through finite address capacity and access.
Book pages (v10.01): pp. 132, 177, 504-505, 521, 935
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: No-fit theorem, construction, or leading face; not automatically a precision numerical pass.
Finite source-graph multiplicity theoremA finite-orbit theorem that counts chirality-sector source generators from completed molecule-surface-electron-readout graphs and their reversal stabilizers.QTT-nativeconditional theorem / Log-Gram amplitude closure / prospective test sealedTheorem within QTTExpand / Collapse
Aliases: source-graph uniqueness theorem, chiral source-graph theorem

A4 supplies the signed reversal character, A5 makes the entire interface event the source object, A6 keeps the legal graph class finite, and A7 requires every molecular and surface reversal image to remain in the completed packet. The theorem is conditional on the printed chemistry/crystallography graph grammar; it does not infer that grammar from a fitted laboratory amplitude.

Standard-physics correlate: nearest standard frame: character decomposition of a finite permutation representation and Frobenius reciprocity; differs because QTT treats the completed interface graph as the physical source object and freezes its constructor before held-out comparison.
dim W_ab = #{[Gamma] in C/K : chi_ab restricted to Stab(Gamma) is trivial}.
Book pages (v10.01): QTT Main Book v10.01 pp. 48, 80-82, 263-266, 912-916; theorem paper v1.2 pp. 4-10
Anchor note: Term indexed to the v10.01 source pages listed above.
Observation links
Normalized energy-shape theoremIf the active chirality-odd source space is one-dimensional and both mirror rows share one scalar laboratory access kernel, their normalized energy dependence is identical and their signs are opposite.QTT-nativeconditional theorem / prospective transfer openTheorem within QTTExpand / Collapse
Aliases: common-kernel mirror-shape theorem, chiral normalized-shape theorem

The source graph fixes the odd direction while the access map supplies the shared energy-dependent camera. Normalization removes the unknown overall amplitude but does not prove that access is scalar; rank-one access is therefore a printed premise and a held-out transfer condition.

Standard-physics correlate: nearest standard frame: rank-one factorization and normalized curve collapse; differs because QTT separates the finite source multiplicity from the access-kernel rank and forbids using the same mirror rows to invent both the control and the theorem.
P_+(E)/||P_+|| = -P_-(E)/||P_-|| when dim W_odd=1 and rank A_access=1.
Book pages (v10.01): QTT Main Book v10.01 pp. 263-266 and 912-916; theorem paper v1.2 pp. 9-10
Anchor note: Term indexed to the v10.01 source pages listed above.
Observation links
Log-Gram spin rapidityThe exact normalized spin output of a positive two-channel transmission operator, written in the vector coefficient of its matrix logarithm; it removes common gain and turns commuting serial molecular segments into additive rapidities.QTT-nativeexact amplitude functional / material source packet open / prospective fixed-gap test sealedTheorem within QTTExpand / Collapse
Aliases: CISS Log-Gram amplitude, spin-filter rapidity, vector logarithmic Gram coordinate

The scalar part of log Q is an access gain and cancels from normalized polarization. The vector part is the finite spin-selective source/readout imbalance. QTT closes this operator-to-amplitude map but does not infer the material-specific vector from symmetry alone. The separately sealed length-and-defect experiment tests additive completion and a stronger fixed-gap conjecture without fitting the held-out rows.

Standard-physics correlate: nearest standard frame: the Pauli decomposition of a positive 2x2 operator and additive log-likelihood or transfer-matrix rapidity; differs because QTT assigns the vector to a finite completed-event source packet and seals a molecular-length/defect constructor before prospective data.
log Q=alpha I+r.sigma; rho_out=(I+tanh|r| rhat.sigma)/2; atanh|P|=|r|.
Book pages (v10.01): QTT Main Book v10.01 A4-A7 anchors pp. 48, 80-82, 263-266, and 912-916; theorem paper v1.3 pp. 11-16; sealed test v1.0 pp. 4-12
Anchor note: Term indexed to the v10.01 source pages listed above.
See also: Finite source-graph multiplicity theorem, Normalized energy-shape theorem, Signed facial-defect law, Raw-current covariance, A4, A5-X, A6, A7
Chirality-odd sector-activation theoremMirror-opposite spin rows reconstruct a nonzero chirality-odd response and thereby reject the zero-odd or chirality-even-only branch under the declared uncertainty model.QTT-nativetheorem / high-separation empirical activationTheorem within QTTExpand / Collapse
Aliases: odd-sector activation, zero-odd branch test

A4 supplies the signed reversal character; A5 types the full molecule-surface-electron-record event; A6 makes its candidate source class finite; A7 closes the mirror orbit. The activation theorem identifies the necessary odd sector observed by handedness reversal without pretending that sector existence alone proves one microscopic graph.

Standard-physics correlate: nearest standard frame: odd/even decomposition under mirror reversal; differs because QTT connects the activated response to a finite completed-event source module and an independently testable graph multiplicity.
p_odd(E) = [p_+(E)-p_-(E)]/2; p_odd != 0 rejects the zero-odd branch.
Book pages (v10.01): QTT Main Book v10.01 pp. 48, 80-82, 263-266, and 912-916; theorem paper v1.2 pp. 12-14 and 19
Anchor note: Term indexed to the v10.01 source pages listed above.
Observation links
Crystal-fixed chiral spin reflectionThe Cu(643)/(111) terrace intersection fixes a one-axis Householder reflection before spin data are read; full covariance can then test that transformation without fitting its direction.QTT-nativeconditional theorem / covariance verdict openTheorem within QTTExpand / Collapse
Aliases: Cu(643) Householder reflection, D_x CISS test, terrace-edge reflection

The crystal planes fix the edge address read by the spin camera. If the chirality-odd source has only that edge support, molecular reversal flips the edge component and leaves the perpendicular plane unchanged. The edge-support premise remains explicit until a finer source packet derives it.

Standard-physics correlate: nearest standard frame: a Householder reflection across the plane perpendicular to a crystallographic edge; differs because the direction is a source/access constructor and the paper separates no-chirality rejection from D_x mismatch in two covariance statistics.
t=(6,4,3)x(1,1,1)/||.||=(1,-3,2)/sqrt(14); D_t=I-2tt^T; D_x=diag(-1,1,1).
Book pages (v10.01): QTT Main Book v10.01 pp. 263-266 and 912-916; theorem paper v1.2 pp. 10-13
Anchor note: Term indexed to the v10.01 source pages listed above.
Observation links
See also: Chirality-odd sector-activation theorem, Axial-vector frame transport, Four-cell chiral spin design, Full covariance
Top-antitop threshold accessQTT reading of the LHC top-antitop threshold as a finite beam-access/address closure theorem.QTT-reframedgreen-candidateCandidate / map pendingExpand / Collapse

The top threshold object is not treated as a stable hadron but as a finite threshold access event with declared address closure.

Standard-physics correlate: nearest standard concept: the usual textbook object remains recognizable, but QTT re-reads its source through finite address capacity and access.
Book pages (v10.01): pp. 1008-1020, 1248
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Numerical access pass with an explicit structural caveat or pending convention map.
See also: Access window, Color closure, Top quark mass
Oxygen paramagnetismQTT derivation route for the O2 X^3 Sigma_g^- ground state from Artian/Faraday-style capacity counting.QTT-reframedstructuralStructural theorem/guardrailExpand / Collapse

This is a materials-facing record connecting microscopic spin/orbital access to visible magnetic behavior.

Standard-physics correlate: nearest standard concept: the usual textbook object remains recognizable, but QTT re-reads its source through finite address capacity and access.
Book pages (v10.01): pp. 280, 748-755, 1248
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: No-fit theorem, construction, or leading face; not automatically a precision numerical pass.
Maison ValmyThe named QTT bridge for hydrogen hyperfine and structure-free muonium lepton-access clock comparisons.QTT-nativegreen-candidateCandidate / map pendingExpand / Collapse
Aliases: Maison Valmy bridge, hydrogen HFS bridge

Maison Valmy is a memory hook for a spectroscopy access route, not a new physical constant. It points to how hydrogen and muonium hyperfine data test lepton-access clock structure.

Standard-physics correlate: nearest standard frame: hydrogen and muonium hyperfine spectroscopy; differs as the named QTT bridge for lepton-access clock checks.
Hydrogen HFS and muonium access clocks compare declared lepton-access factors against precision spectroscopy.
Book pages (v10.01): pp. 1102-1103 and scorecard p. 144
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Numerical access pass with an explicit structural caveat or pending convention map.
Concept DOI families

Cosmology, Lensing, and Tests

23 terms
Time DriftThe A3 creation-ledger drift angle that, together with Time Tilt, maps the ABC source age to the laboratory cosmic age.QTT-reframedsource-equation closedReadout conventionExpand / Collapse
Aliases: Creation Drift, delta_cre, cosmic age bridge

Time Drift is the creation-side clock correction. It says the 15.4 Gyr ABC source age is not the same object as the laboratory age inferred by standard pipelines; the lab age is a readout through the fixed tilt-plus-drift angle.

Standard-physics correlate: nearest standard concept: the usual textbook object remains recognizable, but QTT re-reads its source through finite address capacity and access.
delta_cre^(0)=pi/48; theta_age=pi/8+pi/48=7pi/48; t0_lab=T0_ABC cos(7pi/48); with T0_ABC=15.4 Gyr, t0_lab=13.81184 Gyr.
Book pages (v10.01): arrow-of-time concept DOI 10.5281/zenodo.20761499; Creation Ledger concept DOI 10.5281/zenodo.20633582; cosmic-age and ABC-clock anchors
Anchor note: Term indexed to the v10.01 source pages listed above.
Past HypothesisThe low-past condition re-read in QTT as a consequence of a first tick and an oriented persistent completed-record ledger, not as an independent typicality postulate.QTT-reframedconditional theoremReadout conventionExpand / Collapse

The arrow paper is explicit: QTT does not claim the first tick T0 or the orientation root is derived from deeper structure here. Once those premises and A1/A7 record persistence are granted, the low-past record reading follows. A3 volume growth is a separate cosmological ledger.

Standard-physics correlate: nearest standard frame: low-entropy initial condition; differs because QTT derives the low-past reading once a first tick and an A1/A7 completed-record orientation are granted, while keeping that first-tick root gate explicit.
T0 + Delta N_rec>=0 -> low-past record readout; no independent probabilistic Past Hypothesis is inserted.
Book pages (v10.01): arrow-of-time concept DOI 10.5281/zenodo.20761499; first-tick/T0_ABC anchors pp. 540, 711-715, 1199-1205
Anchor note: Term indexed to the v10.01 source pages listed above.
T0_ABCQTT absolute-background cosmic age from the triple-anchor closure record.T_0^ABCQTT-nativegreen-candidateCandidate / map pendingExpand / Collapse

The ABC age is the source-clock age; the observed/lab age differs through projection and clock/access structure.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
T_0^ABC = 15.40 Gyr.
Book pages (v10.01): pp. 540, 711-715, 1199-1205, 1248; Creation Ledger concept DOI 10.5281/zenodo.20633582
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Numerical access pass with an explicit structural caveat or pending convention map.
Hubble branch ratioThe local-vs-CMB Hubble branch ratio tied to the same half-angle invariant.QTT-reframedgreen-candidateCandidate / map pendingExpand / Collapse

This is one of the cross-sector appearances of I_clk: the same clock projection that appears in neutrino and quantum-information records also appears in cosmology.

Standard-physics correlate: nearest standard concept: the usual textbook object remains recognizable, but QTT re-reads its source through finite address capacity and access.
H_late / H_early = sec(pi/8).
Book pages (v10.01): pp. 106, 125, 540, 711-715, 1209; Creation Ledger concept DOI 10.5281/zenodo.20633582
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Numerical access pass with an explicit structural caveat or pending convention map.
ZAHRAThe named two-clock Hubble-branch map connecting the ABC/WV clock rail, Creation Ledger projection fan, and observed local-versus-CMB H0 split.QTT-nativegreen-candidateCandidate / map pendingExpand / Collapse
Aliases: ZAHRA Two-Clock Hubble Branch

ZAHRA is the QTT branch label for a specific access reading of the Hubble landscape. The Creation Ledger consolidation keeps the ordinary one-clock Hubble tension separate from the QTT two-clock comparison and explicitly refuses an Omega_Lambda sigma claim.

Standard-physics correlate: nearest standard frame: Hubble-tension branch model; differs by reading H0 branches through the two-clock ABC/WV access map.
H_late/H_early = sec(pi/8); Creation Ledger reports the branch ratio at about +0.109 sigma and the triad 63.493 -> 68.724 / 69.734 / 70.855 km s^-1 Mpc^-1.
Book pages (v10.01): pp. 711-715, 1196-1197 and compact ledger p. 1252; Creation Ledger concept DOI 10.5281/zenodo.20633582
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Numerical access pass with an explicit structural caveat or pending convention map.
Observation links
Creation LedgerThe QTT source-side cosmology ledger: address creation, coasting closure, the vacuum identity, and the finite-certificate problem for the cosmological source amplitude.QTT-reframedstructuralStructural theorem/guardrailExpand / Collapse
Aliases: Law of Creation ledger, Lambda-branch sector theorem

The Creation Ledger is not a dark-energy fluid with a fitted density. It is the A3 source accounting that separates the geometric projection factor, the microscopic source amplitude, and the cosmological readout. Version 3.0 of the dedicated cosmological-constant ledger closes the reduction and identifiability boundary while leaving the axiom-to-unique Blop certificate openly pending.

Standard-physics correlate: nearest standard frame: dark-energy/cosmological-source sector; differs by replacing a fitted dark-energy fluid with A3 address-creation accounting and explicit status labels.
rho_Lambda = kappa epsilon hbar c/(4*pi*l_A^4); kappa=1/3; rho_Lambda/rho_P=epsilon/(12*pi). The observed LambdaCDM packet fixes only kappa*epsilon until epsilon_src is independently derived.
Book pages (v10.01): pp. 212-213 and 711-715; Creation Ledger concept DOI 10.5281/zenodo.20633582
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: No-fit theorem, construction, or leading face; not automatically a precision numerical pass.
Cosmological source amplitudeThe one dimensionless microscopic amplitude left after the homogeneous vacuum source law is separated from its isotropic geometric projection.QTT-nativestructuralPendingExpand / Collapse
Aliases: epsilon_Lambda, vacuum source amplitude, epsilon_src

This amplitude is not Omega_Lambda, H0, or a fitted fluid density. Those quantities may construct a comparator packet, but they may not construct the source value. Green closure requires A1/A2/A3/A5X/A6/A7 to select one finite event set, measure, share law, legality map, and normalization before the comparator is opened.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
rho_Lambda/rho_P=epsilon/(12*pi); epsilon_src=(1/Z_Blop) sum_{sigma in E_legal} m_Blop(sigma) p_hom(sigma).
Book pages (v10.01): pp. 535, 540, 751, 1209, 1248-1255
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: No-fit theorem, construction, or leading face; not automatically a precision numerical pass.
Kappa-epsilon degeneracyThe identifiability theorem showing that a homogeneous vacuum observation fixes the product of geometric projection and source amplitude, not the two factors separately.QTT-nativestructuralStructural theorem/guardrailExpand / Collapse
Aliases: vacuum factorization boundary, projection-amplitude degeneracy

The theorem prevents the isotropic one-third factor and the microscopic Blop amplitude from being presented as two observational confirmations of one cosmological packet. Separate source provenance is required to break the degeneracy.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
(kappa,epsilon) -> (a*kappa,epsilon/a) leaves rho_Lambda invariant.
Book pages (v10.01): pp. 535, 540, 751, 1209, 1248-1255
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: No-fit theorem, construction, or leading face; not automatically a precision numerical pass.
Finite source certificateThe complete finite object required before a microscopic cosmological amplitude can be called source-derived rather than reconstructed from its comparator.QTT-nativestructuralPendingExpand / Collapse
Aliases: Blop source certificate, normalized source certificate

A certificate is more than a formula name or a checksum. It must contain the finite legal event set, source measure, homogeneous share, legality/exclusion map, and normalization, and those components must be uniquely selected by the axioms rather than chosen after the target is known.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
epsilon_src=(1/Z_Blop) sum_{sigma in E_legal} m_Blop(sigma)p_hom(sigma); (A1,A2,A3,A5X,A6,A7) =>! (E,m,p,L,H).
Book pages (v10.01): pp. 535, 540, 751, 1209, 1248-1255
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: No-fit theorem, construction, or leading face; not automatically a precision numerical pass.
Exact vacuum identityThe exact Lambda/vacuum-density identity used in the Creation Ledger paper, kept distinct from a fitted dark-energy parameter.QTT-reframedstructuralStructural theorem/guardrailExpand / Collapse

The identity is a consistency closure of the flat Friedmann/vacuum branch. The dedicated ledger now states the sharper boundary: cosmology reconstructs an epsilon comparator only after kappa is independently pinned; the microscopic epsilon remains a source-certificate problem.

Standard-physics correlate: nearest standard frame: Friedmann vacuum-density identity; differs because QTT keeps it as an exact consistency identity while marking the ledger-side epsilon source derivation as open.
rho_Lambda/rho_P = (3/8*pi)(H_Lambda t_P)^2 = epsilon/(12*pi); rho_Lambda = kappa epsilon hbar c/(4*pi l_A^4), with kappa=1/3 derived conditionally from isotropy.
Book pages (v10.01): pp. 212-213; Creation Ledger concept DOI 10.5281/zenodo.20633582
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: No-fit theorem, construction, or leading face; not automatically a precision numerical pass.
Coasting triadThe three-branch H0 projection fan printed in the Creation Ledger consolidation.QTT-reframedgreen-candidateCandidate / map pendingExpand / Collapse

The triad is a readout structure, not a new fitted H0. The ratios are treated as derived while the absolute level remains conditional on the absolute-age rail.

Standard-physics correlate: nearest standard frame: Hubble-ladder calibration ladder; differs by printing a no-retune projection fan rather than a single fitted H0.
63.493 -> 68.724 / 69.734 / 70.855 km s^-1 Mpc^-1; motivated star-forming offset lands near 73.03.
Book pages (v10.01): pp. 711-715; Creation Ledger concept DOI 10.5281/zenodo.20633582
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Numerical access pass with an explicit structural caveat or pending convention map.
Observation links
Passive-host H0 testCreation Ledger counter-prediction that passive-host distance-ladder samples should return systematically lower H0 than star-forming-host samples.QTT-reframedyellow-predictionLocked predictionExpand / Collapse

This is a live falsifier, not a decorative explanation: the host split must be declared before reading the H0 offset, and a null or reversed split stresses the Creation Ledger projection fan.

Standard-physics correlate: nearest standard frame: host-environment systematics test; differs by making the passive-vs-star-forming split a directional counter-prediction.
Book pages (v10.01): Creation Ledger falsifier F-row, concept DOI 10.5281/zenodo.20633582; QTT Main Book v10.01 pp. 711-715
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Locked no-retune prediction awaiting decisive data.
Observation links
Renewal LedgerThe current sector-consolidation name for QTT's dark-matter replacement: fixed source-kernel gravity, acceleration-knee readout, Renewal Dust/lensing corrections, cosmic dipole, and a declared falsifier ledger.QTT-reframedstructuralStructural theorem/guardrailExpand / Collapse
Aliases: dark-matter branch ledger, galactic renewal ledger, Renewal Ledger branch

The Renewal Ledger is not a cold-dark-matter halo renamed in QTT language and not a MOND interpolation function. It is the branch where baryonic source accounting, finite renewal/readout kernels, lensing corrections, and redshift/cosmic-dipole tests are kept in one audit object. Its scientific discipline is that stress rows remain visible: the RAR comparison is not promoted into a green sigma claim.

Standard-physics correlate: nearest standard frame: dark-matter/modified-gravity sector; differs by replacing halo fitting with a fixed source-kernel, acceleration-knee, lensing, and dipole falsifier ledger.
a0_tau = c H_tau/(2*pi)
a0_lab = a0_tau/cos(pi/8) = 1.0627e-10 m s^-2
Poisson shadow: nabla^2 Phi = 4*pi*G*K_G[rho_b, C]
RAR stress: -6.9 sigma stat-only; -0.57 sigma full-envelope.
Book pages (v10.01): pp. 209-212, 535, 1209-1211, 1253-1255; Renewal Ledger concept DOI 10.5281/zenodo.20643892
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: No-fit theorem, construction, or leading face; not automatically a precision numerical pass.
Observation links
Source kernelThe fixed gravitational source object in the Renewal Ledger branch, used to avoid per-galaxy halo fitting and interpolation-function retuning.QTT-reframedcandidateCandidate / map pendingExpand / Collapse
Aliases: fixed-coefficient source kernel, K_G, renewal source kernel

The source kernel is a finite access/readout object: it says which baryonic/renewal ledger information is allowed to source the laboratory potential. It is not a free halo profile and not a post-hoc smoothing term. Its legitimacy depends on no-retune SPARC/RAR/BTFR/lensing tests.

Standard-physics correlate: nearest standard frame: Poisson-source kernel or halo response law; differs because the allowed gravitational source is a finite QTT renewal/readout object rather than an adjustable dark halo profile.
nabla^2 Phi = 4*pi*G*K_G[rho_b, C]
K_G must be fixed before the galaxy/lensing comparator is read.
Book pages (v10.01): pp. 209-212, 535, 1209-1211; Renewal Ledger concept DOI 10.5281/zenodo.20643892
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Printed formula or framework with a named missing lemma, access map, or audit rail.
Observation links
Acceleration kneeQTT's acceleration-knee readout for galaxy phenomenology, now anchored by the Renewal Ledger concept DOI.QTT-reframedyellow-predictionLocked predictionExpand / Collapse
Aliases: a0_tau, MOND-like acceleration knee, galaxy acceleration knee

The knee is not a fitted MOND constant. In QTT it is the laboratory face of the clock/source-kernel branch, and therefore it must expose redshift evolution and lensing consistency rather than be protected by an adjustable interpolation function.

Standard-physics correlate: nearest standard frame: MOND a0/RAR scale; differs because QTT treats the knee as a clock/source-kernel readout with a declared redshift test, not as a fitted universal constant.
a0_tau = c H_tau/(2*pi)
a0_lab = a0_tau/cos(pi/8)
Redshift test: the knee should follow the declared QTT clock/source-kernel branch rather than remain an immutable fitted constant.
Book pages (v10.01): pp. 535, 538-549, 565, 1209-1211; Renewal Ledger concept DOI 10.5281/zenodo.20643892
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Locked no-retune prediction awaiting decisive data.
a0(z)QTT redshift evolution prediction for the MOND-like acceleration scale, now treated as a Renewal Ledger test rather than a standalone MOND analogy.QTT-reframedyellow-predictionLocked predictionExpand / Collapse
Aliases: RAR redshift evolution, MOND-like acceleration scale

The point of the a0(z) page is empirical stress: QTT predicts a redshift trend rather than a fixed phenomenological constant, and the current citable branch is the Renewal Ledger.

Standard-physics correlate: nearest standard concept: the usual textbook object remains recognizable, but QTT re-reads its source through finite address capacity and access.
a0_tau = c H_tau/(2*pi); a0_lab = a0_tau/cos(pi/8).
The redshift trend must be declared in the clock/source-kernel branch before reading high-z RAR/BTFR samples.
Book pages (v10.01): pp. 535, 538-549, 565, 1210; Renewal Ledger concept DOI 10.5281/zenodo.20643892
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Locked no-retune prediction awaiting decisive data.
Observation links
Reader links
ABC/WV closureThe closure theorem connecting the absolute background clock, White-Void source, cosmological constant, galaxy acceleration knee, and Hubble ladder.QTT-nativestructuralStructural theorem/guardrailExpand / Collapse

ABC/WV closure is the cosmology-vacuum ledger: the clock and creation source are constrained together rather than adjusted separately.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
Book pages (v10.01): pp. 212-213, 540, 711-715, 1199-1205, 1254
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: No-fit theorem, construction, or leading face; not automatically a precision numerical pass.
White-VoidThe creation/source object in the vacuum/cosmology branch; retained as current corpus vocabulary in ABC/WV records.WVQTT-nativecanonicalReadout conventionExpand / Collapse

White-Void is not a mystical emptiness; it is the named source-side event/seed in the A3 creation ledger and vacuum-sector closure records.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
Book pages (v10.01): pp. 210, 540, 711-715, 751, 1209
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Current canonical vocabulary in the QTT book/corpus.
Vacuum capacityQTT route toward the cosmological-constant problem through endurance-current gravity and a de-gravitating bulk.QTT-reframedstructuralStructural theorem/guardrailExpand / Collapse

Vacuum energy is not simply plugged into GR; QTT separates bulk capacity, access, and gravitational coupling to explain why ordinary vacuum estimates need not gravitate naively.

Standard-physics correlate: nearest standard concept: the usual textbook object remains recognizable, but QTT re-reads its source through finite address capacity and access.
Book pages (v10.01): pp. 212-213, 711-715, 1175, 1247, 1254
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: No-fit theorem, construction, or leading face; not automatically a precision numerical pass.
See also: Creation Ledger, Exact vacuum identity, Cosmological constant, ABC/WV closure, A7 reshuffling
Renewal DustA substrate-lensing correction mechanism, now one component of the broader Renewal Ledger branch rather than a standalone dark-sector placeholder.QTT-nativecandidateCandidate / map pendingExpand / Collapse

Renewal Dust is a finite-source/lensing correction tied to WV/endurance accounting. It must survive cluster and galaxy stress tests rather than be protected by prose; the H1 failure remains part of the record.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
Book pages (v10.01): pp. 535, 1209-1211, 1234, 1248, 1253-1255; Renewal Ledger concept DOI 10.5281/zenodo.20643892
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Printed formula or framework with a named missing lemma, access map, or audit rail.
Abell 2744 validationShape-locked validation of the QTT substrate-curvature cluster-lensing equation across independent reconstructions.QTT-reframedgreen-candidateCandidate / map pendingExpand / Collapse

This is a positive empirical record, but it remains part of a test program that also keeps failure records visible.

Standard-physics correlate: nearest standard concept: the usual textbook object remains recognizable, but QTT re-reads its source through finite address capacity and access.
Book pages (v10.01): pp. 1209-1211, 1234, 1248, 1253
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Numerical access pass with an explicit structural caveat or pending convention map.
H1 failure recordsNegative out-of-sample cluster-lensing audits such as MACS J0025 and El Gordo kept visible for falsification discipline.Bridgeaudit/erratumAudit or failed-route labelExpand / Collapse

The presence of failed routes is a feature, not a blemish. It shows which hypotheses broke and prevents the page from becoming a victory-only index.

Standard-physics correlate: standard correlate: historical/public vocabulary bridge; use it to translate old wording into the current book terminology.
Book pages (v10.01): pp. 1209-1211, 1234, 1248, 1253-1255
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Kept visible as a failed route, falsification record, or correction object.
Equation 601 failed routeExplicit failed/errata record; visibly listed as audit material, not a theorem.Bridgeaudit/erratumAudit or failed-route labelExpand / Collapse

The failed route is part of the corpus's correction memory. It should never be cited as a successful QTT result.

Standard-physics correlate: standard correlate: historical/public vocabulary bridge; use it to translate old wording into the current book terminology.
Book pages (v10.01): pp. 48, 1248, 1253-1255
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Kept visible as a failed route, falsification record, or correction object.
See also: Audit/erratum, DOI Map

Predictions and Blind Tests

11 terms
Endpoint Faithfulness (EFA-G1)The explicitly named physical hypothesis that selects full endpoint gain after the Tier-K no-go theorem has shown that the selection is not contained in the core source axioms alone.QTT-nativesealed conditional hypothesisReadout conventionExpand / Collapse
Aliases: EFA-G1, endpoint-gain saturation, gain-one branch

EFA-G1 says a fully inclusive, target-blind gravitational camera reads a source-saturated endurance current at the saturated one-tick endpoint. It is a separate statement about the source-to-laboratory bridge, not a relabelling of fixed capacity or completed closure per address.

Standard-physics correlate: nearest standard frame: a calibration or saturation hypothesis; differs because QTT freezes it as a physical gain-one selection for prospective testing rather than absorbing it into the source axioms.
||J_*||=c and ||t_A P_g^{W_g*}(J_*)||=c iff chi_g=1 within the declared local camera class.
Book pages (v10.01): pp. 114, 117-124, 428-438, 1247-1255
Anchor note: Term indexed to the v10.01 source pages listed above.
Observation links
Blind tabletop gravity testsThree proposed no-retune A2 source-access tests designed to distinguish finite endurance packets hidden below the same ordinary infrared phase.QTT-nativeyellow-predictionLocked predictionExpand / Collapse
Aliases: A2 blind tabletop gravity, equal-action unequal-load test, echo-cancelled endurance covariance

The test is not to remeasure the ordinary gravitational phase. It is to build blinded protocol pairs that standard GR/QM compress together while QTT keeps different finite A2 packet structure.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
Test 1: equal-action / unequal-load gravitational AB chopper. Test 2: echo-cancelled endurance covariance with Theta_E=0 and B_A2(E)>0. Test 3: quantum-source holonomy witness without a source graviton.
Book pages (v10.01): pp. 114, 117-124, 428-438, 1247-1255
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Locked no-retune prediction awaiting decisive data.
Observation links
Page-envelope boundThe QTT future-test envelope for black-hole radiation entropy: fine radiation entropy cannot exceed the emitted/remnant source-ledger bounds once access conventions are fixed.QTT-reframedfuture comparatorReadout conventionExpand / Collapse
Aliases: QTT Page envelope, fine-grained radiation entropy envelope

The bound is an audit grammar, not a completed astronomical measurement. It keeps Page-curve language honest by separating source entropy, emitted support, remaining support, and laboratory access transfer.

Standard-physics correlate: nearest standard frame: Page curve / fine-grained entropy bound; differs because QTT treats it as a source-ledger envelope to test after greybody/access conventions are frozen.
S_rad^fine(T) <= min(S_emitted(T), S_remaining(T)); t_Page/t_drain=1-1/(2*sqrt(2)) for the leading envelope scaling.
Book pages (v10.01): black-hole information concept DOI 10.5281/zenodo.20346916; entropy concept DOI 10.5281/zenodo.20045306; fine-grained radiation entropy and source-ledger anchors
Anchor note: Black-hole information concept DOI 10.5281/zenodo.20346916; entropy concept DOI 10.5281/zenodo.20045306; fine-grained radiation entropy and source-ledger anchors.
Observation links
A7U-G finite chamber gateThe A7U source theorem that a declared finite access chamber prints a source-side cut-gap from its completed boundary-count before visibility data are opened.delta_G(Gamma)QTT-nativetheoremReadout conventionExpand / Collapse
Aliases: A7U-G, finite cut-gap theorem, chamber-certified A7U-G

The gate is the discipline that stops A7U from becoming a fitted contrast story. A chamber must print its finite boundary-capacity count N_Gamma first. Only then may the source-side floor be transported through T_vis into a visibility-shape prediction.

Standard-physics correlate: nearest standard frame: chamber certificate or decoherence floor model; differs because QTT prints a finite boundary-count cut-gap before data rather than fitting a visibility residual.
N_Gamma in N; q_min(Gamma)=2 pi/N_Gamma; epsilon_min(Gamma)=1/N_Gamma; delta_G(Gamma)=2/N_Gamma(1-1/N_Gamma).
Book pages (v10.01): A7U source concept DOI 10.5281/zenodo.20097247; molecular visibility transport concept DOI 10.5281/zenodo.20796924; A5/A6/A7 boundary-count, access projector, and matter-wave source-access anchors
Anchor note: A7U source concept DOI 10.5281/zenodo.20097247; molecular visibility transport concept DOI 10.5281/zenodo.20796924.
Observation links
A7U chamber reference spectrumThe pre-data source spectrum a matter-wave chamber must print before A7U can claim or lose a visibility-floor test.omega_{S,w}^{A7U}QTT-nativeyellow-predictionLocked predictionExpand / Collapse
Aliases: omega_A7U, A7U reference spectrum

The spectrum is where A7 closure, A6 capacity, A5 address support, apparatus access, and environmental controls meet. It must be frozen before central values are opened, otherwise the A7U floor becomes just another fitted contrast loss.

Standard-physics correlate: nearest standard frame: apparatus/environment reference state; differs because QTT builds it from A7 closure, A6 capacity, A5 address support, and the declared access projector before data are opened.
omega_{S,w}^{A7U}=R_{S,w}^{A7U}/Tr(R_{S,w}^{A7U}); R_{S,w}^{A7U}=M C_A7(w) K_A6(w) A_A5(w) M.
Book pages (v10.01): A7U source concept DOI 10.5281/zenodo.20097247; molecular visibility transport concept DOI 10.5281/zenodo.20796924; A7 closure, A6 capacity gate, A5 address support, and access projector anchors
Anchor note: A7U source concept DOI 10.5281/zenodo.20097247; molecular visibility transport concept DOI 10.5281/zenodo.20796924.
Status reading: Locked no-retune prediction awaiting decisive data.
Observation links
A7U access floorThe access-relative mixedness floor derived from the A7U chamber reference spectrum, not a fitted visibility offset.delta_accessQTT-nativeyellow-predictionLocked predictionExpand / Collapse
Aliases: A7U purity floor, delta_access

The floor measures what a declared finite access window cannot purify away. It becomes empirically meaningful only after the source object, apparatus projector, environmental factors, covariance model, and shape statistic are frozen.

Standard-physics correlate: nearest standard frame: decoherence floor or hidden noise term; differs because QTT defines it as a source-access purity bound, not a fitted visibility offset.
delta_omega^{A7U}(s)=1-max_{rho in C_omega(s)} Tr(rho^2); delta_G(Gamma)=2/N_Gamma(1-1/N_Gamma); delta_G(Gamma_j) -> T_vis -> F_j^{A7U}. Existing matter-wave rows are consistency-green but floor-observation pending.
Book pages (v10.01): A7U source concept DOI 10.5281/zenodo.20097247; molecular visibility transport concept DOI 10.5281/zenodo.20796924; access-relative purity and matter-wave visibility bridge anchors
Anchor note: A7U source concept DOI 10.5281/zenodo.20097247; molecular visibility transport concept DOI 10.5281/zenodo.20796924.
Status reading: Locked no-retune prediction awaiting decisive data.
Observation links
Matter-wave visibility bridgeThe bridge from access-relative purity to interferometer visibility: green for a balanced path-qubit theorem and now closed as a molecular transport framework, while direct floor observation remains pending.QTT-reframedyellow-predictionLocked predictionExpand / Collapse
Aliases: A7U visibility bridge, path-qubit visibility bridge

The bridge is not the claim that every old contrast deficit is A7U. Existing sodium-cluster and C70 matter-wave records constrain ordinary apparatus/decoherence behavior. The current transport status is consistency-green after apparatus-block profiling, but direct floor observation remains pending because a single-block constant residual can be absorbed into A_b.

Standard-physics correlate: nearest standard frame: interferometer fringe contrast; differs because QTT maps access-relative purity to a pre-registered visibility-shape test rather than treating a global contrast loss as proof.
Balanced path qubit: V_path <= sqrt(1-2 delta_path). Molecular transport: delta_G(Gamma_j) -> T_vis -> F_j^{A7U}; V_obs_bj=A_b V_QM/env_bj F_j^{A7U} epsilon_bj; s_obs_bj=Pi_b[log V_obs_bj-log V_QM/env_bj]; s_j^{A7U}=Pi_b[log F_j^{A7U}].
Book pages (v10.01): A7U molecular visibility transport concept DOI 10.5281/zenodo.20796924; upstream A7U source concept DOI 10.5281/zenodo.20097247; matter-wave source-access and future same-apparatus audit anchors
Anchor note: A7U molecular visibility transport concept DOI 10.5281/zenodo.20796924; upstream source concept DOI 10.5281/zenodo.20097247.
Status reading: Locked no-retune prediction awaiting decisive data.
Observation links
A7U Molecular Visibility TransportThe lab-facing A7U transport map that carries the finite chamber source gap into profiled molecular matter-wave visibility rows without treating a contrast loss as the signal.T_visQTT-nativetheorem-pending-observationReadout conventionExpand / Collapse
Aliases: molecular visibility transport, T_vis transport, A7U visibility transport

The transport object is the access bridge between source closure and an interferometer record. It keeps the source theorem honest by removing apparatus-block mean contrast and asking only whether a pre-declared nonconstant source shape survives the real data.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
delta_G(Gamma_j) -> T_vis -> F_j^{A7U}; V_obs_bj=A_b V_QM/env_bj F_j^{A7U} epsilon_bj; s_obs_bj=Pi_b[log V_obs_bj-log V_QM/env_bj]; s_j^{A7U}=Pi_b[log F_j^{A7U}].
Book pages (v10.01): pp. 114, 117-124, 428-438, 1247-1255
Anchor note: A7U molecular visibility transport concept DOI 10.5281/zenodo.20796924; upstream A7U source concept DOI 10.5281/zenodo.20097247.
Observation links
Physical intertwining certificateThe operator identity required before a mathematical timing projector may be claimed as the image of a physical record-fan-out instrument.QTT-nativetheorem certificate / experiment pendingReadout conventionExpand / Collapse
Aliases: timing-projector intertwiner, W certificate, physical map certificate

A formal projector is not automatically laboratory physics. The certificate requires a declared physical encoding W to carry the source alignment projector into the implementable timing observable. If the intertwining identity, tomography, controls, or artifact gates fail, the test is ineligible rather than a falsification of QTT.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
W^dagger M_U^op W = P_align. Only after this certificate closes may the sealed timing-envelope classifier be executed.
Book pages (v10.01): pp. 114, 117-124, 428-438, 1247-1255
Anchor note: Book v10.01: A5-X/A6/A7 finite address, Born/projection, Access Law, and measurement-record anchors. The theorem and blind test use concept DOIs 10.5281/zenodo.21902886 and 10.5281/zenodo.21902885.
Observation links
Same-central-effect Access IntertwinerThe requirement that one independently constructed central access effect control both an information-to-work calibration and the QTT canonical commutator, with no target-fitted bridge coefficient.MQTT-nativeexact QTT surface sealed / physical activation and observation pendingReadout conventionExpand / Collapse
Aliases: same-effect work-quadrature bridge, Access Intertwiner, same-central-effect test

The access projector is not allowed to be a name attached after an anomaly appears. A completed preparation record is routed through one authenticated physical gate. Work copies measure how often that gate truly makes the record available; untouched loop copies then test whether the identical effect enters the canonical algebra. The work consequence is standard information thermodynamics and qualifies the route. The closed-loop consequence is the QTT-specific discriminator. Failed route identity or centrality makes the run ineligible rather than changing M after unblinding.

Standard-physics correlate: nearest standard concept: a model-specific construct; compare to the closest textbook object named in the definition, but do not identify them without the printed access rule.
[q,p]=J(I-M); C_QTT(phi)=M+exp(-J phi)(I-M); w_j=eta_j; R_jk^QTT=(1-eta_j)+eta_j exp(J phi_k); R_jk^QM=1; partial(eta_j,phi_k)/partial R_jk^target=0.
Book pages (v10.01): pp. 114, 117-124, 428-438, 1247-1255
Anchor note: Book v10.01: A1 terminal ordering, A5-X completed record, A6 finite capacity, A7 closure, Born/projection, and Access-Law anchors. The sealed laboratory protocol is concept DOI 10.5281/zenodo.22236546.
Observation links
Four-cell chiral spin designA full factorial experiment using both molecular and surface enantiomers to separate even, molecule-odd, surface-odd, and molecule-surface mixed spin sectors.QTT-nativeprospective protocol / seal pendingLocked predictionExpand / Collapse
Aliases: molecule-by-surface chirality experiment, four-character chiral inversion

Existing fixed-surface mirror pairs cannot distinguish molecule-odd from mixed molecule-surface source sectors. The four-cell design supplies the missing address reversals, and its Hadamard character inversion identifies all four sectors without fitting a spin Hamiltonian to those same cells.

Standard-physics correlate: nearest standard frame: a two-factor 2x2 factorial design with character/Hadamard contrasts; differs because its sectors are fixed by the completed-event source grammar and every graph, purity, covariance, window, and exclusion gate must be frozen before spin unblinding.
P_sector = (1/4) H_4 P_cell; P_cell = H_4^T P_sector.
Book pages (v10.01): QTT Main Book v10.01 pp. 80-82 and 912-916; theorem paper v1.2 pp. 11 and 16-17
Anchor note: Term indexed to the v10.01 source pages listed above.
Observation links

Legacy Bridge and Status Labels

16 terms
DERIVED/REMOVEDBook status label for an axiom-forced replacement of a fitted input.BridgecanonicalReadout conventionExpand / Collapse

Axiom-forced replacement of a fitted or inherited input, in the book's status vocabulary.

Standard-physics correlate: standard correlate: historical/public vocabulary bridge; use it to translate old wording into the current book terminology.
Book pages (v10.01): pp. 118, 121-124
Anchor note: Book v10.01: Status legend.
Status reading: Current canonical vocabulary in the QTT book/corpus.
GREENBook status label for a sub-sigma no-retune numerical pass or relation.BridgecanonicalReadout conventionExpand / Collapse

Numerical access pass with an explicit structural caveat or pending convention map.

Standard-physics correlate: standard correlate: historical/public vocabulary bridge; use it to translate old wording into the current book terminology.
Book pages (v10.01): pp. 118, 121-124
Anchor note: Book v10.01: Status legend separates GREEN from GREEN-CANDIDATE and yellow predictions.
Status reading: Current canonical vocabulary in the QTT book/corpus.
GREEN-CANDIDATEBook status label for a sub-sigma numerical access pass with a named structural caveat.BridgecanonicalReadout conventionExpand / Collapse

This status is important: numerical agreement can be real while an access convention, covariance complex, or proof rail still remains unfinished.

Standard-physics correlate: standard correlate: historical/public vocabulary bridge; use it to translate old wording into the current book terminology.
Book pages (v10.01): pp. 118, 120-124
Anchor note: Book v10.01: Status legend.
Status reading: Current canonical vocabulary in the QTT book/corpus.
YELLOW-PREDICTIONBook status label for a locked no-retune QTT prediction awaiting decisive precision data.BridgecanonicalReadout conventionExpand / Collapse

Locked no-retune prediction awaiting decisive data.

Standard-physics correlate: standard correlate: historical/public vocabulary bridge; use it to translate old wording into the current book terminology.
Book pages (v10.01): pp. 114, 117-118
Anchor note: Book v10.01: Status legend.
Status reading: Current canonical vocabulary in the QTT book/corpus.
See also: WAITING-FOR-OBS., No-retune rule
STRUCTURALBook status label for a no-fit theorem or leading face that is not automatically a numerical pass.BridgecanonicalReadout conventionExpand / Collapse

No-fit theorem, construction, or leading face; not automatically a precision numerical pass.

Standard-physics correlate: standard correlate: historical/public vocabulary bridge; use it to translate old wording into the current book terminology.
Book pages (v10.01): pp. 118, 121-124
Anchor note: Book v10.01: Status legend.
Status reading: Current canonical vocabulary in the QTT book/corpus.
CANDIDATEBook status label for a printed formula or framework where a named lemma, rail, or audit remains pending.BridgecanonicalReadout conventionExpand / Collapse

Printed formula or framework with a named missing lemma, access map, or audit rail.

Standard-physics correlate: standard correlate: historical/public vocabulary bridge; use it to translate old wording into the current book terminology.
Book pages (v10.01): pp. 118, 121-124
Anchor note: Book v10.01: Status legend.
Status reading: Current canonical vocabulary in the QTT book/corpus.
PROGRAMBook status label for a named route whose theorem or numerical rail is not yet printed.BridgecanonicalReadout conventionExpand / Collapse

Named route or workpack; theorem or numerical rail not yet closed.

Standard-physics correlate: standard correlate: historical/public vocabulary bridge; use it to translate old wording into the current book terminology.
Book pages (v10.01): pp. 118, 121-124
Anchor note: Book v10.01: Status legend.
Status reading: Current canonical vocabulary in the QTT book/corpus.
PLTsAli's shorthand for a dangerous kind of theory or framework: one with enough technical truth to work well in its regime while hiding a false source-ontology assumption.QTT-nativecanonicalMotivated heuristicExpand / Collapse
Aliases: Profound Lying Theories, Profound Lying Theory, Profound Lie Theories, Profound Lie Theory, PLT

PLT is not a formal QTT theorem label. It is a field-note warning about epistemic danger: the most dangerous lies are the lies that carry 99% truth. In this usage, a PLT can be empirically powerful, mathematically elegant, and locally indispensable, while still blocking the deeper source question by treating a human-invented continuum or a fitted patch as final ontology.

Standard-physics correlate: nearest standard frame: effective-theory critique or model-risk warning; differs as Ali's QTT shorthand for technically successful frameworks that carry much truth while hiding a false source-ontology assumption.
Book pages (v10.01): field-note critical shorthand rather than a book theorem; source-ontology and status-discipline anchors pp. 39-42, 100-107, 711-715
Anchor note: Use with care: it names a critical stance toward source ontology and model risk, not a proof of failure. The related book anchors are the source/readout split, status discipline, finite substrate, and vacuum-capacity discussion.
Status reading: Current canonical vocabulary in the QTT book/corpus.
Media Made Science - MMSQTT shorthand for a public-science failure mode: media repetition, prestige framing, or narrative certainty hardens a claim before source ontology, constructor domain, audit domain, and falsifiers are separated.QTT-nativegovernance labelMotivated heuristicExpand / Collapse
Aliases: MMS, Media Made Science, media-made science

MMS is not evidence and not a theorem. It is a warning label for the moment when visibility starts doing the work that derivation, observation, or falsification should do. On this site, an MMS concern should route readers back to concept DOI families, Observatory rows, source/readout separation, no-smuggling checks, and explicit falsifiers rather than to popularity or press certainty.

Standard-physics correlate: nearest standard frame: science-communication hype or sociological consensus formation; differs as a QTT governance label for media-amplified certainty before source ontology, constructor domain, audit domain, and falsifiers are separated.
No equation; MMS is an epistemic/audit label, not a source object.
Book pages (v10.01): public-science governance shorthand rather than a book theorem; constructor-domain, audit-domain, no-smuggling, and status-discipline anchors pp. 39-42, 100-107, 599-600, 974, 1072
Anchor note: Use with care: public-science governance shorthand rather than a book theorem; constructor-domain, audit-domain, no-smuggling, and status-discipline anchors pp. 39-42, 100-107, 599-600, 974, 1072.
FabrikaDeprecated older public term; current visible prose should map it to pixellate or QTT pixellate substrate unless the legacy term itself is being discussed historically.Bridgelegacy bridgeLegacy bridgeExpand / Collapse

Fabrika belongs to the 2019-2021 vocabulary bridge. The modern technical term is pixellate / QTT pixellate substrate.

Standard-physics correlate: standard correlate: historical/public vocabulary bridge; use it to translate old wording into the current book terminology.
Book pages (v10.01): pp. 193, 672, 680; legacy map supplies the historical crosswalk
Anchor note: Site rule: normalize Fabrika/Fabrik@/Farika to pixellate where not intentionally historical.
Status reading: Old public vocabulary retained only as a map into current book language.
Reader links
Akhasheni scarsDeprecated older scar/residue phrase; current visible prose should map it to access residuals or residual traces.Bridgelegacy bridgeLegacy bridgeExpand / Collapse

The modern reading is not a literal scar language but a finite access residual: a trace left by an incomplete or shifted readout window.

Standard-physics correlate: standard correlate: historical/public vocabulary bridge; use it to translate old wording into the current book terminology.
Book pages (v10.01): pp. 193, 672, 680; legacy map supplies the historical crosswalk
Anchor note: Site rule: normalize Akhasheni-scar language to access residuals/residual traces where not historical.
Status reading: Old public vocabulary retained only as a map into current book language.
Reader links
Access residualsCurrent term for residual traces left by incomplete, shifted, or finite access windows.BridgecanonicalReadout conventionExpand / Collapse

An access residual is a mismatch or leftover in the lab readout, not a new physical substance unless a source rail is printed.

Standard-physics correlate: standard correlate: historical/public vocabulary bridge; use it to translate old wording into the current book terminology.
Book pages (v10.01): pp. 672, 680
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Current canonical vocabulary in the QTT book/corpus.
See also: Akhasheni scars, Access window, Audit residual
Legacy Terminology MapThe reader-facing bridge from 2019-2021 public vocabulary into the current QTT book vocabulary.BridgecanonicalReadout conventionExpand / Collapse

This page protects the archive without letting old terms leak into current scientific claims as if they were still canonical.

Standard-physics correlate: standard correlate: historical/public vocabulary bridge; use it to translate old wording into the current book terminology.
Book pages (v10.01): pp. 118, 193, 672, 680; web archive crosswalk
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Current canonical vocabulary in the QTT book/corpus.
Reader links
DOI MapThe citable corpus atlas for QTT concept DOI families, categories, status labels, and blog-to-DOI crosswalks.BridgecanonicalReadout conventionExpand / Collapse

The DOI Map is the audit layer: it tells readers which concept family carries which claim while keeping the public citation route stable.

Standard-physics correlate: standard correlate: historical/public vocabulary bridge; use it to translate old wording into the current book terminology.
Book pages (v10.01): pp. 1247-1255
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Current canonical vocabulary in the QTT book/corpus.
Reader links
See also: Pre-registration lock, Blog Map, Zenodo community
Blog MapThe reader-facing route map connecting field notes to concept DOI families and book topics.BridgecanonicalReadout conventionExpand / Collapse

Blogs explain the ideas; papers carry citable objects. The Blog Map keeps those layers connected without confusing them.

Standard-physics correlate: standard correlate: historical/public vocabulary bridge; use it to translate old wording into the current book terminology.
Book pages (v10.01): pp. 1247-1255; web field-note index
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Current canonical vocabulary in the QTT book/corpus.
Reader links
See also: DOI Map, Lexicon, Field notes
YouTube MapThe 2019 video archive map with timestamped links and current vocabulary crosswalks.BridgecanonicalReadout conventionExpand / Collapse

The YouTube Map treats old spoken explanations as historical source material and maps them into the current book/DOI/blog vocabulary.

Standard-physics correlate: standard correlate: historical/public vocabulary bridge; use it to translate old wording into the current book terminology.
Book pages (v10.01): pp. 118, 193, 672, 680; 2019 archive crosswalk
Anchor note: Term indexed to the v10.01 source pages listed above.
Status reading: Current canonical vocabulary in the QTT book/corpus.
Reader links
Machine Layer

Lexicon Data and Changelog

The data mirror keeps term normalization, symbol lookup, cross-links, pages, status, and concept DOI metadata available outside the page markup.

Machine Lexicon

A public JSON mirror is regenerated with this page so the Lexicon can serve retrieval, search, and terminology-normalization tools without relying on fragile page scraping.

2026-09-01: same-central-effect Access Intertwiner added under concept DOI 10.5281/zenodo.22236546. The Lexicon now separates standard information-to-work qualification from the QTT-exclusive closed-loop surface and keeps physical activation, observation, and replication pending.
2026-07-04: Planck/E-star/G and anti-numerology reader anchors added: Artian ruler, non-G anchor, Keystone class, Constructor Alphabet, and No-smuggling firewall now route to the Corpus Tree, Observatory, Keystone, Numerology page, and current concept DOI families without exposing platform plumbing.
2026-06-26: Source-only SI endpoint bridge added under concept DOI 10.5281/zenodo.20936013; the Lexicon now separates the green SI/GeV unit bridge and no-smuggling firewall from the amber completed address-capacity numerical certificate, and routes the term to Artian micro-ruler, Rydberg Source Audit, Observatory, Derivation Atlas, and Two Universes.
2026-06-26: Universal Quantum Capacity Laws and Precision QED v3.03 restored under concept DOI 10.5281/zenodo.20121952; the Lexicon keeps Capacity/QED kernel and QED no-retune window suite separated, with the ballistic noise-heat triad closed, the inherited five-window QED table marked as prototype no-drift evidence, the detailed technical payload restored, and the full frozen-source covariance suite still pending.
2026-06-26: Electron Source-Lab Rydberg theorem v5.01 refreshed under concept DOI 10.5281/zenodo.20800371; the Lexicon separates Rydberg Source Audit, gamma-W micro-access rail, Atomic-unit source propagation, and QED no-retune window suite while routing the row to the Observatory, Corpus Tree, photon-edge, charged-lepton constructor, and source/readout ontology anchors.
2026-08-12: completed-record fan-out and timing access added under concept DOI 10.5281/zenodo.21902886, with the sealed blind test under concept DOI 10.5281/zenodo.21902885 and Observation as Access refreshed under concept DOI 10.5281/zenodo.20114403. The Lexicon now keeps completed historical records, accessible memory, and the physical intertwining certificate distinct.
2026-06-23: black-hole information-loss denial refreshed under concept DOI 10.5281/zenodo.20346916; the Lexicon now separates Bekenstein without Hawking, No Hawking constructor, effective horizon temperature access readout, optional Hawking/greybody access phenomenology, Page-envelope bound, and finite black-hole core. MMS added as a governance/audit label.
2026-06-19: A2 Einstein-field dynamics added under concept DOI 10.5281/zenodo.20763263; the Lexicon now connects A2, G, endurance current, proper-time metric shadow, the IR Einstein-field equation, and the finite-address correction map without treating the smooth continuum as source ontology.
2026-08-13: Artian time framework v5.2 refreshed under concept DOI 10.5281/zenodo.20761499; the Lexicon now separates A1/A7 completed records, A2 24-pixellate endurance support, A3 fixed-origin source volume, entropy/access loss, Time Tilt, Time Drift, Quantized Now, proper-time readout, finite boosts, and the sealed static/dynamic timing tests.
2026-06-19: quark family-rank and CKM framework refreshed under concept DOI 10.5281/zenodo.20722978; the Lexicon now marks finite CKM source-word enumeration, finite face uniqueness, and precision micro-provenance closed while keeping the global CKM covariance packet, quark-mass source-word compiler, and baryon/proton unlock pending.
2026-06-18: A6 Hadamard center-sheet family refreshed under concept DOI 10.5281/zenodo.20744161; compact-color kernel uniqueness, beta_Z micro-provenance, chi_Z, SU_J(3) Haar-root readout, sigma_3 QCD sheet scale, static-source string tension audit, vector source centroids, and boundary half-share rule refreshed.
2026-06-18: PMNS source-access reference framework refreshed under concept DOI 10.5281/zenodo.20735493; the Lexicon now separates the source theorem, finite angle-word enumeration certificate, joint triad coefficient packet, solar Cabibbo interface, CKM micro-provenance bridge, constructor firewall, access shadow, CP-area registry, atmospheric-octant branch, and J_PMNS.
2026-06-16: wave-equation-as-shadow entries added under concept DOI 10.5281/zenodo.20723081; the Lexicon now separates the A1 real-J source stencil, exact sine-squared dispersion, and linear-free Lorentz-violation falsifier with the no-observed-signal caveat visible.
2026-06-16: quark family-rank and CKM framework entries added under concept DOI 10.5281/zenodo.20722978; MARIAM now links quark source complex, CKM holonomy, charged-lepton family-rank, and neutrino family-rank without treating quark masses or CKM entries as fitted knobs.
2026-06-16: Artian LIA neutrino family-rank reference theorem added under concept DOI 10.5281/zenodo.20571452; Lexicon now separates the closed source ratio/minimal neutral spectrum from observation-last m_Delta, SI-ruler, PMNS, cosmology, endpoint, and G-audit rows.
2026-06-15: charged-lepton family-rank constructor theorem v3.7 upgraded under concept DOI 10.5281/zenodo.20698191; one declared Artian/MARIAM source-word class survivor prints (N_e,N_mu,N_tau)=(1,888,026,624,17,526,2,347), with max charged-lepton pull about 0.188 sigma and external uniqueness still open.
2026-06-09: feedback pass added named-object cards, standard-physics correlates, epistemic grades, symbol table, Observatory cross-links, DOI strings, and machine data mirror.
2026-06-09: direct entries added for NICK, GEORGE, MARIAM, ZAHRA, Maison Valmy, beta_Z, chi_Z, Lambda3, UEL, and BLOP.
2026-06-09: stat-card colors neutralized; origin colors remain the Lexicon-specific pale background grammar requested for QTT-native, standard, reframed, and legacy terms.
2026-06-09: see-also references converted into internal anchors when the target exists.