Acronyms used below: identifier (ID); reduced instruction set computer (RISC).
VSTD is a verification-domain language and Python reference implementation for turning a bare computational result into an inspectable package: the exact claim, artifact, evidence, checking mechanism, limits, and conditions that could overturn it. It does not replace native domain verifiers, proof systems, signatures, identity systems, transparency logs, or provenance formats.
The shortest useful description is:
result + exact claim + evidence + mechanism + bounds + provenance + refutation route
VSTD evaluates bounded validity propositions about computational processes represented by software and evidence-bearing artifacts. It does not decide whether an actor is good, bad, reputable, or trustworthy, and translating or storing a result never strengthens it.
Current boundary: the repository contains usable reference paths for receipts, generic
run capture, provenance Graphs, bounded certificate checking, artifact freezing and
sealing, reproduction, and evidence-bound assessment. Some compatibility paths remain
NOT_ESTABLISHED, and no real external witness, independent implementation, accreditation,
or external adoption is claimed. See current maturity and
claims and limits for the exact surface-by-surface boundary.
Normative specifications · 60-second quickstart · Implementation reference · Report an ambiguity or counterexample · Report a vulnerability privately
30–60 second demonstration
git clone https://github.com/TimeLordRaps/verifier.git
cd verifier
python -m pip install .
vstd demo
The side-effect-free demo runs four public adversarial specimens:
VSTD flagship adversarial demo
4/4 scenarios behaved as required.
[DEMO OK] Valid-looking proof, wrong artifact → REJECTED
[DEMO OK] Bound exhausted without a false answer → ACCEPTED/UNKNOWN
[DEMO OK] Inflated verification-cost claim → REJECTED
[DEMO OK] Revoked ancestor behind valid descendants → GRAPH-CANDIDATE-0
[DEMO OK] means the expected defensive outcome occurred; it is not a VSTD PASS.
The scenarios establish bounded behavior of this reference implementation over the
included specimens. They do not establish empirical truth, complete provenance,
external adoption, independent implementation, or general artificial intelligence (AI)
safety. Use vstd demo --json for JavaScript Object Notation (JSON) output or
vstd demo --emit-specimens PATH to inspect the generated files.
The 90-second mental model
A normal tool may report PASS. VSTD asks what that word is allowed to mean:
claim ──checked against──> evidence
│ │
└── bounded by ─────────────┤
v
named mechanism
│
v
PASS / FAIL / UNKNOWN
+ limits + provenance
+ refutation conditions
The native verifier still performs the domain work. VSTD records the exact boundary of that work so another person or program can inspect, replay, challenge, or reject it without silently receiving a stronger claim.
VSTD has two independent axes:
- Object profiles describe what is established about one computational claim.
- Graph profiles describe what is established about a bounded collection of artifacts and transformations.
| Profile | One claim asks… | A collection asks… |
|---|---|---|
| 1 | What was claimed and recorded? | What artifacts and lineage were recorded? |
| 2 | What exact surface was checked? | What bounded collection surface was checked? |
| 3 | What execution substrate is evidenced? | Which provenance paths have substrate evidence? |
| 4 | How can the result be refuted? | Which transformations are refutable? |
| 5 | Was an independent witness actually evidenced? | Is corroboration evidenced across the network? |
Three rules prevent most misreadings:
- Each profile answers a different question and needs its own evidence.
- A later-profile result cannot repair missing evidence for an earlier profile.
UNKNOWNis a correct result when the mechanism, evidence, or bound is insufficient.
Choose the smallest useful starting point:
| Goal | Start here |
|---|---|
| See defensive behavior immediately | Run vstd demo |
| Capture and reproduce one command | Generic computation |
| Preserve and seal exact artifact bytes | Artifact control |
| Understand the formal profile composition | Normative Ladder |
| Integrate or independently review the code | Architecture map |
| Challenge an overclaim or ambiguous rule | Issue forms |
What a result means
VSTD result terms remain tied to one exact proposition, mechanism, evidence set, and bound:
| Result | Bounded meaning | It does not mean |
|---|---|---|
PASS |
The named mechanism established its declared proposition inside the stated coordinate and bounds. | The proposition is universally or permanently true. |
FAIL |
The mechanism found a checked violation, rejected certificate, or counterexample at the named surface. | Every broader interpretation is false. |
UNKNOWN |
Available evidence, capability, or resources did not establish PASS or FAIL. |
False, safe, unsupported forever, or “probably PASS.” |
CONFLICTED |
Incompatible evidence or assertions remain explicit. | The conflict was resolved by choosing one side. |
NOT_ESTABLISHED |
The evaluated path did not establish conformance: it may be a compatibility candidate, or required evidence, exact binding, mechanism availability, mechanism result, prerequisite, or profile floor was missing or non-passing. | Conformance, readiness, or a weak form of PASS. |
A VSTD PASS never means “true in the real world” without the exact real-world
proposition and observation boundary being part of the checked claim.
Current maturity
Use this summary before opening the exact matrix:
| Category | Current meaning |
|---|---|
| Usable reference paths | Receipts, generic run capture and reproduction, Graph recording, grounded-certificate checks, evidence-bound assessment, and artifact freeze/seal/thaw mechanisms are implemented within their documented bounds. |
| Mechanism-dependent paths | VSTD-4, VSTD-5, and Graph profiles above recorded lineage establish results only when their exact registered mechanisms rerun successfully over bound evidence. |
| Compatibility candidates | Candidate depth/profile calculations remain NOT_ESTABLISHED; caller-supplied references or ratings cannot create conformance. |
| Experimental integrations | The workflow and Supply Chain Integrity, Transparency, and Trust (SCITT) profiles plus interoperability catalog, planning, graph-topology, and composed-untraversability paths remain non-normative. Strict geometry loading, modeled-surface analysis, and bounded platform comparison are supported, but the experimental surfaces grant no VSTD verdict and do not enforce confidentiality. |
| Not claimed | Accreditation, consensus-standard status, external adoption, a second implementation, a real independent witness, or third-party security review. |
Exact surface-by-surface matrix for reviewers and integrators
“Implemented” applies only to the named reference surface. It does not imply adoption, external interoperability, certification, or a second implementation.
| Surface | Normative status | Reference implementation | Evidence binding | Conformance status | Missing mechanism or evidence |
|---|---|---|---|---|---|
| VSTD-1 | Project specification with implemented reference subset | Claim receipts, checker reports, strict generic-run profile, inspection, and current-profile reads | Claim coordinates, stable digests, mechanism descriptors, and declared provenance; actor separation is not inferred | Implemented reference subset | External implementation and a validator binding distinct producer/checker actors and execution seams |
| VSTD-2 | Additive experimental project specification | Typed verification geometry, residuals, closure checks, schema, and tests | Geometry and declared reconstruction evidence inside the receipt | Implemented vertical slice | Independent implementation and broader geometry interoperability |
| Interoperability catalog and surface planning | Supported loading and analysis with experimental planning; not a receipt or numbered profile | Strict VSTD-2 geometry loader, stable modeled-hole analysis and command-line diagnostics, frozen component descriptors and registry, exact candidate matching, deterministic nonexecuting plans, structural cross-geometry conflict diagnostics, and execution-readiness preflight | Analysis binds the typed geometry digest; plans additionally bind registry version and digest; conflict witnesses bind explicit shared propositions and exact geometries; readiness binds native inputs, planned evidence mappings, prerequisites, caller-supplied authorization, and mandatory reassessment | Modeled diagnostics, plan-only candidate associations, declaration-bound structural conflicts, and preflight readiness only; no validation execution or new closure | Boolean satisfiability analysis over declared geometry constraints, authorized component execution, bound result evidence, post-execution reanalysis, and independent interoperability results |
| Experimental graph topology and composed untraversability | Non-normative experimental direct-submodule interfaces; not receipts or numbered profiles | Exact-graph-bound topology interpretation and finite observer-relative knowledge-hypergraph analysis | Topology contracts bind graph structure, equations, temporal relations, and resource bounds; untraversability contracts additionally bind observer, interface, rule, completeness, evidence, and traversal coordinates | Bounded diagnostic results only; no physical-causation inference, universal non-inferability proof, runtime mediation, confidentiality enforcement, authorization, or conformance | Open-world inference completeness, independently qualified mechanisms, runtime observation and enforcement, and adversarial external interoperability evidence |
| VSTD-3 | Implemented project specification | Typed accelerator model, strict validator, emulator, offline adapters, continuity, fleet, and claim evaluation | Conditional on source-specific signatures, nonces, reference values, topology, events, and trust roots; host inventory remains weak evidence | Implemented reference surface | Vendor firmware integration, production trust roots, and complete-mediation evidence outside the emulator boundary |
| VSTD-4 | Project specification with implemented reference paths | grounded decision certificate (GDC) parser/kernel, compatibility candidate depth, and evidence-bound establishment/recheck | Exact VSTD-1/2/3 and fourteen-rung propositions, content-addressed evidence bytes, mechanism implementation digests, trust roots, and bounds | Candidate path NOT_ESTABLISHED; evidence-bound path can establish conformance |
Independent implementation, external interoperability, and deployment-specific rung mechanisms/evidence |
| VSTD-5 | Project specification with implemented reference mechanism | Evidence-bound entry gate, seven separation dimensions, exact admitted-certificate binding, corroboration checks, duplicate refusal, disagreement preservation, receipt build/recheck | Witness coordinate, exact negative separation propositions, VSTD-4 commitment/certificate, checker, observations, mechanisms, trust roots, bounds, and embedded evidence | Mechanism can establish a bounded result; a positive observation with unresolved independence remains overall UNKNOWN; no repository claim of a real independent witness |
Real independent witnesses, second implementation, external attack, and operational interoperability |
| VSTD-Graph-1 | Project specification with implemented reference subset | Content-addressed artifacts, transformations, conflicts, policy queries, receipts, and recorded reachability | Binds recorded objects and edges; it does not establish real-world completeness or causality | Implemented reference subset | Independent implementation and external provenance-profile interoperability |
| VSTD-Graph-2 | Project specification with implemented reference paths | Compatibility candidate plus evidence-bound Bounded Collection Surface computation/recheck | Registered mechanisms rerun exact member, ancestor, and edge ratings bound to the Graph bytes, deduplicated members, collection, and claim | Candidate NOT_ESTABLISHED; evidence-bound profile 1–5 path can establish; profile zero cannot |
External rating mechanisms, independent implementation, and interoperability |
| VSTD-Graph-3 | Project specification with implemented reference paths | Compatibility candidate plus evidence-bound Accountable Provenance Closure computation/recheck | Same complete closure binding, including VSTD-3 rating propositions | Candidate NOT_ESTABLISHED; evidence-bound path can establish |
Production VSTD-3 rating evidence across a real collection |
| VSTD-Graph-4 | Project specification with implemented reference paths | Compatibility candidate plus evidence-bound Refutable Transformation Closure computation/recheck | Same complete closure binding; an edge mechanism must actually check its refutability closure | Candidate NOT_ESTABLISHED; evidence-bound path can establish |
External closure mechanisms and independent replay |
| VSTD-Graph-5 | Project specification with implemented reference paths | Compatibility candidate plus evidence-bound Corroborated Verification Network computation/recheck | Exact VSTD-5 object and transformation rating mechanisms across the complete closure | Candidate NOT_ESTABLISHED; evidence-bound path can establish |
Real independently corroborated collection, second implementation, and interoperability |
| Generic run | VSTD-1 generic-computation profile | Plan, execute, capture, inspect, strict shape/digest validation, declared-output rerun, and bounded cross-platform result comparison | Captures command, source state, outputs, environment, and manifest declarations; platform comparison requires complete declared coverage and matching non-platform bindings; generic validation is not native claim verification or VSTD-4 conformance | Implemented VSTD-1 profile plus an additive diagnostic comparator | Sandbox, generic external-evidence resolver, native-execution attestation, and actor/execution binder |
| Artifact freeze, seal, and thaw | Normative artifact-control mechanism; not a numbered VSTD or receipt profile | Exact regular-file byte preservation, dual-digest artifact identity, read-only guards, finite self-closing Ed25519 seals, external anchor checks, and copy-on-write thaw status | Binds artifact bytes, paths, media type, freeze manifest, carried key, signature, and optional expected artifact/key coordinates | Implemented mechanism version 1 | Durable external archive, privileged-write prevention, trusted time, encryption, semantic correctness, and realm/continuity verification |
| Experimental workflow | Non-normative experimental profile 0.1 | Strict validator, verdict-neutral GitHub event projector, allocation records, and command-line interface (CLI) | Preserves native platform results and explicit horizons with verification_effect = NONE |
No VSTD conformance claim | Independent consumer, additional platform adapter, and evidence for allocation optimality |
| Supply Chain Integrity, Transparency, and Trust (SCITT) interoperability | Experimental, non-normative application profile and crosswalk | Real local Concise Binary Object Representation (CBOR) plus CBOR Object Signing and Encryption (COSE) signatures/receipt, loss-declared adapter, and adjacent native-result composition | Binds the exact payload under emitted test keys and local policy; registration never establishes payload truth | VSTD-4 remains NOT_ESTABLISHED |
Public Transparency Service, external implementation/interoperability result, and Internet Engineering Task Force (IETF) review |
| zero-identity/zero-knowledge (ZIZK) artifact-first TRUST | Governing VSTD architecture in standard/LADDER.md section 1.1; not a separate numbered profile |
Hash-chained event serialization and offline replay, evidence-bound forward TRUST, typed ROT, challenge projection, reverse RUST, structural concentration, conflict resolution, explicit localization, and bounded diagnostic attribution | Exact Graph topology, proposition bindings, embedded evidence bytes, mechanisms, trust roots, bounds, and immutable history | Implemented reference mechanism; no universal support score or actor trust | Domain-specific transfer/localization mechanisms, independent cross-implementation replay, complete trichotomy derivation, and maturation of optional proof backends |
| RISC Zero proof-carrying reference mechanism | Bounded non-normative mechanism example under the governing ZIZK architecture | Pinned prover/verifier source plus a tracked real receipt, public envelope, self-test result, and network-offline command that requires the tracked guest build and recorded proof to share one image identifier | Authenticates one fixed hidden-witness predicate and expected image identifier; it does not establish the witness's external truth | Native proof verified; no VSTD receipt mapping | Independent build host, external audit, complete VSTD trichotomy predicate, and additional proof backends |
The authoritative implementation-to-specification map is docs/ARCHITECTURE.md. Normative meaning remains under standard/.
Why VSTD exists
Ordinary computational results often omit machine-readable answers to four questions:
- What exactly was claimed? Subject, predicate, parameters, scope, and limits.
- Which evidence supports it? Exact bytes, digests, mechanisms, provenance, and trust roots.
- Where does the verdict stop? Explicit coordinates, exclusions, and resource bounds.
- How can it change? Reproduction, counterexample, challenge, invalidation, and degradation rules.
VSTD packages that review boundary in receipts and provenance hypergraphs. The core design rule is:
No assurance is gained from storage location, field name, repetition, graph multiplicity, actor reputation, or propagation. Every increase must identify the verification mechanism that earned it.
Architecture
The five profile numbers are cumulative verification questions, not software versions, interchangeable layers, or assurance scores. The object axis evaluates one claim; the Graph axis evaluates a bounded collection and its recorded transformations.
A typical object traversal is:
VSTD-1 claim record
→ VSTD-2 bounded verification surface
→ VSTD-3 execution-substrate evidence
→ VSTD-4 portable refutation boundary
→ VSTD-5 evidence-bound witness corroboration
A later-profile result does not supply, imply, upgrade, or repair a prerequisite
coordinate. Object profile depth N requires separate passing evidence for every required
coordinate from 1 through N.
VSTD-Graph is orthogonal. It records artifacts, transformations, conflicts, lifecycle
changes, and deduplicated reachability across a bounded collection. The compatibility
graph_level calculation remains a NOT_ESTABLISHED candidate. Evidence-bound Graph
establishment must rerun every required rating mechanism over evidence bound to the exact
Graph, member set, collection, and claim. Profile zero never becomes established conformance.
Artifact support and diagnostic traversal
The formal names TRUST, ROT, and RUST are semantic terms, not acronyms, actor ratings, scalar scores, numbered-profile verdicts, or references to the Rust programming language:
- TRUST is mechanism-earned artifact support moving forward through one exactly checked transformation.
- ROT is typed, time-indexed degradation of current admissibility without rewriting historical evidence.
- RUST is the inverse-TRUST diagnostic mechanic moving backward from a descendant deviation toward recorded contributing ancestors.
RUST identifies where reassessment should look; it does not by itself establish falsehood,
causal localization, responsibility, BLAME, or GUILT. A separately registered localization
mechanism must earn BLAME, and GUILT additionally requires an exact violated obligation.
Neither result evaluates actor character. The replayable VSTD-GRAPH-ASSURANCE-1 event log
binds its historical Graph, evidence, mechanisms, event chain, and derived current view.
Zero identity and zero unevidenced knowledge
The zero-identity/zero-knowledge (ZIZK) artifact-first orientation is Governing VSTD
architecture, not an optional research profile. Zero identity means zero identity-derived verdict weight,
not anonymity. Architectural zero knowledge means zero unevidenced knowledge is presumed:
unsupported propositions remain UNKNOWN.
When a witness must remain confidential, cryptographic zero knowledge can enclose that boundary only through a named proof system that binds the exact program, predicate, public commitments, output, parameters, and verifier without attaching TRUST to the prover's identity. A digest, encrypted file, or omitted input is not a zero-knowledge proof. The RISC Zero reference mechanism is one bounded optional backend under this governing architecture.
For exact ownership, dispatch paths, schemas, compatibility surfaces, and unimplemented horizons, use the architecture map and normative Ladder.
Install and use
The distribution name is verifier-standard. The published base package has no
required third-party runtime dependencies.
python -m pip install "verifier-standard==1.3.0" # exact published release
python -m pip install . # current source checkout
python -m pip install ".[yaml]" # YAML Ain't Markup Language (YAML) manifests
python -m pip install ".[jsonschema]" # JSON Schema validation
python -m pip install ".[seal]" # optional Ed25519 artifact sealing
python -m pip install ".[scitt]" # optional SCITT/COSE experiment
vstd is the canonical cross-platform CLI name. verifier remains a compatibility
alias but can resolve to Windows Driver Verifier. verifiable is a permanent legacy
alias because historical receipts may bind it in falsification instructions.
An unrelated PyPI distribution named verifier exports the same top-level Python
import. Do not co-install it with verifier-standard.
Freeze, seal, verify, and thaw an artifact
Freezing preserves exact regular-file bytes and portable paths. Sealing is a separate, readable authentication and closure action; it is not encryption. Generate an Ed25519 key with a suitable local key tool, then run:
openssl genpkey -algorithm Ed25519 -out ed25519-private.pem
vstd artifact freeze PATH ARTIFACT.vstd --media-type application/octet-stream
vstd artifact verify ARTIFACT.vstd --freeze-only
vstd artifact seal ARTIFACT.vstd --private-key ed25519-private.pem
vstd artifact verify ARTIFACT.vstd --expected-artifact-id EXPECTED_ID
vstd artifact thaw ARTIFACT.vstd MUTABLE_COPY
vstd artifact status MUTABLE_COPY --parent-bundle ARTIFACT.vstd
The finite seal signs the complete envelope with its signature and identifier fields explicitly empty, then derives the seal identifier over the signature-bearing envelope with only its identifier empty. Verification recomputes both projections, avoiding an infinite seal-of-seal regress. The carried public key establishes internal consistency; an expected artifact identifier, expected key identifier, or separately verified manifest/log coordinate is still required to detect whole-bundle substitution.
A freeze or seal establishes bounded integrity and closure only—not correctness,
freshness, ownership, authorization, trusted time, external preservation, or actor trust.
Thaw is copy-on-write: it creates a mutable descendant and leaves the sealed parent
unchanged. Later THAWED_CLEAN or THAWED_DIRTY status requires that actual parent bundle,
clean seal verification, and exact agreement with every sidecar parent coordinate. Without
the parent, sidecar agreement remains NOT_ESTABLISHED. The sidecar's unkeyed hash does not
prove that the historical copy occurred. A supplied parent establishes only internal
consistency unless an expected artifact/key identifier or separately verified external log
also supplies continuity. See the normative
artifact-control mechanism and the architectural
realm/time-capsule model.
Capture a generic computation
A manifest contains an executable command. vstd run does not sandbox it. Inspect the
plan first and execute only trusted manifests inside an appropriate operating-system or
container boundary.
vstd plan examples/generic_run/manifest.json --json
vstd run examples/generic_run/manifest.json --output /tmp/vstd-receipt
vstd validate /tmp/vstd-receipt
vstd inspect /tmp/vstd-receipt
vstd reproduce /tmp/vstd-receipt --rerun
Generic validate checks the strict profile shape and stable-payload digest. It does
not rehash external artifacts, resolve evidence references, rerun the command, or verify
the recorded declaration as a native domain claim. reproduce --rerun separately
executes the recorded command and compares declared output paths, digests, and execution
outcome.
When a manifest's open refutation surface declares compatible platforms and explicit result surfaces, compare one receipt from each declared operating system:
vstd compare-platforms receipts/Linux receipts/Windows receipts/Darwin --json
Python reports macOS as Darwin. Newly captured platform-comparable receipts bind their
Python implementation and machine identity into the canonical digest. Historical receipts
without that additive binding remain valid records but cannot establish comparison. The
comparator returns PASS only when every declared platform appears exactly once, canonical
receipt integrity passes, non-platform claim, source, command, Python, machine-family, and
mechanism bindings agree, and every declared result projection agrees. Comparable result
disagreement is CONFLICTED; missing or non-comparable evidence is NOT_ESTABLISHED;
malformed or internally contradictory evidence is INVALID. This is a comparison of supplied recorded results—not proof of
universal portability, semantic correctness, native execution, or independent actors.
Matching outputs alone do not establish environment equivalence or truth outside that
scope.
Use the Python application programming interface (API)
from pathlib import Path
from verifier.core.run import describe_run_plan, load_manifest
manifest_path = Path("examples/generic_run/manifest.json")
manifest = load_manifest(manifest_path)
plan = describe_run_plan(manifest, manifest_path.parent)
print(plan["command"], plan["executes_without_sandbox"])
The installed wheel contains byte-identical copies of every normative specification, so a verifier descriptor can retain its exact specification binding outside a source checkout. See the generated CLI and API reference.
Receipts, Graphs, and grounded certificates
- VSTD-1 receipts carry claim coordinates, evidence, checker results, trust boundaries, and reproducibility information.
- VSTD-Graph-1 records content-addressed artifacts, many-to-many transformations, conflicts, and bounded downstream reachability. Its frozen reader preserves separate historical artifact/transformation namespaces; new construction plus evidence-bound establishment and assurance propagation require global cross-kind disjointness.
VSTD4-GDC-1binds a decision certificate to a formula, grounding, claim coordinate, verifier descriptor, roots, and resource bounds.
The grounded-certificate checker rejects over-budget headers before proof work, rejects
cost-tier inflation, validates grounding before the decision block, and preserves
UNKNOWN when a bound is exhausted. Kernel acceptance establishes only the bounded
certificate result; it is not VSTD-4 conformance, evidence authenticity, external
validation, or proof of the unobserved world.
Interoperability
VSTD composes beside native systems rather than replacing them:
native object ──native verifier──> native result
└──── exact bytes + identity ──> loss-declared adapter
└──> VSTD claim boundary
The interoperability path connects strict loading and stable modeled-hole detection to an experimental domain-neutral component catalog and planner:
strict VSTD-2 JSON geometry
-> typed valid geometry
-> modeled-hole analysis
-> exact catalog candidates
-> nonexecuting validation plan
-> nonexecuting execution-readiness preflight
Analyze the checked-in non-critical formatter geometry without executing a checker:
vstd surface analyze examples/verification_geometry_residual/geometry.json --json
vstd surface analyze examples/verification_geometry_residual/geometry.json --plan --json
The report is deterministic and bounded to the supplied geometry. A reported modeled closure state does not establish that the model includes every real-world obligation.
Run its harmless sorted-grocery-list example:
python examples/interoperability_planning/demo.py
The example reports two exact candidates and three unmatched self-closure holes while
keeping plan_only = true, execution_performed = false, and the checker invocation
count at zero. Here, validation names the future process of attempting to discharge
verification-surface holes with bound execution evidence and then reassessing the
geometry. This example only detects and plans: it cannot establish checker availability
at execution time, a native result, ordinary or self-closure, safety, authority to act,
critical-domain readiness, or VSTD conformance. Its registry version and digest are bound
into the plan. --plan uses the first-party catalog's 19 exact entry points across 12
catalog grouping labels, but does not select or invoke them. Those labels
organize first-party code; they are not 12 independent or native implementations and do
not represent 12 demonstrated interoperability results. The experimental readiness
preflight can reject missing or substituted native-input, evidence-output, prerequisite,
authorization, and reassessment declarations, but it executes nothing and grants no
authorization. Automatic execution and post-execution geometry reassessment remain
unsupported. See the
example boundary and output.
The experimental multi-geometry diagnostic compares only caller-declared shared
propositions bound to exact geometry digests. It preserves explicit VERIFIED versus
FALSIFIED disagreement and declared dependency cycles as reproducible structural
conflict witnesses; absent identity or an indeterminate judgment remains
NOT_ESTABLISHED, and malformed input is INVALID. It does not perform Boolean
satisfiability analysis, infer that similarly named claims are equivalent, or establish
physical truth, safety, conformance, or authority.
The separate experimental graph-topology checker binds explicit simultaneous Boolean equations and clock-relative backward-time relations to existing graph ports. It reports structural features and bounded consistency separately, retains paradox candidates without inferring their truth, and does not bypass cyclic-assurance admission. The non-critical specimen exports matching inspection documents.
The experimental composed-untraversability interface evaluates whether a declared protected fact is reachable by one finite observer through the complete set of interfaces and inference rules supplied in an exact VSTD Graph contract. A higher-order interface can expose enough structure to control a computation while still forbidding a declared path to lower-order protected knowledge, but that boundary is assessed over the composed Graph rather than inferred from any interface in isolation. A bounded result does not establish open-world non-inferability, continuous awareness tracking, runtime enforcement, authorization, actor attribution, or universal confidentiality.
Operating-system evidence is tracked per component in the platform interoperability matrix; support for one portable Python path does not transfer to a native prover, verifier, solver, or adapter. The linked machine-readable contract records configured test intent, not a hosted pass; exact-run artifacts must bind its digest and the current catalog digest before a platform claim can be evaluated.
Two executable non-critical relationship geometries are documented under interoperability compositions: a bounded proof-producing Boolean solver whose exact refutation bytes feed a separate proof checker, and the existing adjacent VSTD plus Supply Chain Integrity, Transparency, and Trust (SCITT) composition. Both retain native results and negative paths; neither establishes actor independence, external interoperability, or safety.
The experimental SCITT profile uses
real Concise Binary Object Representation (CBOR) and COSE
signatures and a local inclusion receipt. It demonstrates exact payload carriage and
adjacent verification under test keys. The example rejects drift from its three pinned
runtime distributions and records the installed scitt-cose version and exact
statement/receipt verification entry points, while explicitly leaving package
authentication, producer provenance, and independent implementation unestablished.
SCITT registration proves neither payload
correctness nor VSTD conformance. See the crosswalk,
semantic boundary, and
runnable example.
The ecosystem map separately covers adjacent provenance, software-supply-chain, signing, and transparency systems without implying endorsement or adoption.
Specifications and navigation
Read authoritative material in this order:
- Verification complex, terminology, and profile composition
- Object and Graph numbered-profile documents
- Serialized receipt identifiers
- Published schemas
- Implementation ownership
- Claims and limits
Additional entry points:
| Goal | Document |
|---|---|
| Install and exercise the first-run path | Quickstart |
| Understand terminology and precedents | Concepts and precedents |
| Inspect abbreviated terms | Acronyms |
| Review experimental profiles | Experiment index |
| Understand human claim traversal | Human operating guide |
| Inspect project direction and non-goals | Roadmap |
Reproducibility and releases
A release contains a canonical artifact set: ZIP archive format (ZIP), wheel, source
distribution, and external manifest bound to the exact public Git commit and file
members. At the version 1.3.0 source coordinate, the continuous integration (CI)
workflow builds the artifact set on Linux, Windows, and macOS and rejects cross-platform
byte differences. It also captures and reruns the portable generic example on three
GitHub-hosted operating-system virtual machines, then requires a bounded PASS over the
three receipts. GitHub
artifact attestations bind uploaded bytes to the workflow; they do not establish source
correctness, tag identity, or adoption.
gh attestation verify PATH_TO_DOWNLOADED_ASSET --repo TimeLordRaps/verifier
Use RELEASING.md to verify the manifest, tag, artifact attestations, package name, and historical compatibility. Version 1.3.0 is the current release, published on 2026-09-08; use its versioned release page for published citation and artifact coordinates.
Claims, security, and contribution
Review claims and limits before publishing a VSTD result. The reference implementation may improve auditability, reproducibility, incident analysis, and challenge routing over observable records. It cannot prove general AI safety, reveal hidden model state, establish physical-world completeness, or compensate for missing instrumentation.
vstd run executes manifest commands without sandboxing. See the
security policy and use GitHub private vulnerability reporting for
sensitive findings.
Contributors should start with CONTRIBUTING.md, which identifies normative, implementation, schema, adapter, test, compatibility, and release pathways. Use the issue forms for a specification ambiguity, counterexample, or implementation/interoperability report.
Project authority and centralization are documented in GOVERNANCE.md. Automated-contributor rules live in AGENTS.md; the human operating model in HUMANS.md; and live repository contradictions only in TIME.md.
Citation and license
Cite a published release from its versioned GitHub release metadata or
CITATION.cff at that tagged coordinate. Do not cite unreleased candidate metadata as
a published release.
Licensed under the Apache License 2.0; see NOTICE. VSTD is not affiliated with or endorsed by the Apache Software Foundation.
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