anza-ed25519-verified/verification/check.sh

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#!/usr/bin/env bash
# ─────────────────────────────────────────────────────────────────────────────
# check.sh — THE button. Compiles EVERY shipped .lean file and axiom-audits
# EVERY layer certificate. If a file is in this repo, this script checks it;
# if this script doesn't check it, it must not be in the repo.
#
# Phases:
# 0. resource + source-integrity guards
# 1. stub audit: no `by trivial` specs, no True-target theorems, and — the
# anti-axiom-smuggling gate — ZERO `axiom` declarations under Proofs/
# (external models in gen/ are the only sanctioned axiom site)
# 2. compile gen/ + Proofs/ in dependency order (explicit -o, capped cores,
# per-file timeout). Any "declaration uses 'sorry'" warning is a FAILURE
# (this catches sorry robustly — text greps can't, comments mention it).
verification: kernel-side axiom-declaration gate (Phase 2b) + self-test Phase 1's anti-smuggling check reads source text. Measured today on Lean v4.30.0-rc2, four distinct declarations compile cleanly and slip past its anchored pattern: ` axiom cheat : ...` one leading space `@[simp] axiom cheat : ...` line starts with the attribute `unsafe axiom cheat : ...` `unsafe` absent from the modifier list `axiom` <newline> ` cheat` no space follows the keyword Any of them yields a repository that proves False while the button prints ALL GREEN. Only the tab variant is blocked, and by Lean, not by us. Hardening the pattern would fix the exhibited syntax rather than the class, which is the mistake this estate has made before. Phase 2b stops parsing text and asks the kernel instead: it reads every compiled Proofs/*.olean with readModuleData and rejects any declaration that is an axiom. Design notes: - reads compiled artifacts rather than importing the modules, because Proofs.Basic and Proofs.ConstSpecs deliberately reuse `zero_spec` and a whole-corpus import is impossible by construction; - membership is self-deriving from the filesystem, so Scalar* and AxiomCheck are covered too — both are skipped by the CERTS audit and by the dead-file gate; - fails closed on absence: a missing .olean would make the scan vacuous, so the count of compiled modules must equal the count of shipped sources; - removes its temp source AND artifact on both paths, since a bare `rm` after the call never runs under `set -e` when the gate goes red — exactly how this repo accumulated 101 orphan .olean files; - ~3 s for the whole corpus, against ~53 s for one module-importing run. Phase 1's grep stays as a fast first line of defence. Phase 2b is the gate that is load-bearing. selftest-axgate.sh attacks the shipping gate, lifted out of check.sh at run time rather than copied. It asserts the specific diagnostic, so a rejection for an unrelated reason fails too, and it was itself negative-tested: with the gate's throwError removed, the self-test goes red on exactly that case. No proof, statement, specification or certificate is touched. No attested commit is altered — the log binds specific commit hashes, all of which remain ancestors of HEAD. Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
2026-07-28 16:24:18 +00:00
# 2b. kernel-side axiom-declaration gate: read every compiled Proofs/*.olean
# and reject ANY axiom declared there. Phase 1's grep reads source text
# and is evadable four ways (see the phase header); this one asks the
# kernel, derives its scope from the filesystem, and fails closed if the
# set of compiled modules does not match the set of shipped sources.
# 3. axiom audit: #print axioms for every certificate in CERTS; each must
# report exactly [propext, Classical.choice, Quot.sound]
verification: bind the statements, the specifications, and the model (P1-a) Phases 3/3b establish what each certificate RESTS ON. Neither says what it SAYS, nor what it is ABOUT. A certificate gutted to a tautology of the same axiom cone passes both; so does one whose reference definition has been redefined to BE the extracted code, at which point the theorem reads `loop = loop` and every cone is byte-identical. Phase 3c closes that. Proofs/Audit.lean emits a canonical block holding the policy constants, every certificate's fully-elaborated statement (pp.all, so implicit arguments, instances and universe levels are visible), and the body of every specification constant transitively reachable from those statements. Its SHA-256 is pinned in check.sh and the block itself is committed as AUDIT-MANIFEST.txt, so a mismatch is DIFFED, not merely reported. 31 certificates, 68 specification constants per repository. Two tiers, not one. These forks have an arithmetic tier that must stay oracle-free and an apex tier carrying this fork's hash and wire-format axioms, and the apex boundary genuinely differs per fork (dalek 8 extra names, anza 4, risc0 and betrusted 5). One shared constant would have widened the arithmetic tier to accept hash oracles, which is the most valuable property these repos have. Each auditor is generated from its own repository's policy. Phase 0b pins the extracted model. This was not a precaution: risc0 and betrusted were observed emitting BYTE-IDENTICAL audit-manifest digests (6c821b8e…) while shipping demonstrably different extracted models, their point-doubling routines differing in operation order. A statement names an extracted function; it does not contain that function's body. Binding statements is not binding the subject. Membership derives from the filesystem, so a new model file fails closed. selftest-statements.sh attacks both phases with ten cases, each asserting a specific diagnostic: an edited model body, an unlisted model file, a widened policy, a hand-edited committed block, a certificate dropped from the auditor WITH the digest refreshed to match, and a gutted statement whose cone is unchanged. It lifts the phases out of check.sh at run time, so it attacks the shipping gate rather than a copy. Two bugs found and fixed during that testing, both mine: Phase 3c read `$0` after `cd "$AENEAS_LEAN"`, and $0 is the caller's relative path; and the axgate self-test compared the tree against a pristine checkout rather than against how it found it. A third expectation was wrong rather than the code — widening the apex boundary is caught by the exact-cone requirement before the digest ever runs, which is a stronger rejection, and the test now says so. All sixteen runs green at these commits: four main buttons, four axgate self-tests, four binding self-tests, four scalar buttons. TRUSTED-BASE.md records what this binds and, at equal length, what it does not: a digest binds identity, not meaning; an author can rotate the pins in one commit and is caught by review, not by the script; and pinning the model says nothing about whether Charon and Aeneas translated the Rust faithfully. Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
2026-07-28 22:38:19 +00:00
# 3b. signature-apex audit: the four apex certificates against this fork's
# documented SHA-512 + wire-format boundary, exactly.
# 3c. statement + specification binding: Proofs/Audit.lean emits a canonical
# block of the policy constants, every certificate's fully-elaborated
# statement, and the body of every specification constant reachable from
# those statements. Its SHA-256 is pinned here and the block itself is
# committed, so a mismatch is diffable. This is the phase that makes a
# gutted statement, or a reference definition redefined to BE the
# extracted code, fail — neither moves any axiom cone.
# ─────────────────────────────────────────────────────────────────────────────
set -euo pipefail
source ~/aeneas-toolchain/env.sh
HERE="$(cd "$(dirname "$0")" && pwd)"
AENEAS_LEAN="$AENEAS_HOME/backends/lean"
TIMEOUT="${LEAN_TIMEOUT:-300}"
export LEAN_MEM_MB="${LEAN_MEM_MB:-8192}" # 8192: ReduceSpec exceeds 6144 (coherence pass 2)
CORES="${LEAN_MAX_CORES:-0-3}"
# Layer manifests (extended as the pyramid grows; ORDER = import order).
GEN_MODULES=(
CurveField/TypesExternal
CurveField/Types
CurveField/FunsExternal
CurveField/Funs
)
PROOFS=(
Basic
Denote
P25519
ReduceSpec
SubNegSpec
ConstSpecs
AddSpec
MulSpec
SquareSpec
Square2Spec
Field
InvertSpec
FieldMain
FeQ
EdCurve
EdDenote
EdDouble
EdAddProjNiels
EdAddAffNiels
EdConvert
EdMain
Double-scalar-mul proof campaign, bricks 1-3: table, digit step, loop Three new proof files over the CurveField extraction, composing the proven group-law layer (no new axioms, no associativity assumed — computational layering over the abstract `edAdd`): - `Proofs/DsmTableSpec.lean` — `NafLookupTable5::from(&A)`: the 8 entries are valid `ProjectiveNielsPoint` caches of valid on-curve points denoting the odd multiples A, 3A, ..., 15A as the `edOdd` double-and-add recursion. 7 explicit loop peels over edwards_as_projective_niels_spec / add_projniels_law / compl_as_extended_law, seeded by edwards_double_law. `select`: both masserts (x odd, x < 16) DISCHARGED — panic-freedom is proven, not assumed; post enumerates all 8 digit cases. - `Proofs/DsmStepSpec.lean` — `proj_double_law` (the projective doubling denotes `edAdd P P`; same Z^2-scaled linear_combination discipline as the extended-coordinate law), `compl_as_projective_law` ((X:Z),(Y:T) to (XT:YZ:ZT) preserves the point), `naf_select_entry` (digit-indexed lookup returns THE entry: NafEntryOf r A ((x-1)/2)), and `dsm_step_p_law` / `dsm_step_b_law`: the three-way NAF digit step denotes `edDigit` — add the d-th odd multiple, add its negation, or pass through. - `Proofs/DsmLoopSpec.lean` — the 256-iteration Straus loop by GENUINE induction on the counter (one symbolic body walk, no unrolling): `dsm_loop_spec` — from the identity, the loop returns a valid on-curve point denoting `dsmFold ... edId 256`, the abstract double-and-add fold of both digit arrays over the table points. Digit and table hypotheses are exactly what the NAF spec and naf_table_spec provide (layering). check.sh wired: PROOFS + AUDIT_IMPORTS + 7 new CERTS (naf_table_spec, naf_select_spec, proj_double_law, compl_as_projective_law, dsm_step_p_law, dsm_step_b_law, dsm_loop_spec), each `#print axioms`-audited to exactly [propext, Classical.choice, Quot.sound]. Full check.sh green. Co-Authored-By: Claude Fable 5 <noreply@anthropic.com>
2026-07-04 13:07:56 +00:00
DsmTableSpec
DsmStepSpec
DsmLoopSpec
NAF encoder proven end-to-end + the phase-1 double-scalar-mul apex The complete non_adjacent_form(5) verification (four stages): - `Proofs/DsmNafLoadSpec.lean` (generated) — the LE byte-to-word load. - `Proofs/DsmNafMath.lean` — the digit loop's arithmetic core: window-read lemmas (single/cross-word), the exact ZZ invariant steps (Nat.mod_mul telescope), the carry-kill argument from V < 2^253, and the exit theorem. - `Proofs/DsmNafLoopSpec.lean` — the w=5 digit loop by induction on the remaining-bits measure: per-step 64-bit window read (4-way word split), digit write via hcast/wrapping_sub (exact value window - 32*carry', oddness, |d| < 16), invariant carried through even/odd steps. - `Proofs/DsmNafSpec.lean` — the public spec: both entry masserts DISCHARGED; the digits satisfy the NAF conditions and sum naf[k]*2^k = V EXACTLY (integers, no modular slack) for any scalar whose LE byte value V is below 2^253. And the campaign's brick 4, `Proofs/DsmMulSpec.lean`: - `run_basepoint` — the transpiled ED25519_BASEPOINT_POINT is the standard base point: valid extended coordinates (X*Y = Z*T) and the curve equation, kernel-checked via denominator-free 121666-scaled witnesses. Includes the generic witness lemmas fp_mul_eq_of_witness / onCurve_of_witness. - `vartime_double_base_mul_spec` — THE PHASE-1 COMPUTATIONAL SPEC of vartime_double_base::mul: for canonical scalars and a valid on-curve A, the result is valid, on-curve, and denotes dsmFold (naf a) (naf b) (edPt A) edBasePt edId 256 with both digit arrays proven exact NAF encodings. Phase 2 (group semantics [a]A + [b]B) requires Edwards associativity — deferred and documented; nothing assumes it. Also: removed a vestigial pre-re-extraction axiom stub (backend.serial.scalar_mul.vartime_double_base.mul) from FunsExternal — a root-level leftover that shadowed the real namespaced definition during name resolution in proof files. Never referenced by any certificate (the #print-axioms audit guards against that); deleted for hygiene. CERTS += naf_load_spec, naf_exit, naf_digit_loop_spec, non_adjacent_form_spec, run_basepoint, vartime_double_base_mul_spec — each audited to exactly [propext, Classical.choice, Quot.sound]. Full check.sh green. Co-Authored-By: Claude Fable 5 <noreply@anthropic.com>
2026-07-04 14:52:07 +00:00
DsmNafLoadSpec
DsmNafMath
DsmNafLoopSpec
DsmNafSpec
DsmMulSpec
ToBytesMath
ToBytesSpec
ScalarPackSpec
CompressSpec
THE SIGNATURE APEX on the anza fork: verify_accepts_iff, button-enforced FOURTH AND FINAL PYRAMID CAPPED - the signature layer is complete on all four ed25519 forks. anza's verify code lives in the same crate as the curve (solana-ed25519), so the whole verify path joins the merged CurveField extraction directly: one universe, no glue layer, no FQ-name welding, and the Error enum plus the parse/filter helpers are all real extracted code. - extract.sh: verify_sha512 start-from joins the merged stanza; sha512_hash3 and the foreign ed25519 crate opaque; RUSTFLAGS --cfg curve25519_serial_only pins the serial backend so get_selected_backend extracts as the real constant Serial (the stale dispatch axiom is deleted from FunsExternal). - gen/CurveField externals: real defs for the ?-operator plumbing (Try::branch, FromResidual) and faithful identity models for Choice::unwrap_u8 (transparent-u8 body: self.0) and the RangeFull get_unchecked[_mut] raw-pointer pair (Rust body returns the pointer unchanged) - the three would-be cone intruders, eliminated. - Proofs/SigApexSpec.lean: verify_loop_full (standard three-axiom cone) and verify_accepts_iff - the verifier accepts IFF the recomputed compress([k](-A) + [s]B) equals the signature's R byte-for-byte, with the ZIP-215 legacy filters and the s < l parse conditioned by hypotheses, mirroring the siblings' hparse. - check.sh Phase 3b enforces the apex cone to be EXACTLY [propext, Classical.choice, Quot.sound, ed25519.Signature, ed_sigs.sha512_hash3, ed25519.Signature.r_bytes, ed25519.Signature.s_bytes] - the tightest boundary of the four pyramids: the SHA-512 oracle plus the foreign wire-format type and its two byte accessors, nothing else. check.sh (incl. Phase 3b) + check-scalar.sh both green. Co-Authored-By: Claude Fable 5 <noreply@anthropic.com>
2026-07-04 21:48:08 +00:00
SigApexSpec
PointLiftSpec
PointEqSpec
DecompressSpec
FromBytesSpec
DecompressMain
verification: bind the statements, the specifications, and the model (P1-a) Phases 3/3b establish what each certificate RESTS ON. Neither says what it SAYS, nor what it is ABOUT. A certificate gutted to a tautology of the same axiom cone passes both; so does one whose reference definition has been redefined to BE the extracted code, at which point the theorem reads `loop = loop` and every cone is byte-identical. Phase 3c closes that. Proofs/Audit.lean emits a canonical block holding the policy constants, every certificate's fully-elaborated statement (pp.all, so implicit arguments, instances and universe levels are visible), and the body of every specification constant transitively reachable from those statements. Its SHA-256 is pinned in check.sh and the block itself is committed as AUDIT-MANIFEST.txt, so a mismatch is DIFFED, not merely reported. 31 certificates, 68 specification constants per repository. Two tiers, not one. These forks have an arithmetic tier that must stay oracle-free and an apex tier carrying this fork's hash and wire-format axioms, and the apex boundary genuinely differs per fork (dalek 8 extra names, anza 4, risc0 and betrusted 5). One shared constant would have widened the arithmetic tier to accept hash oracles, which is the most valuable property these repos have. Each auditor is generated from its own repository's policy. Phase 0b pins the extracted model. This was not a precaution: risc0 and betrusted were observed emitting BYTE-IDENTICAL audit-manifest digests (6c821b8e…) while shipping demonstrably different extracted models, their point-doubling routines differing in operation order. A statement names an extracted function; it does not contain that function's body. Binding statements is not binding the subject. Membership derives from the filesystem, so a new model file fails closed. selftest-statements.sh attacks both phases with ten cases, each asserting a specific diagnostic: an edited model body, an unlisted model file, a widened policy, a hand-edited committed block, a certificate dropped from the auditor WITH the digest refreshed to match, and a gutted statement whose cone is unchanged. It lifts the phases out of check.sh at run time, so it attacks the shipping gate rather than a copy. Two bugs found and fixed during that testing, both mine: Phase 3c read `$0` after `cd "$AENEAS_LEAN"`, and $0 is the caller's relative path; and the axgate self-test compared the tree against a pristine checkout rather than against how it found it. A third expectation was wrong rather than the code — widening the apex boundary is caught by the exact-cone requirement before the digest ever runs, which is a stronger rejection, and the test now says so. All sixteen runs green at these commits: four main buttons, four axgate self-tests, four binding self-tests, four scalar buttons. TRUSTED-BASE.md records what this binds and, at equal length, what it does not: a digest binds identity, not meaning; an author can rotate the pins in one commit and is caught by review, not by the script; and pinning the model says nothing about whether Charon and Aeneas translated the Rust faithfully. Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
2026-07-28 22:38:19 +00:00
Audit # LAST: imports the certificate corpus and runs the audit
)
# Fully-qualified certificate names; each must be axiom-clean.
CERTS=(
CurveFieldProofs.fieldImplementation
CurveFieldProofs.edwardsImplementation
Double-scalar-mul proof campaign, bricks 1-3: table, digit step, loop Three new proof files over the CurveField extraction, composing the proven group-law layer (no new axioms, no associativity assumed — computational layering over the abstract `edAdd`): - `Proofs/DsmTableSpec.lean` — `NafLookupTable5::from(&A)`: the 8 entries are valid `ProjectiveNielsPoint` caches of valid on-curve points denoting the odd multiples A, 3A, ..., 15A as the `edOdd` double-and-add recursion. 7 explicit loop peels over edwards_as_projective_niels_spec / add_projniels_law / compl_as_extended_law, seeded by edwards_double_law. `select`: both masserts (x odd, x < 16) DISCHARGED — panic-freedom is proven, not assumed; post enumerates all 8 digit cases. - `Proofs/DsmStepSpec.lean` — `proj_double_law` (the projective doubling denotes `edAdd P P`; same Z^2-scaled linear_combination discipline as the extended-coordinate law), `compl_as_projective_law` ((X:Z),(Y:T) to (XT:YZ:ZT) preserves the point), `naf_select_entry` (digit-indexed lookup returns THE entry: NafEntryOf r A ((x-1)/2)), and `dsm_step_p_law` / `dsm_step_b_law`: the three-way NAF digit step denotes `edDigit` — add the d-th odd multiple, add its negation, or pass through. - `Proofs/DsmLoopSpec.lean` — the 256-iteration Straus loop by GENUINE induction on the counter (one symbolic body walk, no unrolling): `dsm_loop_spec` — from the identity, the loop returns a valid on-curve point denoting `dsmFold ... edId 256`, the abstract double-and-add fold of both digit arrays over the table points. Digit and table hypotheses are exactly what the NAF spec and naf_table_spec provide (layering). check.sh wired: PROOFS + AUDIT_IMPORTS + 7 new CERTS (naf_table_spec, naf_select_spec, proj_double_law, compl_as_projective_law, dsm_step_p_law, dsm_step_b_law, dsm_loop_spec), each `#print axioms`-audited to exactly [propext, Classical.choice, Quot.sound]. Full check.sh green. Co-Authored-By: Claude Fable 5 <noreply@anthropic.com>
2026-07-04 13:07:56 +00:00
CurveFieldProofs.naf_table_spec
CurveFieldProofs.naf_select_spec
CurveFieldProofs.proj_double_law
CurveFieldProofs.compl_as_projective_law
CurveFieldProofs.dsm_step_p_law
CurveFieldProofs.dsm_step_b_law
CurveFieldProofs.dsm_loop_spec
NAF encoder proven end-to-end + the phase-1 double-scalar-mul apex The complete non_adjacent_form(5) verification (four stages): - `Proofs/DsmNafLoadSpec.lean` (generated) — the LE byte-to-word load. - `Proofs/DsmNafMath.lean` — the digit loop's arithmetic core: window-read lemmas (single/cross-word), the exact ZZ invariant steps (Nat.mod_mul telescope), the carry-kill argument from V < 2^253, and the exit theorem. - `Proofs/DsmNafLoopSpec.lean` — the w=5 digit loop by induction on the remaining-bits measure: per-step 64-bit window read (4-way word split), digit write via hcast/wrapping_sub (exact value window - 32*carry', oddness, |d| < 16), invariant carried through even/odd steps. - `Proofs/DsmNafSpec.lean` — the public spec: both entry masserts DISCHARGED; the digits satisfy the NAF conditions and sum naf[k]*2^k = V EXACTLY (integers, no modular slack) for any scalar whose LE byte value V is below 2^253. And the campaign's brick 4, `Proofs/DsmMulSpec.lean`: - `run_basepoint` — the transpiled ED25519_BASEPOINT_POINT is the standard base point: valid extended coordinates (X*Y = Z*T) and the curve equation, kernel-checked via denominator-free 121666-scaled witnesses. Includes the generic witness lemmas fp_mul_eq_of_witness / onCurve_of_witness. - `vartime_double_base_mul_spec` — THE PHASE-1 COMPUTATIONAL SPEC of vartime_double_base::mul: for canonical scalars and a valid on-curve A, the result is valid, on-curve, and denotes dsmFold (naf a) (naf b) (edPt A) edBasePt edId 256 with both digit arrays proven exact NAF encodings. Phase 2 (group semantics [a]A + [b]B) requires Edwards associativity — deferred and documented; nothing assumes it. Also: removed a vestigial pre-re-extraction axiom stub (backend.serial.scalar_mul.vartime_double_base.mul) from FunsExternal — a root-level leftover that shadowed the real namespaced definition during name resolution in proof files. Never referenced by any certificate (the #print-axioms audit guards against that); deleted for hygiene. CERTS += naf_load_spec, naf_exit, naf_digit_loop_spec, non_adjacent_form_spec, run_basepoint, vartime_double_base_mul_spec — each audited to exactly [propext, Classical.choice, Quot.sound]. Full check.sh green. Co-Authored-By: Claude Fable 5 <noreply@anthropic.com>
2026-07-04 14:52:07 +00:00
CurveFieldProofs.naf_load_spec
CurveFieldProofs.naf_exit
CurveFieldProofs.naf_digit_loop_spec
CurveFieldProofs.non_adjacent_form_spec
CurveFieldProofs.run_basepoint
CurveFieldProofs.vartime_double_base_mul_spec
THE SIGNATURE APEX on the anza fork: verify_accepts_iff, button-enforced FOURTH AND FINAL PYRAMID CAPPED - the signature layer is complete on all four ed25519 forks. anza's verify code lives in the same crate as the curve (solana-ed25519), so the whole verify path joins the merged CurveField extraction directly: one universe, no glue layer, no FQ-name welding, and the Error enum plus the parse/filter helpers are all real extracted code. - extract.sh: verify_sha512 start-from joins the merged stanza; sha512_hash3 and the foreign ed25519 crate opaque; RUSTFLAGS --cfg curve25519_serial_only pins the serial backend so get_selected_backend extracts as the real constant Serial (the stale dispatch axiom is deleted from FunsExternal). - gen/CurveField externals: real defs for the ?-operator plumbing (Try::branch, FromResidual) and faithful identity models for Choice::unwrap_u8 (transparent-u8 body: self.0) and the RangeFull get_unchecked[_mut] raw-pointer pair (Rust body returns the pointer unchanged) - the three would-be cone intruders, eliminated. - Proofs/SigApexSpec.lean: verify_loop_full (standard three-axiom cone) and verify_accepts_iff - the verifier accepts IFF the recomputed compress([k](-A) + [s]B) equals the signature's R byte-for-byte, with the ZIP-215 legacy filters and the s < l parse conditioned by hypotheses, mirroring the siblings' hparse. - check.sh Phase 3b enforces the apex cone to be EXACTLY [propext, Classical.choice, Quot.sound, ed25519.Signature, ed_sigs.sha512_hash3, ed25519.Signature.r_bytes, ed25519.Signature.s_bytes] - the tightest boundary of the four pyramids: the SHA-512 oracle plus the foreign wire-format type and its two byte accessors, nothing else. check.sh (incl. Phase 3b) + check-scalar.sh both green. Co-Authored-By: Claude Fable 5 <noreply@anthropic.com>
2026-07-04 21:48:08 +00:00
CurveFieldProofs.verify_loop_full
CurveFieldProofs.to_bytes_spec
CurveFieldProofs.ed_compress_spec
ScalarProofs.from_bytes_mod_order_wide_spec
CurveFieldProofs.vartime_dsm_basepoint_spec
CurveFieldProofs.enc_point_inj
CurveFieldProofs.pow_p58_spec
CurveFieldProofs.fe_ct_eq_spec
CurveFieldProofs.sqrt_core
CurveFieldProofs.sqrt_ratio_i_sq_spec
CurveFieldProofs.from_bytes_spec
CurveFieldProofs.decompress_of_canonical
)
# Imports needed so every certificate in CERTS is in scope for the audit.
AUDIT_IMPORTS=(
Proofs.FieldMain
Proofs.EdMain
Double-scalar-mul proof campaign, bricks 1-3: table, digit step, loop Three new proof files over the CurveField extraction, composing the proven group-law layer (no new axioms, no associativity assumed — computational layering over the abstract `edAdd`): - `Proofs/DsmTableSpec.lean` — `NafLookupTable5::from(&A)`: the 8 entries are valid `ProjectiveNielsPoint` caches of valid on-curve points denoting the odd multiples A, 3A, ..., 15A as the `edOdd` double-and-add recursion. 7 explicit loop peels over edwards_as_projective_niels_spec / add_projniels_law / compl_as_extended_law, seeded by edwards_double_law. `select`: both masserts (x odd, x < 16) DISCHARGED — panic-freedom is proven, not assumed; post enumerates all 8 digit cases. - `Proofs/DsmStepSpec.lean` — `proj_double_law` (the projective doubling denotes `edAdd P P`; same Z^2-scaled linear_combination discipline as the extended-coordinate law), `compl_as_projective_law` ((X:Z),(Y:T) to (XT:YZ:ZT) preserves the point), `naf_select_entry` (digit-indexed lookup returns THE entry: NafEntryOf r A ((x-1)/2)), and `dsm_step_p_law` / `dsm_step_b_law`: the three-way NAF digit step denotes `edDigit` — add the d-th odd multiple, add its negation, or pass through. - `Proofs/DsmLoopSpec.lean` — the 256-iteration Straus loop by GENUINE induction on the counter (one symbolic body walk, no unrolling): `dsm_loop_spec` — from the identity, the loop returns a valid on-curve point denoting `dsmFold ... edId 256`, the abstract double-and-add fold of both digit arrays over the table points. Digit and table hypotheses are exactly what the NAF spec and naf_table_spec provide (layering). check.sh wired: PROOFS + AUDIT_IMPORTS + 7 new CERTS (naf_table_spec, naf_select_spec, proj_double_law, compl_as_projective_law, dsm_step_p_law, dsm_step_b_law, dsm_loop_spec), each `#print axioms`-audited to exactly [propext, Classical.choice, Quot.sound]. Full check.sh green. Co-Authored-By: Claude Fable 5 <noreply@anthropic.com>
2026-07-04 13:07:56 +00:00
Proofs.DsmTableSpec
Proofs.DsmStepSpec
Proofs.DsmLoopSpec
NAF encoder proven end-to-end + the phase-1 double-scalar-mul apex The complete non_adjacent_form(5) verification (four stages): - `Proofs/DsmNafLoadSpec.lean` (generated) — the LE byte-to-word load. - `Proofs/DsmNafMath.lean` — the digit loop's arithmetic core: window-read lemmas (single/cross-word), the exact ZZ invariant steps (Nat.mod_mul telescope), the carry-kill argument from V < 2^253, and the exit theorem. - `Proofs/DsmNafLoopSpec.lean` — the w=5 digit loop by induction on the remaining-bits measure: per-step 64-bit window read (4-way word split), digit write via hcast/wrapping_sub (exact value window - 32*carry', oddness, |d| < 16), invariant carried through even/odd steps. - `Proofs/DsmNafSpec.lean` — the public spec: both entry masserts DISCHARGED; the digits satisfy the NAF conditions and sum naf[k]*2^k = V EXACTLY (integers, no modular slack) for any scalar whose LE byte value V is below 2^253. And the campaign's brick 4, `Proofs/DsmMulSpec.lean`: - `run_basepoint` — the transpiled ED25519_BASEPOINT_POINT is the standard base point: valid extended coordinates (X*Y = Z*T) and the curve equation, kernel-checked via denominator-free 121666-scaled witnesses. Includes the generic witness lemmas fp_mul_eq_of_witness / onCurve_of_witness. - `vartime_double_base_mul_spec` — THE PHASE-1 COMPUTATIONAL SPEC of vartime_double_base::mul: for canonical scalars and a valid on-curve A, the result is valid, on-curve, and denotes dsmFold (naf a) (naf b) (edPt A) edBasePt edId 256 with both digit arrays proven exact NAF encodings. Phase 2 (group semantics [a]A + [b]B) requires Edwards associativity — deferred and documented; nothing assumes it. Also: removed a vestigial pre-re-extraction axiom stub (backend.serial.scalar_mul.vartime_double_base.mul) from FunsExternal — a root-level leftover that shadowed the real namespaced definition during name resolution in proof files. Never referenced by any certificate (the #print-axioms audit guards against that); deleted for hygiene. CERTS += naf_load_spec, naf_exit, naf_digit_loop_spec, non_adjacent_form_spec, run_basepoint, vartime_double_base_mul_spec — each audited to exactly [propext, Classical.choice, Quot.sound]. Full check.sh green. Co-Authored-By: Claude Fable 5 <noreply@anthropic.com>
2026-07-04 14:52:07 +00:00
Proofs.DsmNafSpec
Proofs.DsmMulSpec
THE SIGNATURE APEX on the anza fork: verify_accepts_iff, button-enforced FOURTH AND FINAL PYRAMID CAPPED - the signature layer is complete on all four ed25519 forks. anza's verify code lives in the same crate as the curve (solana-ed25519), so the whole verify path joins the merged CurveField extraction directly: one universe, no glue layer, no FQ-name welding, and the Error enum plus the parse/filter helpers are all real extracted code. - extract.sh: verify_sha512 start-from joins the merged stanza; sha512_hash3 and the foreign ed25519 crate opaque; RUSTFLAGS --cfg curve25519_serial_only pins the serial backend so get_selected_backend extracts as the real constant Serial (the stale dispatch axiom is deleted from FunsExternal). - gen/CurveField externals: real defs for the ?-operator plumbing (Try::branch, FromResidual) and faithful identity models for Choice::unwrap_u8 (transparent-u8 body: self.0) and the RangeFull get_unchecked[_mut] raw-pointer pair (Rust body returns the pointer unchanged) - the three would-be cone intruders, eliminated. - Proofs/SigApexSpec.lean: verify_loop_full (standard three-axiom cone) and verify_accepts_iff - the verifier accepts IFF the recomputed compress([k](-A) + [s]B) equals the signature's R byte-for-byte, with the ZIP-215 legacy filters and the s < l parse conditioned by hypotheses, mirroring the siblings' hparse. - check.sh Phase 3b enforces the apex cone to be EXACTLY [propext, Classical.choice, Quot.sound, ed25519.Signature, ed_sigs.sha512_hash3, ed25519.Signature.r_bytes, ed25519.Signature.s_bytes] - the tightest boundary of the four pyramids: the SHA-512 oracle plus the foreign wire-format type and its two byte accessors, nothing else. check.sh (incl. Phase 3b) + check-scalar.sh both green. Co-Authored-By: Claude Fable 5 <noreply@anthropic.com>
2026-07-04 21:48:08 +00:00
Proofs.SigApexSpec
Proofs.ToBytesSpec
Proofs.CompressSpec
Proofs.ScalarPackSpec
Proofs.PointLiftSpec
Proofs.PointEqSpec
Proofs.DecompressSpec
Proofs.FromBytesSpec
Proofs.DecompressMain
)
# ── Phase 0: resource + integrity guards ────────────────────────────────────
free -m | awk '/Mem:/{if($7<2048){print "FATAL: <2GB RAM available — refusing to compile"; exit 1}}'
echo "=== Phase 0: source integrity ==="
for f in "$HERE"/gen/CurveField/*.lean "$HERE"/Proofs/*.lean; do
[ -f "$f" ] || continue
if ! grep -qE '^(/-|import |namespace |theorem |def |open |set_option |--)' "$f"; then
echo "CORRUPTED: $f is not Lean source (olean clobber?). Restore: git checkout HEAD -- $f"
exit 1
fi
done
echo " all sources valid"
verification: bind the statements, the specifications, and the model (P1-a) Phases 3/3b establish what each certificate RESTS ON. Neither says what it SAYS, nor what it is ABOUT. A certificate gutted to a tautology of the same axiom cone passes both; so does one whose reference definition has been redefined to BE the extracted code, at which point the theorem reads `loop = loop` and every cone is byte-identical. Phase 3c closes that. Proofs/Audit.lean emits a canonical block holding the policy constants, every certificate's fully-elaborated statement (pp.all, so implicit arguments, instances and universe levels are visible), and the body of every specification constant transitively reachable from those statements. Its SHA-256 is pinned in check.sh and the block itself is committed as AUDIT-MANIFEST.txt, so a mismatch is DIFFED, not merely reported. 31 certificates, 68 specification constants per repository. Two tiers, not one. These forks have an arithmetic tier that must stay oracle-free and an apex tier carrying this fork's hash and wire-format axioms, and the apex boundary genuinely differs per fork (dalek 8 extra names, anza 4, risc0 and betrusted 5). One shared constant would have widened the arithmetic tier to accept hash oracles, which is the most valuable property these repos have. Each auditor is generated from its own repository's policy. Phase 0b pins the extracted model. This was not a precaution: risc0 and betrusted were observed emitting BYTE-IDENTICAL audit-manifest digests (6c821b8e…) while shipping demonstrably different extracted models, their point-doubling routines differing in operation order. A statement names an extracted function; it does not contain that function's body. Binding statements is not binding the subject. Membership derives from the filesystem, so a new model file fails closed. selftest-statements.sh attacks both phases with ten cases, each asserting a specific diagnostic: an edited model body, an unlisted model file, a widened policy, a hand-edited committed block, a certificate dropped from the auditor WITH the digest refreshed to match, and a gutted statement whose cone is unchanged. It lifts the phases out of check.sh at run time, so it attacks the shipping gate rather than a copy. Two bugs found and fixed during that testing, both mine: Phase 3c read `$0` after `cd "$AENEAS_LEAN"`, and $0 is the caller's relative path; and the axgate self-test compared the tree against a pristine checkout rather than against how it found it. A third expectation was wrong rather than the code — widening the apex boundary is caught by the exact-cone requirement before the digest ever runs, which is a stronger rejection, and the test now says so. All sixteen runs green at these commits: four main buttons, four axgate self-tests, four binding self-tests, four scalar buttons. TRUSTED-BASE.md records what this binds and, at equal length, what it does not: a digest binds identity, not meaning; an author can rotate the pins in one commit and is caught by review, not by the script; and pinning the model says nothing about whether Charon and Aeneas translated the Rust faithfully. Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
2026-07-28 22:38:19 +00:00
# ── Phase 0b: pin the extracted model ───────────────────────────────────────
# WHY. The certificates are stated ABOUT the extracted model in gen/. Phase 3c
# binds their statements and the specification definitions those statements are
# stated against — but a statement mentions an extracted function BY NAME, so
# editing that function's BODY changes what the theorem is about while leaving
# every statement, every cone and the audit digest byte-identical.
#
# This is not hypothetical. On 2026-07-28 the risc0 and betrusted repositories
# were observed to produce byte-identical AUDIT-MANIFEST digests despite
# shipping demonstrably different extracted models (a different operation order
# in the point-doubling routine). The statements could not tell them apart.
# Only a byte pin can.
#
# Membership is derived from the filesystem, not from a list: every .lean under
# gen/ must appear in GEN-MODEL.sha256 and vice versa, so adding a model file
# fails closed rather than passing unnoticed.
echo "=== Phase 0b: extracted-model byte pin ==="
if [ ! -s "$HERE/GEN-MODEL.sha256" ]; then
echo "FATAL: GEN-MODEL.sha256 is missing or empty — the extracted model is unpinned."
exit 1
fi
GEN_OBSERVED=$(cd "$HERE/gen" && find . -name '*.lean' -type f | sed 's|^\./||' | sort)
GEN_PINNED=$(awk '{print $2}' "$HERE/GEN-MODEL.sha256" | sort)
if [ "$GEN_OBSERVED" != "$GEN_PINNED" ]; then
echo "FATAL: the set of extracted-model files does not match GEN-MODEL.sha256."
echo " (< pinned, > present on disk)"
diff <(echo "$GEN_PINNED") <(echo "$GEN_OBSERVED") | sed 's/^/ /'
exit 1
fi
if ! ( cd "$HERE/gen" && sha256sum -c --quiet "$HERE/GEN-MODEL.sha256" ) ; then
echo "FATAL: an extracted-model file does not match its pin. The proofs are"
echo "about a model that is no longer the one that was reviewed."
exit 1
fi
echo " $(wc -l < "$HERE/GEN-MODEL.sha256") extracted-model files match their pins"
# ── Phase 1: stub + axiom-smuggling audit ───────────────────────────────────
echo "=== Phase 1: stub audit ==="
if grep -rn 'by trivial' "$HERE"/Proofs/*Spec*.lean 2>/dev/null; then
echo "STUB DETECTED: 'by trivial' in spec files"; exit 1; fi
if grep -rn ' : True :=' "$HERE"/Proofs/*.lean 2>/dev/null; then
echo "STUB DETECTED: True-target theorem"; exit 1; fi
if grep -rnE '^(private |protected |noncomputable )*axiom ' "$HERE"/Proofs/*.lean 2>/dev/null; then
echo "AXIOM SMUGGLING DETECTED: axiom declaration under Proofs/ — forbidden."
echo "External models belong in gen/*/FunsExternal.lean and must stay outside"
echo "every certificate's dependency cone (Phase 3 verifies that)."
exit 1
fi
echo " clean: no trivial stubs, no True targets, no axioms outside gen/"
# ── Phase 2: compile everything shipped ─────────────────────────────────────
echo "=== Phase 2: compile ==="
LOG=$(mktemp /tmp/check-compile-XXXX.log)
cd "$AENEAS_LEAN"
lake env bash -c "
set -euo pipefail
cd '$HERE/gen' && export LEAN_PATH=\"\$LEAN_PATH:\$PWD:$HERE\"
compile() {
echo \" · \$1\"
LEAN_TIMEOUT=$TIMEOUT LEAN_MAX_CORES=$CORES '$HERE/lean-guard' \"\${1}.lean\" 2>&1 | tee -a '$LOG' || { echo \"FAIL: \$1\"; exit 1; }
}
for m in ${GEN_MODULES[*]}; do compile \"\$m\"; done
cd '$HERE'
for m in ${PROOFS[*]}; do
[ -f \"Proofs/\$m.lean\" ] || { echo \"MISSING: Proofs/\$m.lean listed in manifest\"; exit 1; }
compile \"Proofs/\$m\"
done
# every shipped proof file must be in the manifest (no dead files)
for f in Proofs/*.lean; do
b=\$(basename \"\$f\" .lean)
[ \"\$b\" = AxiomCheck ] && continue
case \"\$b\" in Scalar*) continue;; esac # scalar layer: checked by check-scalar.sh (coherence pass 2)
case \" ${PROOFS[*]} \" in (*\" \$b \"*) ;; (*) echo \"DEAD FILE: \$f not in check manifest\"; exit 1;; esac
done
"
if grep -q "uses 'sorry'" "$LOG"; then
echo "STUB DETECTED: a compiled declaration uses 'sorry'"; exit 1; fi
rm -f "$LOG"
verification: kernel-side axiom-declaration gate (Phase 2b) + self-test Phase 1's anti-smuggling check reads source text. Measured today on Lean v4.30.0-rc2, four distinct declarations compile cleanly and slip past its anchored pattern: ` axiom cheat : ...` one leading space `@[simp] axiom cheat : ...` line starts with the attribute `unsafe axiom cheat : ...` `unsafe` absent from the modifier list `axiom` <newline> ` cheat` no space follows the keyword Any of them yields a repository that proves False while the button prints ALL GREEN. Only the tab variant is blocked, and by Lean, not by us. Hardening the pattern would fix the exhibited syntax rather than the class, which is the mistake this estate has made before. Phase 2b stops parsing text and asks the kernel instead: it reads every compiled Proofs/*.olean with readModuleData and rejects any declaration that is an axiom. Design notes: - reads compiled artifacts rather than importing the modules, because Proofs.Basic and Proofs.ConstSpecs deliberately reuse `zero_spec` and a whole-corpus import is impossible by construction; - membership is self-deriving from the filesystem, so Scalar* and AxiomCheck are covered too — both are skipped by the CERTS audit and by the dead-file gate; - fails closed on absence: a missing .olean would make the scan vacuous, so the count of compiled modules must equal the count of shipped sources; - removes its temp source AND artifact on both paths, since a bare `rm` after the call never runs under `set -e` when the gate goes red — exactly how this repo accumulated 101 orphan .olean files; - ~3 s for the whole corpus, against ~53 s for one module-importing run. Phase 1's grep stays as a fast first line of defence. Phase 2b is the gate that is load-bearing. selftest-axgate.sh attacks the shipping gate, lifted out of check.sh at run time rather than copied. It asserts the specific diagnostic, so a rejection for an unrelated reason fails too, and it was itself negative-tested: with the gate's throwError removed, the self-test goes red on exactly that case. No proof, statement, specification or certificate is touched. No attested commit is altered — the log binds specific commit hashes, all of which remain ancestors of HEAD. Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
2026-07-28 16:24:18 +00:00
# ── Phase 2b: kernel-side axiom-declaration gate ────────────────────────────
# WHY THIS EXISTS. Phase 1's anti-smuggling check reads SOURCE TEXT, and a
# source-text grep is the wrong instrument. Measured on Lean v4.30.0-rc2
# (2026-07-28), each of the following compiles cleanly and slips past it:
# ` axiom cheat : ...` (one leading space — the pattern is anchored)
# `@[simp] axiom cheat : ...` (line starts with the attribute)
# `unsafe axiom cheat : ...` (`unsafe` is not in the modifier alternation)
# `axiom` <newline> ` cheat` (no space follows the keyword)
# Only the tab variant is blocked, and by Lean itself, not by us. Hardening the
# pattern would fix the exhibited syntax rather than the class; the class fix is
# to stop parsing text and ask the kernel, which is what this phase does.
# Ported from fips205-slhdsa-verified/verification/Proofs/Audit.lean.
#
# Phase 1's grep is kept as a fast, readable first line of defence. THIS is the
# gate that is load-bearing.
echo "=== Phase 2b: kernel-side axiom-declaration gate ==="
# dot-prefixed and inside $HERE: `lean` refuses a file outside the root
# directory, and a leading dot keeps it out of every *.lean glob.
# The gate reads the COMPILED ARTIFACTS directly (readModuleData) rather than
# importing the modules. Two reasons, both load-bearing:
# · Proofs.Basic and Proofs.ConstSpecs deliberately reuse the name
# `zero_spec` (they are never imported together), so a whole-corpus import
# is impossible by construction — it fails with "environment already
# contains". Reading oleans merges nothing, so collisions cannot arise.
# · Membership is then SELF-DERIVING from the filesystem: every .olean under
# Proofs/ is scanned, including Scalar* and AxiomCheck, which the CERTS
# audit and the dead-file gate both skip. Nothing is on a hand-kept list.
# Cost is ~3 s for the whole corpus (no mathlib import), against ~53 s for a
# single module-importing invocation.
N_PROOF_SRC=$(ls -1 "$HERE"/Proofs/*.lean 2>/dev/null | wc -l)
GATE=$(mktemp "$HERE/.axgate-XXXX.lean")
{
echo "import Lean"
echo "open Lean"
echo "def expectedModules : Nat := $N_PROOF_SRC"
cat <<'LEANGATE'
run_cmd do
let dir : System.FilePath := "Proofs"
let mut errs : Array String := #[]
let mut nMod := 0
let mut nConst := 0
for entry in (← dir.readDir) do
if entry.path.extension == some "olean" then
nMod := nMod + 1
let (mod, _) ← readModuleData entry.path
for ci in mod.constants do
nConst := nConst + 1
if ci matches .axiomInfo _ then
errs := errs.push s!" {entry.fileName}: {ci.name}"
unless errs.isEmpty do
throwError "AXIOM DECLARED under Proofs/ (kernel-side gate):\n{String.intercalate "\n" errs.toList}"
-- FAIL CLOSED ON ABSENCE: an empty result and a clean result must not share
-- a code path. A deleted .olean would make the scan above vacuous; an extra
-- one is orphan litter with no shipped source.
if nMod != expectedModules then
throwError "COVERAGE MISMATCH under Proofs/: scanned {nMod} compiled modules, but the directory ships {expectedModules} sources. A missing .olean makes this gate vacuous; an extra .olean is an orphan with no source."
logInfo s!" kernel confirms: {nConst} declarations across {nMod} compiled Proofs modules, none is an axiom"
LEANGATE
} > "$GATE"
cd "$AENEAS_LEAN"
# The temp source AND its compiled artifact are removed on BOTH paths. Under
# `set -e` a bare `rm` after the call never runs when the gate goes red, which
# is exactly how this repo accumulated 101 orphan .olean files (fixed today).
GATE_RC=0
lake env bash -c "
set -euo pipefail
cd '$HERE/gen' && export LEAN_PATH=\"\$LEAN_PATH:\$PWD:$HERE\"
cd '$HERE'
LEAN_TIMEOUT=$TIMEOUT LEAN_MAX_CORES=$CORES '$HERE/lean-guard' '$GATE'
" || GATE_RC=$?
rm -f "$GATE" "${GATE%.lean}.olean"
if [ "$GATE_RC" -ne 0 ]; then
echo "AXIOM SMUGGLING GATE FAILED (kernel-side) — see the error above."
exit 1
fi
# ── Phase 3: axiom audit of every certificate ───────────────────────────────
echo "=== Phase 3: axiom audit ==="
EXPECTED="[propext, Classical.choice, Quot.sound]"
cd "$AENEAS_LEAN"
lake env bash -c "
set -euo pipefail
cd '$HERE/gen' && export LEAN_PATH=\"\$LEAN_PATH:\$PWD:$HERE\"
cd '$HERE'
AUD=\$(mktemp '$HERE/.audit-XXXX.lean')
{
for i in ${AUDIT_IMPORTS[*]}; do echo \"import \$i\"; done
for c in ${CERTS[*]}; do echo \"#print axioms \$c\"; done
} > \"\$AUD\"
OUT=\$(LEAN_TIMEOUT=$TIMEOUT LEAN_MEM_MB=4096 '$HERE/lean-guard' \"\$AUD\" 2>&1)
echo \"\$OUT\"
rm -f \"\$AUD\" \"\${AUD%.lean}.olean\"
N_CLEAN=\$(echo \"\$OUT\" | grep -cF \"depends on axioms: $EXPECTED\" || true)
if [ \"\$N_CLEAN\" -ne ${#CERTS[@]} ]; then
echo \"AXIOM AUDIT FAILED: \$N_CLEAN/${#CERTS[@]} certificates clean\"
exit 1
fi
"
THE SIGNATURE APEX on the anza fork: verify_accepts_iff, button-enforced FOURTH AND FINAL PYRAMID CAPPED - the signature layer is complete on all four ed25519 forks. anza's verify code lives in the same crate as the curve (solana-ed25519), so the whole verify path joins the merged CurveField extraction directly: one universe, no glue layer, no FQ-name welding, and the Error enum plus the parse/filter helpers are all real extracted code. - extract.sh: verify_sha512 start-from joins the merged stanza; sha512_hash3 and the foreign ed25519 crate opaque; RUSTFLAGS --cfg curve25519_serial_only pins the serial backend so get_selected_backend extracts as the real constant Serial (the stale dispatch axiom is deleted from FunsExternal). - gen/CurveField externals: real defs for the ?-operator plumbing (Try::branch, FromResidual) and faithful identity models for Choice::unwrap_u8 (transparent-u8 body: self.0) and the RangeFull get_unchecked[_mut] raw-pointer pair (Rust body returns the pointer unchanged) - the three would-be cone intruders, eliminated. - Proofs/SigApexSpec.lean: verify_loop_full (standard three-axiom cone) and verify_accepts_iff - the verifier accepts IFF the recomputed compress([k](-A) + [s]B) equals the signature's R byte-for-byte, with the ZIP-215 legacy filters and the s < l parse conditioned by hypotheses, mirroring the siblings' hparse. - check.sh Phase 3b enforces the apex cone to be EXACTLY [propext, Classical.choice, Quot.sound, ed25519.Signature, ed_sigs.sha512_hash3, ed25519.Signature.r_bytes, ed25519.Signature.s_bytes] - the tightest boundary of the four pyramids: the SHA-512 oracle plus the foreign wire-format type and its two byte accessors, nothing else. check.sh (incl. Phase 3b) + check-scalar.sh both green. Co-Authored-By: Claude Fable 5 <noreply@anthropic.com>
2026-07-04 21:48:08 +00:00
echo "=== Phase 3b: signature-apex audit (SHA-512 + wire-format boundary) ==="
# The verification-equation apex is grounded in the PROVEN curve model; its
# only axioms beyond the standard three are the deliberate, documented
# boundary: the SHA-512 hash oracle and the opaque wire-format types.
# NO curve axioms, NO scalar axioms, NO backend-dispatch axioms.
cd "$AENEAS_LEAN"
lake env bash -c "
set -euo pipefail
cd '$HERE/gen' && export LEAN_PATH=\"\$LEAN_PATH:\$PWD:$HERE\"
cd '$HERE'
ALLOWED='[propext, Classical.choice, Quot.sound, ed25519.Signature, ed_sigs.sha512_hash3, ed25519.Signature.r_bytes, ed25519.Signature.s_bytes]'
AUD=\$(mktemp '$HERE/.apex-XXXX.lean')
{ echo 'import Proofs.SigApexSpec'; echo 'import Proofs.PointLiftSpec'; echo 'import Proofs.PointEqSpec'; echo 'import Proofs.DecompressMain'; echo '#print axioms CurveFieldProofs.verify_accepts_iff'; echo '#print axioms CurveFieldProofs.verify_accepts_iff_point'; echo '#print axioms CurveFieldProofs.verify_accepts_iff_point_eq'; echo '#print axioms CurveFieldProofs.verify_accepts_iff_decompress'; } > \"\$AUD\"
THE SIGNATURE APEX on the anza fork: verify_accepts_iff, button-enforced FOURTH AND FINAL PYRAMID CAPPED - the signature layer is complete on all four ed25519 forks. anza's verify code lives in the same crate as the curve (solana-ed25519), so the whole verify path joins the merged CurveField extraction directly: one universe, no glue layer, no FQ-name welding, and the Error enum plus the parse/filter helpers are all real extracted code. - extract.sh: verify_sha512 start-from joins the merged stanza; sha512_hash3 and the foreign ed25519 crate opaque; RUSTFLAGS --cfg curve25519_serial_only pins the serial backend so get_selected_backend extracts as the real constant Serial (the stale dispatch axiom is deleted from FunsExternal). - gen/CurveField externals: real defs for the ?-operator plumbing (Try::branch, FromResidual) and faithful identity models for Choice::unwrap_u8 (transparent-u8 body: self.0) and the RangeFull get_unchecked[_mut] raw-pointer pair (Rust body returns the pointer unchanged) - the three would-be cone intruders, eliminated. - Proofs/SigApexSpec.lean: verify_loop_full (standard three-axiom cone) and verify_accepts_iff - the verifier accepts IFF the recomputed compress([k](-A) + [s]B) equals the signature's R byte-for-byte, with the ZIP-215 legacy filters and the s < l parse conditioned by hypotheses, mirroring the siblings' hparse. - check.sh Phase 3b enforces the apex cone to be EXACTLY [propext, Classical.choice, Quot.sound, ed25519.Signature, ed_sigs.sha512_hash3, ed25519.Signature.r_bytes, ed25519.Signature.s_bytes] - the tightest boundary of the four pyramids: the SHA-512 oracle plus the foreign wire-format type and its two byte accessors, nothing else. check.sh (incl. Phase 3b) + check-scalar.sh both green. Co-Authored-By: Claude Fable 5 <noreply@anthropic.com>
2026-07-04 21:48:08 +00:00
OUT=\$(LEAN_TIMEOUT=$TIMEOUT LEAN_MEM_MB=4096 '$HERE/lean-guard' \"\$AUD\" 2>&1)
echo \"\$OUT\"
rm -f \"\$AUD\" \"\${AUD%.lean}.olean\"
THE SIGNATURE APEX on the anza fork: verify_accepts_iff, button-enforced FOURTH AND FINAL PYRAMID CAPPED - the signature layer is complete on all four ed25519 forks. anza's verify code lives in the same crate as the curve (solana-ed25519), so the whole verify path joins the merged CurveField extraction directly: one universe, no glue layer, no FQ-name welding, and the Error enum plus the parse/filter helpers are all real extracted code. - extract.sh: verify_sha512 start-from joins the merged stanza; sha512_hash3 and the foreign ed25519 crate opaque; RUSTFLAGS --cfg curve25519_serial_only pins the serial backend so get_selected_backend extracts as the real constant Serial (the stale dispatch axiom is deleted from FunsExternal). - gen/CurveField externals: real defs for the ?-operator plumbing (Try::branch, FromResidual) and faithful identity models for Choice::unwrap_u8 (transparent-u8 body: self.0) and the RangeFull get_unchecked[_mut] raw-pointer pair (Rust body returns the pointer unchanged) - the three would-be cone intruders, eliminated. - Proofs/SigApexSpec.lean: verify_loop_full (standard three-axiom cone) and verify_accepts_iff - the verifier accepts IFF the recomputed compress([k](-A) + [s]B) equals the signature's R byte-for-byte, with the ZIP-215 legacy filters and the s < l parse conditioned by hypotheses, mirroring the siblings' hparse. - check.sh Phase 3b enforces the apex cone to be EXACTLY [propext, Classical.choice, Quot.sound, ed25519.Signature, ed_sigs.sha512_hash3, ed25519.Signature.r_bytes, ed25519.Signature.s_bytes] - the tightest boundary of the four pyramids: the SHA-512 oracle plus the foreign wire-format type and its two byte accessors, nothing else. check.sh (incl. Phase 3b) + check-scalar.sh both green. Co-Authored-By: Claude Fable 5 <noreply@anthropic.com>
2026-07-04 21:48:08 +00:00
FLAT=\$(echo \"\$OUT\" | tr '\\n' ' ' | tr -s ' ')
if echo \"\$FLAT\" | grep -qF \"'CurveFieldProofs.verify_accepts_iff' depends on axioms: \$ALLOWED\" \
&& echo \"\$FLAT\" | grep -qF \"'CurveFieldProofs.verify_accepts_iff_point' depends on axioms: \$ALLOWED\" \
&& echo \"\$FLAT\" | grep -qF \"'CurveFieldProofs.verify_accepts_iff_point_eq' depends on axioms: \$ALLOWED\" \
&& echo \"\$FLAT\" | grep -qF \"'CurveFieldProofs.verify_accepts_iff_decompress' depends on axioms: \$ALLOWED\"; then
echo ' apex + full-lift axiom cones = exactly the SHA-512 + wire-format boundary (no curve/scalar/backend axioms)'
THE SIGNATURE APEX on the anza fork: verify_accepts_iff, button-enforced FOURTH AND FINAL PYRAMID CAPPED - the signature layer is complete on all four ed25519 forks. anza's verify code lives in the same crate as the curve (solana-ed25519), so the whole verify path joins the merged CurveField extraction directly: one universe, no glue layer, no FQ-name welding, and the Error enum plus the parse/filter helpers are all real extracted code. - extract.sh: verify_sha512 start-from joins the merged stanza; sha512_hash3 and the foreign ed25519 crate opaque; RUSTFLAGS --cfg curve25519_serial_only pins the serial backend so get_selected_backend extracts as the real constant Serial (the stale dispatch axiom is deleted from FunsExternal). - gen/CurveField externals: real defs for the ?-operator plumbing (Try::branch, FromResidual) and faithful identity models for Choice::unwrap_u8 (transparent-u8 body: self.0) and the RangeFull get_unchecked[_mut] raw-pointer pair (Rust body returns the pointer unchanged) - the three would-be cone intruders, eliminated. - Proofs/SigApexSpec.lean: verify_loop_full (standard three-axiom cone) and verify_accepts_iff - the verifier accepts IFF the recomputed compress([k](-A) + [s]B) equals the signature's R byte-for-byte, with the ZIP-215 legacy filters and the s < l parse conditioned by hypotheses, mirroring the siblings' hparse. - check.sh Phase 3b enforces the apex cone to be EXACTLY [propext, Classical.choice, Quot.sound, ed25519.Signature, ed_sigs.sha512_hash3, ed25519.Signature.r_bytes, ed25519.Signature.s_bytes] - the tightest boundary of the four pyramids: the SHA-512 oracle plus the foreign wire-format type and its two byte accessors, nothing else. check.sh (incl. Phase 3b) + check-scalar.sh both green. Co-Authored-By: Claude Fable 5 <noreply@anthropic.com>
2026-07-04 21:48:08 +00:00
else
echo 'APEX AUDIT FAILED: apex/full-lift cone is not the documented boundary'; exit 1
THE SIGNATURE APEX on the anza fork: verify_accepts_iff, button-enforced FOURTH AND FINAL PYRAMID CAPPED - the signature layer is complete on all four ed25519 forks. anza's verify code lives in the same crate as the curve (solana-ed25519), so the whole verify path joins the merged CurveField extraction directly: one universe, no glue layer, no FQ-name welding, and the Error enum plus the parse/filter helpers are all real extracted code. - extract.sh: verify_sha512 start-from joins the merged stanza; sha512_hash3 and the foreign ed25519 crate opaque; RUSTFLAGS --cfg curve25519_serial_only pins the serial backend so get_selected_backend extracts as the real constant Serial (the stale dispatch axiom is deleted from FunsExternal). - gen/CurveField externals: real defs for the ?-operator plumbing (Try::branch, FromResidual) and faithful identity models for Choice::unwrap_u8 (transparent-u8 body: self.0) and the RangeFull get_unchecked[_mut] raw-pointer pair (Rust body returns the pointer unchanged) - the three would-be cone intruders, eliminated. - Proofs/SigApexSpec.lean: verify_loop_full (standard three-axiom cone) and verify_accepts_iff - the verifier accepts IFF the recomputed compress([k](-A) + [s]B) equals the signature's R byte-for-byte, with the ZIP-215 legacy filters and the s < l parse conditioned by hypotheses, mirroring the siblings' hparse. - check.sh Phase 3b enforces the apex cone to be EXACTLY [propext, Classical.choice, Quot.sound, ed25519.Signature, ed_sigs.sha512_hash3, ed25519.Signature.r_bytes, ed25519.Signature.s_bytes] - the tightest boundary of the four pyramids: the SHA-512 oracle plus the foreign wire-format type and its two byte accessors, nothing else. check.sh (incl. Phase 3b) + check-scalar.sh both green. Co-Authored-By: Claude Fable 5 <noreply@anthropic.com>
2026-07-04 21:48:08 +00:00
fi
"
verification: bind the statements, the specifications, and the model (P1-a) Phases 3/3b establish what each certificate RESTS ON. Neither says what it SAYS, nor what it is ABOUT. A certificate gutted to a tautology of the same axiom cone passes both; so does one whose reference definition has been redefined to BE the extracted code, at which point the theorem reads `loop = loop` and every cone is byte-identical. Phase 3c closes that. Proofs/Audit.lean emits a canonical block holding the policy constants, every certificate's fully-elaborated statement (pp.all, so implicit arguments, instances and universe levels are visible), and the body of every specification constant transitively reachable from those statements. Its SHA-256 is pinned in check.sh and the block itself is committed as AUDIT-MANIFEST.txt, so a mismatch is DIFFED, not merely reported. 31 certificates, 68 specification constants per repository. Two tiers, not one. These forks have an arithmetic tier that must stay oracle-free and an apex tier carrying this fork's hash and wire-format axioms, and the apex boundary genuinely differs per fork (dalek 8 extra names, anza 4, risc0 and betrusted 5). One shared constant would have widened the arithmetic tier to accept hash oracles, which is the most valuable property these repos have. Each auditor is generated from its own repository's policy. Phase 0b pins the extracted model. This was not a precaution: risc0 and betrusted were observed emitting BYTE-IDENTICAL audit-manifest digests (6c821b8e…) while shipping demonstrably different extracted models, their point-doubling routines differing in operation order. A statement names an extracted function; it does not contain that function's body. Binding statements is not binding the subject. Membership derives from the filesystem, so a new model file fails closed. selftest-statements.sh attacks both phases with ten cases, each asserting a specific diagnostic: an edited model body, an unlisted model file, a widened policy, a hand-edited committed block, a certificate dropped from the auditor WITH the digest refreshed to match, and a gutted statement whose cone is unchanged. It lifts the phases out of check.sh at run time, so it attacks the shipping gate rather than a copy. Two bugs found and fixed during that testing, both mine: Phase 3c read `$0` after `cd "$AENEAS_LEAN"`, and $0 is the caller's relative path; and the axgate self-test compared the tree against a pristine checkout rather than against how it found it. A third expectation was wrong rather than the code — widening the apex boundary is caught by the exact-cone requirement before the digest ever runs, which is a stronger rejection, and the test now says so. All sixteen runs green at these commits: four main buttons, four axgate self-tests, four binding self-tests, four scalar buttons. TRUSTED-BASE.md records what this binds and, at equal length, what it does not: a digest binds identity, not meaning; an author can rotate the pins in one commit and is caught by review, not by the script; and pinning the model says nothing about whether Charon and Aeneas translated the Rust faithfully. Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
2026-07-28 22:38:19 +00:00
# ── Phase 3c: statement + specification binding ─────────────────────────────
# WHAT THE EARLIER PHASES DO NOT ESTABLISH. Phase 3 proves each certificate
# rests on exactly the declared axioms; 3b does the same for the apex tier.
# Neither says WHAT THE THEOREM SAYS. A certificate gutted to a tautology of
# the same cone passes both. So does one whose reference definition has been
# redefined to BE the extracted code, at which point the theorem reads
# `loop = loop` and every cone is byte-identical.
#
# Proofs/Audit.lean emits a canonical block holding the policy constants,
# every certificate's fully-elaborated statement, and the body of every
# specification constant transitively reachable from those statements. This
# phase binds the SHA-256 of that block, and the block's INPUT is committed
# too, so a mismatch can be DIFFED rather than merely reported.
#
# To rotate deliberately: run check.sh, take the printed OBSERVED digest, and
# update the constant below AND AUDIT-MANIFEST.txt in the same reviewable
# commit. That the rotation is visible in review is the whole point — an
# author who edits a statement and refreshes the digest in one commit is
# caught by reading the diff, not by this script.
EXPECTED_AUDIT_SHA256="12dc724bffd590e6f706573d97bf07425b8f268a1be2d72a3bbd9aef48f9c277"
echo "=== Phase 3c: statement + specification binding ==="
cd "$AENEAS_LEAN"
# The compiler's own exit code is the primary signal; the transcript is only
# corroboration. A timeout or a memory clamp exits non-zero WITHOUT printing
# "error:", so grepping the text alone would let it through.
AUD_RC=0
AUD_OUT=$(lake env bash -c "
set -uo pipefail
cd '$HERE/gen' && export LEAN_PATH=\"\$LEAN_PATH:\$PWD:$HERE\"
cd '$HERE'
LEAN_TIMEOUT=$TIMEOUT LEAN_MEM_MB=8192 '$HERE/lean-guard' Proofs/Audit.lean 2>&1
" ) || AUD_RC=$?
if [ "$AUD_RC" -ne 0 ]; then
echo "AUDIT FAILED — Proofs/Audit.lean exited $AUD_RC:"
tail -20 <<<"$AUD_OUT" | sed 's/^/ /'
exit 1
fi
if grep -q 'error:' <<<"$AUD_OUT"; then
echo "AUDIT FAILED — Proofs/Audit.lean did not elaborate cleanly:"
grep 'error:' <<<"$AUD_OUT" | head -20 | sed 's/^/ /'
exit 1
fi
BLOCK=$(awk '/AUDIT-MANIFEST-BEGIN/{f=1;next} /AUDIT-MANIFEST-END/{f=0} f' <<<"$AUD_OUT")
# FAIL CLOSED ON ABSENCE: no block and a matching block must not share a path.
if [ -z "$BLOCK" ]; then
echo "AUDIT FAILED — no AUDIT-MANIFEST block was emitted (fail-closed)."; exit 1
fi
GOT_SHA=$(printf '%s\n' "$BLOCK" | sha256sum | cut -d' ' -f1)
if [ "$GOT_SHA" != "$EXPECTED_AUDIT_SHA256" ]; then
printf '%s\n' "$BLOCK" > "$HERE/.audit-manifest.observed"
echo "AUDIT FAILED — audit-manifest digest mismatch."
echo " expected: $EXPECTED_AUDIT_SHA256"
echo " observed: $GOT_SHA"
echo " A statement, a specification body, or a policy constant changed."
echo " First differences against the committed block:"
diff -u "$HERE/AUDIT-MANIFEST.txt" "$HERE/.audit-manifest.observed" 2>/dev/null \
| head -30 | sed 's/^/ /' || echo " (AUDIT-MANIFEST.txt absent — cannot diff)"
rm -f "$HERE/.audit-manifest.observed"
exit 1
fi
# The digest's INPUT must be committed and current, or the diff above would
# compare against a stale reference and quietly mislead the next reader.
if ! printf '%s\n' "$BLOCK" | cmp -s - "$HERE/AUDIT-MANIFEST.txt"; then
echo "AUDIT FAILED — the committed AUDIT-MANIFEST.txt does not match the emitted block."
echo " (the digest matched, so the committed copy is stale — refresh it)"; exit 1
fi
# CROSS-CHECK the certificate list against its OTHER two sources in this file:
# the CERTS array (Phase 3) and the apex names Phase 3b actually asks about.
# The apex names are read back out of this script rather than retyped, so a
# fourth copy cannot drift. Without this, a certificate could be dropped from
# the auditor's manifest and nothing would notice.
# Match only the QUOTED commands Phase 3b actually emits. An unquoted match
# also hits this file's own prose ("#print axioms for every certificate...")
# and silently contributes the word "for" as a certificate name.
# NOT "$0": this phase runs after `cd "$AENEAS_LEAN"`, and $0 is the relative
# path the caller used ("./check.sh"), which no longer resolves from there.
# $HERE was resolved absolutely at the top of the script.
APEX_FROM_3B=$(grep -oE "'#print axioms [A-Za-z0-9_.]+'" "$HERE/check.sh" | tr -d "'" | awk '{print $3}' | sort -u)
if [ -z "$APEX_FROM_3B" ]; then
echo "AUDIT FAILED — could not recover the apex certificate names from Phase 3b."; exit 1
fi
# Every recovered name must be namespace-qualified; a bare word means the
# pattern drifted onto prose again rather than onto a command.
while read -r n; do
case "$n" in *.*) ;; *) echo "AUDIT FAILED — recovered apex name '$n' is not qualified."; exit 1;; esac
done <<<"$APEX_FROM_3B"
AUD_CERTS=$(grep -o 'AUDITED-CERTIFICATES:.*' <<<"$AUD_OUT" | sed 's/AUDITED-CERTIFICATES: //' | tr ' ' '\n' | sort -u)
BASH_CERTS=$(printf '%s\n' "${CERTS[@]}" $APEX_FROM_3B | sort -u)
if [ "$AUD_CERTS" != "$BASH_CERTS" ]; then
echo "AUDIT FAILED — the auditor's certificate list and this script's have drifted:"
diff <(echo "$BASH_CERTS") <(echo "$AUD_CERTS") | sed 's/^/ /'
exit 1
fi
grep -o 'statement audit PASSED:.*' <<<"$AUD_OUT" | sed 's/^/ /'
echo " audit-manifest sha256 = $GOT_SHA (matches the committed block byte-for-byte)"
echo ""
echo "ALL PROOFS PASS. ALL CERTIFICATES AXIOM-CLEAN. NO DEAD FILES."
verification: bind the statements, the specifications, and the model (P1-a) Phases 3/3b establish what each certificate RESTS ON. Neither says what it SAYS, nor what it is ABOUT. A certificate gutted to a tautology of the same axiom cone passes both; so does one whose reference definition has been redefined to BE the extracted code, at which point the theorem reads `loop = loop` and every cone is byte-identical. Phase 3c closes that. Proofs/Audit.lean emits a canonical block holding the policy constants, every certificate's fully-elaborated statement (pp.all, so implicit arguments, instances and universe levels are visible), and the body of every specification constant transitively reachable from those statements. Its SHA-256 is pinned in check.sh and the block itself is committed as AUDIT-MANIFEST.txt, so a mismatch is DIFFED, not merely reported. 31 certificates, 68 specification constants per repository. Two tiers, not one. These forks have an arithmetic tier that must stay oracle-free and an apex tier carrying this fork's hash and wire-format axioms, and the apex boundary genuinely differs per fork (dalek 8 extra names, anza 4, risc0 and betrusted 5). One shared constant would have widened the arithmetic tier to accept hash oracles, which is the most valuable property these repos have. Each auditor is generated from its own repository's policy. Phase 0b pins the extracted model. This was not a precaution: risc0 and betrusted were observed emitting BYTE-IDENTICAL audit-manifest digests (6c821b8e…) while shipping demonstrably different extracted models, their point-doubling routines differing in operation order. A statement names an extracted function; it does not contain that function's body. Binding statements is not binding the subject. Membership derives from the filesystem, so a new model file fails closed. selftest-statements.sh attacks both phases with ten cases, each asserting a specific diagnostic: an edited model body, an unlisted model file, a widened policy, a hand-edited committed block, a certificate dropped from the auditor WITH the digest refreshed to match, and a gutted statement whose cone is unchanged. It lifts the phases out of check.sh at run time, so it attacks the shipping gate rather than a copy. Two bugs found and fixed during that testing, both mine: Phase 3c read `$0` after `cd "$AENEAS_LEAN"`, and $0 is the caller's relative path; and the axgate self-test compared the tree against a pristine checkout rather than against how it found it. A third expectation was wrong rather than the code — widening the apex boundary is caught by the exact-cone requirement before the digest ever runs, which is a stronger rejection, and the test now says so. All sixteen runs green at these commits: four main buttons, four axgate self-tests, four binding self-tests, four scalar buttons. TRUSTED-BASE.md records what this binds and, at equal length, what it does not: a digest binds identity, not meaning; an author can rotate the pins in one commit and is caught by review, not by the script; and pinning the model says nothing about whether Charon and Aeneas translated the Rust faithfully. Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
2026-07-28 22:38:19 +00:00
echo "STATEMENTS AND SPECIFICATIONS BOUND TO THE COMMITTED AUDIT MANIFEST."