{
  "schema_version": "1.2",
  "url": "https://trustbutveri.fyi/explorer/?mechanisms=M-0013,M-0007,M-0019&ready=R1",
  "data_generated": "2026-10-08",
  "definitions": {
    "methodology": "https://trustbutveri.fyi/about/methodology/",
    "readiness": "https://trustbutveri.fyi/about/readiness/",
    "filters": [
      {
        "id": "prover",
        "label": "Prover",
        "question": "How far can the party being checked be trusted?",
        "options": [
          {
            "value": "cooperative",
            "label": "Cooperative"
          },
          {
            "value": "semi-trusted",
            "label": "Semi-trusted"
          },
          {
            "value": "adversarial",
            "label": "Adversarial"
          }
        ],
        "rule": "Keeps mechanisms whose threat model holds against at least this prover. Adversarial is the strongest assumption.",
        "about": "The prover is the party being checked. Semi-trusted designs rely on part of its stack: usually the chip vendor's hardware root of trust, its firmware or counters, or its supply-chain records. Adversarial designs aim to hold even if it cheats wherever the checks allow, within their stated assumptions."
      },
      {
        "id": "onsite",
        "label": "Verifier devices on site",
        "question": "May the verifier install its own hardware at the prover's sites?",
        "options": [
          {
            "value": "no",
            "label": "Not allowed"
          }
        ],
        "rule": "\"Not allowed\" removes mechanisms that need a retrofit device, such as a network tap or a sealed sensor.",
        "about": "Some mechanisms need a device the verifier owns or trusts at the prover's facility, such as a network tap, a bandwidth limiter or a sealed sensor. Choose Not allowed when the setting rules that out. Inspectors are not covered."
      },
      {
        "id": "coop",
        "label": "Prover cooperation",
        "question": "How much must the prover take part?",
        "options": [
          {
            "value": "partial",
            "label": "Partial at most"
          },
          {
            "value": "none",
            "label": "Not required"
          }
        ],
        "rule": "\"Partial at most\" removes mechanisms that need the prover's active participation. \"Not required\" keeps only those that work without it.",
        "about": "Required: the prover takes part, for example by logging requests, producing proofs or opening records. Partial: some access, such as installing a device. Not required: works from outside, such as satellite imagery."
      },
      {
        "id": "chips",
        "label": "Chips",
        "question": "May the proposal depend on new chip designs?",
        "options": [
          {
            "value": "existing",
            "label": "Existing chips only"
          }
        ],
        "rule": "\"Existing chips only\" removes mechanisms that need changes to future chip designs.",
        "about": "New chip features take years to reach a deployed fleet and cover only chips made after they ship. Mechanisms that use shipping features, such as trusted execution environments or performance counters, stay."
      },
      {
        "id": "ready",
        "label": "Minimum readiness",
        "question": "How mature must each mechanism be?",
        "options": [
          {
            "value": "R1",
            "label": "R1 Proposed"
          },
          {
            "value": "R2",
            "label": "R2 Demonstrated"
          },
          {
            "value": "R3",
            "label": "R3 In production"
          },
          {
            "value": "R4",
            "label": "R4 Deployment-ready"
          }
        ],
        "rule": "Keeps mechanisms whose readiness level is at least this one.",
        "about": "A level describes the public evidence for a mechanism's stated use, not its cost or feasibility. R3 can still have open critical flaws."
      },
      {
        "id": "tested",
        "label": "Attack testing",
        "question": "How hard has each mechanism been attacked in public?",
        "options": [
          {
            "value": "analysis",
            "label": "Published analysis"
          },
          {
            "value": "red-teamed",
            "label": "Red-teamed"
          },
          {
            "value": "independent-red-team",
            "label": "Independent red-team"
          }
        ],
        "rule": "Keeps mechanisms whose strongest published attack testing is at least this.",
        "about": "The strongest published attempt to break the mechanism for its verification use: a security analysis, red-teaming by its developers or collaborators, or a red team independent of them."
      },
      {
        "id": "hide",
        "label": "Keep hidden from the verifier",
        "question": "What must the verifier never see?",
        "options": [
          {
            "value": "weights",
            "label": "Model weights"
          },
          {
            "value": "io",
            "label": "Inputs and outputs"
          },
          {
            "value": "training",
            "label": "Training data"
          }
        ],
        "rule": "Removes mechanisms that show the asset to the verifier. Conditional or unspecified exposure stays with a note and needs checking against the privacy requirement.",
        "about": "Model weights: the checked model's parameters. Inputs and outputs: the requests a deployed model serves and its responses. Training data: what a model was trained on. Each mechanism's exposure is the editors' reading of its record: shown, depends on the design (kept, with a note), hidden, not involved, or unspecified for a selected implementation. Code and configuration are not covered yet."
      }
    ],
    "exposure": "For model weights, inputs and outputs, and training data. This is the editors' reading of each mechanism's record (its threat model, how it works and its limitations), not a field of the record. Shown: the verifier sees it. Depends: on the design or variant, or the verifier sees only samples. Hidden: the verifier sees only commitments, hashes, proofs or results. Not involved: the record does not handle it. Unspecified: the selected implementation has no asset-specific assessment here.",
    "claim_status": {
      "addressed": "A mechanism in the proposal is aimed at this claim and is not excluded by the filters.",
      "partly-addressed": "Only supporting mechanisms, or mechanisms aimed at it that the filters exclude.",
      "unaddressed": "No mechanism in the proposal addresses this claim."
    },
    "finding_scope": "Evidence scope describes where a finding was demonstrated; it does not establish applicability to every implementation in the mechanism family.",
    "claim_finding_scope": "open_critical_findings names active findings on the assessed records; open_critical_context names conditional family findings whose implementation applicability is unassessed.",
    "legacy_status": "The status field retains covered/partial/none for compatibility. It names claim links, never successful verification. Use claim_status and status_label for presentation."
  },
  "filters": {
    "prover": "",
    "onsite": "",
    "coop": "",
    "chips": "",
    "ready": "R1",
    "tested": "",
    "hide": []
  },
  "mechanisms_passing_filters": 25,
  "claims": [],
  "mechanisms": [
    {
      "id": "M-0013",
      "title": "Network taps and certifiers",
      "url": "https://trustbutveri.fyi/mechanisms/network-taps-and-certifiers/",
      "assessment_record": {
        "id": "M-0013",
        "title": "Network taps and certifiers",
        "url": "https://trustbutveri.fyi/mechanisms/network-taps-and-certifiers/"
      },
      "selected_implementation": null,
      "readiness": {
        "level": "R1",
        "scope": "committing a complete record of cluster traffic, so declared inference can be checked",
        "confidence": "medium",
        "evidence": [
          "S-1300",
          "S-0031",
          "S-0018",
          "S-0067",
          "S-1312",
          "S-1007",
          "S-1319",
          "S-1320"
        ]
      },
      "assessed_properties": {
        "threat_model": "adversarial",
        "hardware_requirement": "retrofit-device",
        "prover_cooperation": "required",
        "adversarial_evaluation": "analysis"
      },
      "claims": [],
      "exposure": {
        "weights": "partial",
        "io": "partial",
        "training": "partial",
        "note": "Only hashes leave the site; records picked for a challenge are opened for replay at a verification facility."
      },
      "family_finding_context": [],
      "filter_issues": []
    },
    {
      "id": "M-0007",
      "title": "Proofs of useful work for capacity accounting",
      "url": "https://trustbutveri.fyi/mechanisms/proofs-of-useful-work/",
      "assessment_record": {
        "id": "M-0007",
        "title": "Proofs of useful work for capacity accounting",
        "url": "https://trustbutveri.fyi/mechanisms/proofs-of-useful-work/"
      },
      "selected_implementation": null,
      "readiness": {
        "level": "R1",
        "scope": "bounding the spare capacity of declared hardware that could run training",
        "confidence": "low",
        "evidence": [
          "S-1102",
          "S-0005",
          "S-1609",
          "S-1105",
          "S-1107"
        ]
      },
      "assessed_properties": {
        "threat_model": "adversarial",
        "hardware_requirement": "none",
        "prover_cooperation": "required",
        "adversarial_evaluation": "analysis"
      },
      "claims": [],
      "exposure": {
        "weights": "partial",
        "io": "partial",
        "training": "none",
        "note": "Checking a sampled tile of a matrix multiplication reveals that tile, which may hold model or input data; the authors suggest a zero-knowledge proof when the matrices must stay private."
      },
      "family_finding_context": [],
      "filter_issues": []
    },
    {
      "id": "M-0019",
      "title": "Chip registries and manufacturing records",
      "url": "https://trustbutveri.fyi/mechanisms/chip-registries-and-manufacturing-records/",
      "assessment_record": {
        "id": "M-0019",
        "title": "Chip registries and manufacturing records",
        "url": "https://trustbutveri.fyi/mechanisms/chip-registries-and-manufacturing-records/"
      },
      "selected_implementation": null,
      "readiness": {
        "level": "R1",
        "scope": "a checkable record of which chips were made and who declared owning them",
        "confidence": "medium",
        "evidence": [
          "S-0002",
          "S-1402",
          "S-1408",
          "S-0007"
        ]
      },
      "assessed_properties": {
        "threat_model": "semi-trusted",
        "hardware_requirement": "existing-features",
        "prover_cooperation": "required",
        "adversarial_evaluation": "analysis"
      },
      "claims": [],
      "exposure": {
        "weights": "none",
        "io": "none",
        "training": "none",
        "note": "Records chip identities and owners; it does not handle model data."
      },
      "family_finding_context": [],
      "filter_issues": []
    }
  ],
  "strengths": {
    "covered": [],
    "production": [],
    "adversarial": [
      "M-0013",
      "M-0007"
    ],
    "noNewHardware": [
      "M-0007",
      "M-0019"
    ],
    "mitigated": [
      {
        "mech": "M-0013",
        "n": 6,
        "title": "Verifier dictionary attacks on hashes",
        "kind": "theoretical-argument",
        "severity": "minor",
        "status": "mitigated",
        "evidence_scope": null,
        "scope_note": null,
        "related_finding": null,
        "description": "Hashes of very short outputs could be brute-forced by the verifier. The paper recommends hashing at least 5 tokens together, or at least 10 if the attacker filters for likely tokens.",
        "response": null,
        "sources": [
          "S-1300"
        ]
      }
    ],
    "notCounted": []
  },
  "properties": {
    "covered": [],
    "production": [],
    "adversarial": [
      "M-0013",
      "M-0007"
    ],
    "noNewHardware": [
      "M-0007",
      "M-0019"
    ],
    "mitigated": [
      {
        "mech": "M-0013",
        "n": 6,
        "title": "Verifier dictionary attacks on hashes",
        "kind": "theoretical-argument",
        "severity": "minor",
        "status": "mitigated",
        "evidence_scope": null,
        "scope_note": null,
        "related_finding": null,
        "description": "Hashes of very short outputs could be brute-forced by the verifier. The paper recommends hashing at least 5 tokens together, or at least 10 if the attacker filters for likely tokens.",
        "response": null,
        "sources": [
          "S-1300"
        ]
      }
    ],
    "notCounted": []
  },
  "attack_testing": [
    {
      "id": "M-0013",
      "record": "M-0013",
      "evaluation": "analysis",
      "in_setting": true
    },
    {
      "id": "M-0007",
      "record": "M-0007",
      "evaluation": "analysis",
      "in_setting": true
    },
    {
      "id": "M-0019",
      "record": "M-0019",
      "evaluation": "analysis",
      "in_setting": true
    }
  ],
  "selected_implementations": {},
  "weaknesses": {
    "gaps": [],
    "excluded": [],
    "unlinked": [],
    "critical": [],
    "significant": [
      {
        "mech": "M-0013",
        "n": 1,
        "title": "Output nondeterminism leaves covert capacity",
        "kind": "theoretical-argument",
        "severity": "significant",
        "status": "open",
        "evidence_scope": null,
        "scope_note": null,
        "related_finding": null,
        "description": "Hashing cannot remove information hidden in the outputs themselves. The Secure Gateway Device paper estimates that about 0.1 bit per token remains even with seed-synchronized replay checks. For a 200k-GPU inference cluster at full load (2,000 tokens per GPU per second), that is about 40 Mbit/s of covert egress, enough to move a 1 TB model in under three days. The paper names this the core remaining challenge and points to deterministic replay or active scrubbing of hardware-induced entropy. An independent study found that an adversary who chooses the prompts roughly doubles the bits leaked per token under Gumbel-based inference verification; see Bounding unexplained information in outputs.",
        "response": null,
        "sources": [
          "S-1300",
          "S-1507"
        ],
        "helps": [
          {
            "by": "M-0002",
            "how": "Deterministic replay is one of the two remedies the flaw's source names."
          },
          {
            "by": "M-0024",
            "how": "Bounds the hidden information outputs can carry by measuring what the declared computation fails to predict."
          }
        ]
      },
      {
        "mech": "M-0013",
        "n": 2,
        "title": "Some links cannot be passively tapped",
        "kind": "open-question",
        "severity": "significant",
        "status": "open",
        "evidence_scope": null,
        "scope_note": null,
        "related_finding": null,
        "description": "Cankaya notes that copper-connected scale-up domains (for example NVL72 racks and TPU v7 cubes) are much harder to tap than fibre, and that optical budgets make passive taps impractical on 400GBASE-SR8 multimode links. Amodo found no taps advertised for 53 GBaud links as of May 2026.",
        "response": null,
        "sources": [
          "S-0031",
          "S-1310"
        ]
      },
      {
        "mech": "M-0013",
        "n": 3,
        "title": "Encrypted fabrics hide plaintext from both parties",
        "kind": "open-question",
        "severity": "significant",
        "status": "open",
        "evidence_scope": null,
        "scope_note": null,
        "related_finding": null,
        "description": "Cankaya notes that with TEE-protected sessions whose keys are ephemeral and managed inside the TEE, neither the operator nor the manufacturer can recover session keys after the session, so tapped traffic could not be opened for recomputation. For other encrypted fabrics, the operator can retain keys.",
        "response": null,
        "sources": [
          "S-0031"
        ]
      },
      {
        "mech": "M-0013",
        "n": 4,
        "title": "Residual side channels in simple passive setups",
        "kind": "theoretical-argument",
        "severity": "significant",
        "status": "open",
        "evidence_scope": null,
        "scope_note": null,
        "related_finding": null,
        "description": "Amodo's analysis of its own tapped prototype lists unvalidated header fields, timing of permitted traffic and variation in response formatting as residual channels, and concludes that the passive tap must be replaced by an active one.",
        "response": null,
        "sources": [
          "S-1312"
        ]
      },
      {
        "mech": "M-0013",
        "n": 5,
        "title": "Completeness rests on physical monitoring left out of scope",
        "kind": "open-question",
        "severity": "significant",
        "status": "open",
        "evidence_scope": null,
        "scope_note": null,
        "related_finding": null,
        "description": "The Secure Gateway Device paper assumes the facility is physically monitored, and states that the whole architecture depends on the device being the only communication channel. It names radio emanation, power-line signalling and thermal channels as covert channels beyond that scope.",
        "response": null,
        "sources": [
          "S-1300"
        ],
        "helps": [
          {
            "by": "M-0022",
            "how": "Addresses the radio, power-line and thermal channels that network-level designs leave out."
          }
        ]
      },
      {
        "mech": "M-0007",
        "n": 1,
        "title": "Proves that work was done, not that no capacity remains",
        "kind": "theoretical-argument",
        "severity": "significant",
        "status": "open",
        "evidence_scope": null,
        "scope_note": null,
        "related_finding": null,
        "description": "Proof-of-work accounting bounds unmonitored compute only relative to an estimate of what the actor has. Attestable states that the verifier \"needs a credible estimate of the compute available\" to the actor, and that a proof \"cannot discover a datacenter that was never declared\".",
        "response": null,
        "sources": [
          "S-1102"
        ],
        "helps": [
          {
            "by": "M-0019",
            "how": "A registry of chips is one basis for the estimate of available compute that the flaw's source says the verifier needs."
          },
          {
            "by": "M-0020",
            "how": "Looks for data centres that were never declared, which a proof cannot discover."
          }
        ]
      },
      {
        "mech": "M-0007",
        "n": 2,
        "title": "Security rests on new hardness assumptions",
        "kind": "open-question",
        "severity": "significant",
        "status": "open",
        "evidence_scope": null,
        "scope_note": null,
        "related_finding": null,
        "description": "Komargodski and Weinstein base security on hardness assumptions about batches of low-rank random linear equations, and list PoUW \"from more standard or well-studied assumptions\" as an open problem. Pearl's floating-point variant introduces a further \"quantized-subspace hardness\" assumption.",
        "response": null,
        "sources": [
          "S-1609",
          "S-1105"
        ]
      },
      {
        "mech": "M-0007",
        "n": 3,
        "title": "Known shortcuts let a miner claim somewhat more work than it did",
        "kind": "theoretical-argument",
        "severity": "significant",
        "status": "open",
        "evidence_scope": null,
        "scope_note": null,
        "related_finding": null,
        "description": "Pearl's specification lists known mining speedups: crafted inputs, precision shortcuts, seed grinding, work reuse, and faster kernels or hardware. A policy check caps the summands a miner may skip at one-sixteenth of those in a tile. For capacity bounding, any gap between work proven and work possible leaves spare capacity.",
        "response": null,
        "sources": [
          "S-1105"
        ]
      },
      {
        "mech": "M-0019",
        "n": 1,
        "title": "Records cover only chips that were recorded",
        "kind": "theoretical-argument",
        "severity": "significant",
        "status": "open",
        "evidence_scope": null,
        "scope_note": null,
        "related_finding": null,
        "description": "A registry or commitment accounts only for chips entered into it. Cankaya asks how a verifier would know it had found all chips, or how much \"dark compute\" remains, and notes that a fraudulent original record would mean unregistered chips had been made in advance. Halstead and Larsen propose reconstructing earlier production by auditing upstream suppliers.",
        "response": null,
        "sources": [
          "S-1408",
          "S-1410"
        ],
        "helps": [
          {
            "by": "M-0020",
            "how": "Looks for large data centres that were never declared, which a registry cannot show."
          }
        ]
      },
      {
        "mech": "M-0019",
        "n": 2,
        "title": "Documents and serial numbers can be forged",
        "kind": "theoretical-argument",
        "severity": "significant",
        "status": "open",
        "evidence_scope": null,
        "scope_note": null,
        "related_finding": null,
        "description": "Avellar and Grunewald note that export documents can be forged, that companies can hide information behind obscure corporate structures, and that it may be possible to forge serial numbers on chips and racks. They recommend cryptographic attestation of a powered-on chip as an extra check.",
        "response": null,
        "sources": [
          "S-1402"
        ]
      },
      {
        "mech": "M-0019",
        "n": 3,
        "title": "Insiders could alter records before they are fixed",
        "kind": "theoretical-argument",
        "severity": "significant",
        "status": "open",
        "evidence_scope": null,
        "scope_note": null,
        "related_finding": null,
        "description": "Cankaya argues that insiders who can photograph process secrets could also tamper with production records. A commitment makes changes after publication detectable, but it cannot show that the records were accurate when committed.",
        "response": null,
        "sources": [
          "S-1408"
        ]
      }
    ],
    "criticalMechanisms": [],
    "significantMechanisms": [
      "M-0013",
      "M-0007",
      "M-0019"
    ],
    "familyContext": [],
    "minor": 0,
    "minorFindings": [],
    "minorBy": [],
    "notDemonstrated": [
      "M-0013",
      "M-0007",
      "M-0019"
    ],
    "newChip": []
  },
  "findings": [
    {
      "mech": "M-0013",
      "record": "M-0013",
      "n": 1,
      "title": "Output nondeterminism leaves covert capacity",
      "kind": "theoretical-argument",
      "severity": "significant",
      "status": "open",
      "evidence_scope": null,
      "scope_note": null,
      "related_finding": null,
      "description": "Hashing cannot remove information hidden in the outputs themselves. The Secure Gateway Device paper estimates that about 0.1 bit per token remains even with seed-synchronized replay checks. For a 200k-GPU inference cluster at full load (2,000 tokens per GPU per second), that is about 40 Mbit/s of covert egress, enough to move a 1 TB model in under three days. The paper names this the core remaining challenge and points to deterministic replay or active scrubbing of hardware-induced entropy. An independent study found that an adversary who chooses the prompts roughly doubles the bits leaked per token under Gumbel-based inference verification; see Bounding unexplained information in outputs.",
      "response": null,
      "sources": [
        "S-1300",
        "S-1507"
      ],
      "helps": [
        {
          "by": "M-0002",
          "how": "Deterministic replay is one of the two remedies the flaw's source names."
        },
        {
          "by": "M-0024",
          "how": "Bounds the hidden information outputs can carry by measuring what the declared computation fails to predict."
        }
      ]
    },
    {
      "mech": "M-0013",
      "record": "M-0013",
      "n": 2,
      "title": "Some links cannot be passively tapped",
      "kind": "open-question",
      "severity": "significant",
      "status": "open",
      "evidence_scope": null,
      "scope_note": null,
      "related_finding": null,
      "description": "Cankaya notes that copper-connected scale-up domains (for example NVL72 racks and TPU v7 cubes) are much harder to tap than fibre, and that optical budgets make passive taps impractical on 400GBASE-SR8 multimode links. Amodo found no taps advertised for 53 GBaud links as of May 2026.",
      "response": null,
      "sources": [
        "S-0031",
        "S-1310"
      ]
    },
    {
      "mech": "M-0013",
      "record": "M-0013",
      "n": 3,
      "title": "Encrypted fabrics hide plaintext from both parties",
      "kind": "open-question",
      "severity": "significant",
      "status": "open",
      "evidence_scope": null,
      "scope_note": null,
      "related_finding": null,
      "description": "Cankaya notes that with TEE-protected sessions whose keys are ephemeral and managed inside the TEE, neither the operator nor the manufacturer can recover session keys after the session, so tapped traffic could not be opened for recomputation. For other encrypted fabrics, the operator can retain keys.",
      "response": null,
      "sources": [
        "S-0031"
      ]
    },
    {
      "mech": "M-0013",
      "record": "M-0013",
      "n": 4,
      "title": "Residual side channels in simple passive setups",
      "kind": "theoretical-argument",
      "severity": "significant",
      "status": "open",
      "evidence_scope": null,
      "scope_note": null,
      "related_finding": null,
      "description": "Amodo's analysis of its own tapped prototype lists unvalidated header fields, timing of permitted traffic and variation in response formatting as residual channels, and concludes that the passive tap must be replaced by an active one.",
      "response": null,
      "sources": [
        "S-1312"
      ]
    },
    {
      "mech": "M-0013",
      "record": "M-0013",
      "n": 5,
      "title": "Completeness rests on physical monitoring left out of scope",
      "kind": "open-question",
      "severity": "significant",
      "status": "open",
      "evidence_scope": null,
      "scope_note": null,
      "related_finding": null,
      "description": "The Secure Gateway Device paper assumes the facility is physically monitored, and states that the whole architecture depends on the device being the only communication channel. It names radio emanation, power-line signalling and thermal channels as covert channels beyond that scope.",
      "response": null,
      "sources": [
        "S-1300"
      ],
      "helps": [
        {
          "by": "M-0022",
          "how": "Addresses the radio, power-line and thermal channels that network-level designs leave out."
        }
      ]
    },
    {
      "mech": "M-0013",
      "record": "M-0013",
      "n": 6,
      "title": "Verifier dictionary attacks on hashes",
      "kind": "theoretical-argument",
      "severity": "minor",
      "status": "mitigated",
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      "scope_note": null,
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      "description": "Hashes of very short outputs could be brute-forced by the verifier. The paper recommends hashing at least 5 tokens together, or at least 10 if the attacker filters for likely tokens.",
      "response": null,
      "sources": [
        "S-1300"
      ]
    },
    {
      "mech": "M-0007",
      "record": "M-0007",
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      "title": "Proves that work was done, not that no capacity remains",
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      "response": null,
      "sources": [
        "S-1102"
      ],
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        {
          "by": "M-0019",
          "how": "A registry of chips is one basis for the estimate of available compute that the flaw's source says the verifier needs."
        },
        {
          "by": "M-0020",
          "how": "Looks for data centres that were never declared, which a proof cannot discover."
        }
      ]
    },
    {
      "mech": "M-0007",
      "record": "M-0007",
      "n": 2,
      "title": "Security rests on new hardness assumptions",
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      "scope_note": null,
      "related_finding": null,
      "description": "Komargodski and Weinstein base security on hardness assumptions about batches of low-rank random linear equations, and list PoUW \"from more standard or well-studied assumptions\" as an open problem. Pearl's floating-point variant introduces a further \"quantized-subspace hardness\" assumption.",
      "response": null,
      "sources": [
        "S-1609",
        "S-1105"
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    },
    {
      "mech": "M-0007",
      "record": "M-0007",
      "n": 3,
      "title": "Known shortcuts let a miner claim somewhat more work than it did",
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      "scope_note": null,
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      "description": "Pearl's specification lists known mining speedups: crafted inputs, precision shortcuts, seed grinding, work reuse, and faster kernels or hardware. A policy check caps the summands a miner may skip at one-sixteenth of those in a tile. For capacity bounding, any gap between work proven and work possible leaves spare capacity.",
      "response": null,
      "sources": [
        "S-1105"
      ]
    },
    {
      "mech": "M-0019",
      "record": "M-0019",
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      "title": "Records cover only chips that were recorded",
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      "related_finding": null,
      "description": "A registry or commitment accounts only for chips entered into it. Cankaya asks how a verifier would know it had found all chips, or how much \"dark compute\" remains, and notes that a fraudulent original record would mean unregistered chips had been made in advance. Halstead and Larsen propose reconstructing earlier production by auditing upstream suppliers.",
      "response": null,
      "sources": [
        "S-1408",
        "S-1410"
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        {
          "by": "M-0020",
          "how": "Looks for large data centres that were never declared, which a registry cannot show."
        }
      ]
    },
    {
      "mech": "M-0019",
      "record": "M-0019",
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      "title": "Documents and serial numbers can be forged",
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      "description": "Avellar and Grunewald note that export documents can be forged, that companies can hide information behind obscure corporate structures, and that it may be possible to forge serial numbers on chips and racks. They recommend cryptographic attestation of a powered-on chip as an extra check.",
      "response": null,
      "sources": [
        "S-1402"
      ]
    },
    {
      "mech": "M-0019",
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      "title": "Insiders could alter records before they are fixed",
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      "description": "Cankaya argues that insiders who can photograph process secrets could also tamper with production records. A commitment makes changes after publication detectable, but it cannot show that the records were accurate when committed.",
      "response": null,
      "sources": [
        "S-1408"
      ]
    }
  ],
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          "kind": "blocker",
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        }
      ]
    },
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      "id": "M-0024",
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        }
      ]
    },
    {
      "id": "M-0020",
      "title": "Remote detection of data centres",
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          "title": "Proves that work was done, not that no capacity remains",
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          "title": "Records cover only chips that were recorded",
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          "how": "Looks for large data centres that were never declared, which a registry cannot show."
        }
      ]
    },
    {
      "id": "M-0022",
      "title": "Side-channel suppression for isolated facilities",
      "url": "https://trustbutveri.fyi/mechanisms/side-channel-suppression/",
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      "fits_filters": true,
      "filter_issues": [],
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        {
          "kind": "flaw",
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          "title": "Completeness rests on physical monitoring left out of scope",
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          "how": "Addresses the radio, power-line and thermal channels that network-level designs leave out."
        },
        {
          "kind": "blocker",
          "mech": "M-0013",
          "text": "Radio, power-line and thermal channels are not addressed by network-level designs."
        }
      ]
    },
    {
      "id": "M-0017",
      "title": "Tamper evidence for verifier devices",
      "url": "https://trustbutveri.fyi/mechanisms/tamper-evidence-for-verifier-devices/",
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      "fits_filters": true,
      "filter_issues": [],
      "reasons": [
        {
          "kind": "blocker",
          "mech": "M-0013",
          "text": "Taps and gateway devices need tamper-evident housing and physical monitoring so that traffic cannot bypass them."
        }
      ]
    },
    {
      "id": "M-0001",
      "title": "Sampled inference recomputation",
      "url": "https://trustbutveri.fyi/mechanisms/sampled-inference-recomputation/",
      "readiness": "R3",
      "fits_filters": true,
      "filter_issues": [],
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        {
          "kind": "prerequisite",
          "mech": "M-0013"
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      ]
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        "id": "M-0001",
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        "id": "M-0002",
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          "M-0013"
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      },
      {
        "id": "M-0017",
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          "M-0013"
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      {
        "id": "M-0022",
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          "M-0013"
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      }
    ],
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      {
        "mech": "M-0013",
        "n": 1,
        "text": "No complete verification tap has been demonstrated at production frontend link rates, and on the tested CPU no hash algorithm reached line rate with minimum-size frames.",
        "theme": "performance-compatibility",
        "blocked_by": null,
        "sources": [
          "S-1311",
          "S-1310"
        ],
        "inProposal": null
      },
      {
        "mech": "M-0013",
        "n": 2,
        "text": "Nondeterministic inference leaves covert capacity in outputs that hashing cannot remove.",
        "theme": "evidence-binding",
        "blocked_by": "M-0002",
        "sources": [
          "S-1300"
        ],
        "inProposal": false
      },
      {
        "mech": "M-0013",
        "n": 3,
        "text": "Taps and gateway devices need tamper-evident housing and physical monitoring so that traffic cannot bypass them.",
        "theme": "hardware-trust",
        "blocked_by": "M-0017",
        "sources": [
          "S-1300",
          "S-0018"
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      },
      {
        "mech": "M-0013",
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        "text": "Radio, power-line and thermal channels are not addressed by network-level designs.",
        "theme": "coverage-hidden-compute",
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        "sources": [
          "S-1300"
        ],
        "inProposal": false
      },
      {
        "mech": "M-0013",
        "n": 5,
        "text": "Red-teaming by specialists is called for but has not been reported.",
        "theme": "adversarial-validation",
        "blocked_by": null,
        "sources": [
          "S-1300"
        ],
        "inProposal": null
      },
      {
        "mech": "M-0007",
        "n": 1,
        "text": "Bounding spare capacity needs a credible estimate of the compute available to the actor, including third-party access.",
        "theme": "capacity-bounds",
        "blocked_by": null,
        "sources": [
          "S-1102"
        ],
        "inProposal": null
      },
      {
        "mech": "M-0007",
        "n": 2,
        "text": "Proofs of work cannot find facilities that were never declared.",
        "theme": "coverage-hidden-compute",
        "blocked_by": null,
        "sources": [
          "S-1102"
        ],
        "inProposal": null
      },
      {
        "mech": "M-0007",
        "n": 3,
        "text": "As of September 2026 no implementation, demonstration or independent evaluation of proofs of work for capacity bounding has been published.",
        "theme": "adversarial-validation",
        "blocked_by": null,
        "sources": [],
        "inProposal": null
      },
      {
        "mech": "M-0019",
        "n": 1,
        "text": "No AI chip registry operates, and covering re-exports would need cooperation from re-exporters and foreign governments that may not be feasible everywhere.",
        "theme": "access-governance",
        "blocked_by": null,
        "sources": [
          "S-1402",
          "S-0002"
        ],
        "inProposal": null
      },
      {
        "mech": "M-0019",
        "n": 2,
        "text": "Linking records to physical chips needs hard-to-spoof unique IDs and inspections.",
        "theme": "hardware-trust",
        "blocked_by": null,
        "sources": [
          "S-0002",
          "S-1402",
          "S-1408"
        ],
        "inProposal": null
      },
      {
        "mech": "M-0019",
        "n": 3,
        "text": "Chips produced before a registry starts must be reconstructed from supplier records.",
        "theme": "coverage-hidden-compute",
        "blocked_by": null,
        "sources": [
          "S-1408",
          "S-1410"
        ],
        "inProposal": null
      }
    ]
  },
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      "shown": [],
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    },
    "training": {
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        "M-0019"
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      "unknown": []
    }
  },
  "implementations": [
    {
      "mechanism": "M-0013",
      "selected": null,
      "implementations": [
        {
          "id": "I-0011",
          "title": "AI 2040 inference-only verification stack",
          "url": "https://trustbutveri.fyi/implementations/ai-2040-inference-only-verification-plan/"
        },
        {
          "id": "I-0012",
          "title": "Low-trust AI compute verification system overview",
          "url": "https://trustbutveri.fyi/implementations/low-trust-compute-verification-system-overview/"
        },
        {
          "id": "I-0008",
          "title": "SASH confidential network logger",
          "url": "https://trustbutveri.fyi/implementations/sash-confidential-network-logger/"
        }
      ]
    },
    {
      "mechanism": "M-0007",
      "selected": null,
      "implementations": [
        {
          "id": "I-0004",
          "title": "Pearl proof-of-useful-work blockchain",
          "url": "https://trustbutveri.fyi/implementations/pearl-proof-of-useful-work/"
        }
      ]
    },
    {
      "mechanism": "M-0019",
      "selected": null,
      "implementations": []
    }
  ],
  "sources": [
    {
      "id": "S-1300",
      "title": "Fingerprinting All AI Cluster I/O Without Mutually Trusted Processors",
      "authors": "N. Cankaya et al.",
      "year": 2026,
      "url": "https://arxiv.org/abs/2606.10724",
      "path": "/sources/cankaya-fingerprinting-ai-cluster-io/"
    },
    {
      "id": "S-0031",
      "title": "The Fundamentals and Feasibility of Secure Network Taps for Verifying AI Datacenter Use",
      "authors": "N. Cankaya",
      "year": 2026,
      "url": "https://nacicankaya.substack.com/p/research-note-the-fundamentals-and",
      "path": "/sources/cankaya-secure-network-taps/"
    },
    {
      "id": "S-0018",
      "title": "A System Overview for Near-Term, Low-Trust AI Compute Verification",
      "authors": "N. Cankaya",
      "year": 2026,
      "url": "https://intelligence.org/wp-content/uploads/2026/06/A-system-overview-for-near-term-low-trust-AI-compute-verification.pdf",
      "path": "/sources/cankaya-system-overview-low-trust-compute-verification/"
    },
    {
      "id": "S-0067",
      "title": "Verification Plan",
      "authors": "R. Dean",
      "year": 2026,
      "url": "https://ai-2040.com/supplements/verification-plan",
      "path": "/sources/dean-verification-plan/"
    },
    {
      "id": "S-1312",
      "title": "Fitting a Network TAP to our Inference Verification Prototype",
      "authors": "Amodo Design",
      "year": 2026,
      "url": "https://amododesign.com/notes/2026-09-15-network-tap-inference-verification/",
      "path": "/sources/amodo-network-tap-inference-verification-prototype/"
    },
    {
      "id": "S-1007",
      "title": "Amodo-Design/Inference-Recomputation-Prototype (GitHub repository)",
      "authors": "Amodo Design",
      "year": 2026,
      "url": "https://github.com/Amodo-Design/Inference-Recomputation-Prototype",
      "path": "/sources/amodo-inference-recomputation-prototype-code/"
    },
    {
      "id": "S-1319",
      "title": "inference-verification: Inference Verification Prototype",
      "authors": "Singapore AI Safety Hub (SASH)",
      "year": 2026,
      "url": "https://github.com/sg-ai-safety-hub/inference-verification",
      "path": "/sources/sash-inference-verification-repo/"
    },
    {
      "id": "S-1320",
      "title": "Internationalising AI Verification",
      "authors": "Singapore AI Safety Hub (SASH)",
      "year": 2026,
      "url": "https://www.aisafety.sg/research/internationalising-ai-verification",
      "path": "/sources/sash-internationalising-ai-verification/"
    },
    {
      "id": "S-1507",
      "title": "Adversarial Entropy Inflation Against Gumbel-Based Inference Verification",
      "authors": "N. Kezins",
      "year": 2026,
      "url": "https://arxiv.org/abs/2608.23375",
      "path": "/sources/kezins-adversarial-entropy-inflation/"
    },
    {
      "id": "S-1310",
      "title": "Network Tapping for AI Verification: A Technical Assessment",
      "authors": "Amodo Design",
      "year": 2026,
      "url": "https://amododesign.com/notes/2026-05-03-network-tapping/",
      "path": "/sources/amodo-network-tapping-technical-assessment/"
    },
    {
      "id": "S-1102",
      "title": "Pacing AI Requires Proof",
      "authors": "Attestable",
      "year": 2026,
      "url": "https://attestable.com/blog/pacing-ai-requires-proof",
      "path": "/sources/attestable-pacing-ai-requires-proof/"
    },
    {
      "id": "S-0005",
      "title": "Mechanisms to Verify International Agreements About AI Development",
      "authors": "A. Scher & L. Thiergart",
      "year": 2025,
      "url": "https://arxiv.org/abs/2506.15867",
      "path": "/sources/scher-mechanisms-verify-ai-agreements/"
    },
    {
      "id": "S-1609",
      "title": "Proofs of Useful Work from Arbitrary Matrix Multiplication",
      "authors": "I. Komargodski & O. Weinstein",
      "year": 2025,
      "url": "https://arxiv.org/abs/2504.09971",
      "path": "/sources/komargodski-proofs-useful-work-matrix-multiplication/"
    },
    {
      "id": "S-1105",
      "title": "Pearl Floating Point Scheme Specification",
      "authors": "Pearl Research Team",
      "year": 2026,
      "url": "https://pearlresearch.ai/Pearl_Whitepaper.pdf",
      "path": "/sources/pearl-floating-point-scheme-specification/"
    },
    {
      "id": "S-1107",
      "title": "pearl: Monorepo for the Pearl network",
      "authors": "Pearl Research Labs",
      "year": 2026,
      "url": "https://github.com/pearl-research-labs/pearl",
      "path": "/sources/pearl-network-monorepo/"
    },
    {
      "id": "S-0002",
      "title": "Verifying International Agreements on AI: Six Layers of Verification for Rules on Large-Scale AI Development and Deployment",
      "authors": "M. Baker et al.",
      "year": 2025,
      "url": "https://www.rand.org/pubs/working_papers/WRA4077-1.html",
      "path": "/sources/baker-verifying-international-agreements-ai/"
    },
    {
      "id": "S-1402",
      "title": "Near-Term Verification Methods for AI Chip Exports",
      "authors": "B. Avellar & E. Grunewald",
      "year": 2026,
      "url": "https://www.iaps.ai/research/near-term-verification-methods-for-ai-chip-exports",
      "path": "/sources/avellar-near-term-verification-ai-chip-exports/"
    },
    {
      "id": "S-1408",
      "title": "TSMC most definitely has a golden record of all AI chips it made",
      "authors": "N. Cankaya",
      "year": 2025,
      "url": "https://nacicankaya.substack.com/p/tsmc-most-definitely-has-a-golden",
      "path": "/sources/cankaya-tsmc-golden-record/"
    },
    {
      "id": "S-0007",
      "title": "Hardware-Level Governance of AI Compute: A Feasibility Taxonomy for Regulatory Compliance and Treaty Verification",
      "authors": "S. Ansari",
      "year": 2026,
      "url": "https://arxiv.org/abs/2604.04712",
      "path": "/sources/ansari-hardware-level-governance-ai-compute/"
    },
    {
      "id": "S-1410",
      "title": "Covert AI Projects",
      "authors": "B. Halstead & T. Larsen",
      "year": 2026,
      "url": "https://ai-2040.com/supplements/covert-ai-projects",
      "path": "/sources/halstead-covert-ai-projects/"
    },
    {
      "id": "S-1311",
      "title": "Network Traffic Hashing",
      "authors": "Amodo Design",
      "year": 2026,
      "url": "https://amododesign.com/notes/2026-07-03-network-traffic-hashing/",
      "path": "/sources/amodo-network-traffic-hashing/"
    }
  ]
}