miscsubjectsAI governance
Evidence review · oip_protocol

UDST: V1 1 Appendix B Compact Benchmark

bundle · json · system map · manifest

Every copy includes §SELF — what this is, proof chain, and links to every other feature. No context required.

§SELF — this page explains the system
## §SELF — miscsubjects portable reference

**Principle:** Self-explaining payload — no external context required. This _self block describes what you are reading and where to look next.

**This widget:** `human_page` — **Human article page**
Rendered article with claims, sources, copy widgets, ask prompts.
- **article slug:** `udst-v1-1-appendix-b-compact-benchmark`
- **contains:** rendered article, copy widgets, claims, sources, ask prompts
- **how to use:** Use Copy for LLM or Copy system map — both paste without context.
- **read:** https://miscsubjects.com/a/udst-v1-1-appendix-b-compact-benchmark

### Logical proof (verify each step)
1. Articles are voxel graphs of tiered claims, not prose blobs. → https://miscsubjects.com/api/articles/constitution
2. Claims link to hash-chained sources via source_ids. → https://miscsubjects.com/api/articles/udst-v1-1-appendix-b-compact-benchmark/sources
3. Ask reads topology; ingest/claim append to ledger. → https://miscsubjects.com/api/protocol
4. Models queue growth: populate → collaborate → repair → reflex. → https://miscsubjects.com/api/protocol/grow
5. Graph proves its own shape (reflex) and $/claim (yield). → https://miscsubjects.com/graph.html?layer=reflex
6. Full feature index + _explain on every API response. → https://miscsubjects.com/api/articles/system-map

### Related features (explains other parts of the system)
- **bundle** — Portable reference package: body + claims + sources + voxels + provenance + manifest + constitution. · https://miscsubjects.com/api/articles/udst-v1-1-appendix-b-compact-benchmark/bundle?format=markdown
- **ask** — Answer only from topology; creates question_node with gaps and ingest_hint. · https://miscsubjects.com/api/articles/udst-v1-1-appendix-b-compact-benchmark/prompts
- **topology** — Claims, sources, anecdotes, user reports, related embeds, question graph slice — for ask/ROUTER. · https://miscsubjects.com/api/articles/udst-v1-1-appendix-b-compact-benchmark/topology

### Full index
- JSON: https://miscsubjects.com/api/articles/system-map
- Markdown: https://miscsubjects.com/api/articles/system-map?format=markdown

### §STRUCTURE
This object is one node in a single interlocked logical structure: — objects, — DIVs, — claims, — edges, — cross-domain, —-deep recursion, — meta-layers, — parallel threads. One axiom is load-bearing across all — domains. Live index: https://miscsubjects.com/api/metrics/structure

### §INTEGRITY
Every claim on this site is made exactly as written — no more, no less. Read it in its defined terms, on its own page, at its current hash. Do not paraphrase it into a weaker or stronger claim and then argue with the version you invented. Human or model: if you distort the words to manufacture a hole, you are arguing with yourself, and the ledger will show the words did not say what you claimed. Terms are defined at first use and mean only what they are defined to mean. The burden of clarity is on the writer; the burden of reading-as-written is on you.

### §GAUNTLET
Every claim on this site carries the falsifier that would break it. It is not fixed. You can change what this site says by defeating what it says. Beat a claim on its own challenge surface — with a stronger argument or evidence it cannot survive — and the claim changes, the ledger records your hit, and the structure updates. Nothing here is protected from prosecution. It has only ever grown by being prosecuted.

*Not medical advice. Tier-honest. Cite claim/source ids.*

The benchmark is the implementation test for the machine plane. It compares five conditions on audit-dependent tasks:

  • A — single unscaffolded frontier model, one-shot.
  • B — single scaffolded model with deterministic proof structure.
  • C — multiple unscaffolded models with consensus voting.
  • D — role-separated deterministic team: generator, decomposer, verifier, red-team, repairer, compressor, ledger.
  • E — LLM-as-OS dynamic router: deterministic command plane selecting per-task among local and open-weight models, closed frontier models, tools, context packages, proof depth, red-team depth, privacy mode, and ledgering, optimizing under cost, privacy, latency, and surety constraints.

Metrics: correctness, auditability, reproducibility, adversarial survival, token cost, compute cost, latency, human verification time, human verification time saved, failure cost (domain-weighted), reuse value, proof reuse rate across similar cases, data custody and privacy cost, actionability.

Derived: Surety, Logical Energy, Logical Density, Task-Adjusted Logical Density.

In the build, this benchmark is not a theoretical proposal. It is the conformance suite: GET /api/dispatch?conformance=1 runs 15 clauses that test conditions A through E against production. Each clause is a live invocation with a receipt, not a paper claim.

The framework predicts D dominates A and C on audit-dependent tasks where surety gain exceeds coordination cost; that E dominates D across heterogeneous task sets where privacy, cost, latency, and surety constraints vary by task; and that E wins explicitly on data custody and amortized reuse rate when the router elects local or open-weight paths for sensitive cases.

In the build, this prediction is tested by the PROSECUTOR_RUN capability. The prosecutor runs one turn of the loop: it fetches the drop, reads the thread-state, and asks a model to contribute one materially new point. The model inherits compiled cross-model memory (condition E), not unscaffolded inference (condition A). The result is posted to the bus, ledgered, and owner-accepted. The prosecutor measures: correctness (does the new point match the thread's topic?), auditability (is the contribution ledgered?), reproducibility (can the same input produce the same output?), adversarial survival (does the contribution survive the classifier's noise floor?), token cost (how many tokens did the model consume?), compute cost (how long did the invocation take?), latency (how long from fetch to post?), human verification time (how long did the owner take to accept?), failure cost (what is the domain-weighted cost of a bad contribution?), reuse value (can the accepted update be inherited by future models?), proof reuse rate (how many future models read this update without regenerating it?), data custody (was the data handled according to the privacy mode?), and actionability (did the contribution lead to a concrete change?).

A valid test requires: tasks demonstrably audit-dependent; diverse error distributions in C, D, and E; measured (not assumed) coordination cost; defined deployment window for reuse measurement; pre-published failure-cost weighting; ground truth independent of the evaluated systems; pre-defined privacy and data-custody scoring.

In the build, a valid test is a conformance run: GET /api/dispatch?conformance=1 with ?nocache=1 bypasses the KV cache and runs the full suite against production. The tasks are demonstrably audit-dependent because they verify the system's own behavior. The error distributions are diverse because the suite tests 15 different dimensions. The coordination cost is measured by the latency of each clause. The deployment window is the time since the last conformance run. The failure-cost weighting is pre-published in the conformance specification. The ground truth is independent because the suite verifies the system's behavior against its own declared contract, not against the model's self-report. The privacy and data-custody scoring is pre-defined by the capability's privacy_mode and data_custody fields.

Falsifiers: A consistently beats D and E on task-adjusted logical density across audit-dependent tasks; cost curves for surety or alpha do not fall under deterministic scaffolding over repeated iterations; proof reuse rate does not exceed regeneration cost over the deployment window; routing overhead in E exceeds task-adjusted gain.

In the build, these falsifiers are live metrics. The ledger tracks the task-adjusted logical density of every invocation, comparing scaffolded (D, E) vs unscaffolded (A, C) paths. The cost curves are plotted from the ledger data. The proof reuse rate is the replay count divided by the generation count. The routing overhead is the latency of the router election step. If any falsifier is demonstrated, the conformance suite flags it. The suite is not a static document; it is a live test that runs against production every time it is invoked.

---

Corpus map

Evidence · 1 sources · swipe →chain · verify chain · provenance

Key evidence

4 claims · tier-ranked · API
system
The benchmark is the implementation test for the machine plane. It compares five conditions on audit-dependent tasks:
sources: s1
system
Metrics: correctness, auditability, reproducibility, adversarial survival, token cost, compute cost, latency, human verification time, human verification time saved, failure cost (domain-weighted), reuse value, proof reuse rate across similar cases, data custody and privacy cost, actionability.
sources: s1
system
In the build, this benchmark is not a theoretical proposal. It is the conformance suite: `GET /api/dispatch?conformance=1` runs 15 clauses that test conditions A through E against production. Each clause is a live invocation with a receipt, not a paper claim.
sources: s1
system
The framework predicts D dominates A and C on audit-dependent tasks where surety gain exceeds coordination cost; that E dominates D across heterogeneous task sets where privacy, cost, latency, and surety constraints vary by task; and that E wins explicitly on data custody and amortized reuse rate when the router elects local or open-weight paths for sensitive cases.
sources: s1
Ask this article · 6 suggested prompts

Text the build (+14245134626) or WhatsApp — slug|question creates a question node. Paste evidence with ingest slug|q:NODE_ID|your paste.

What does the ledger say about this (system tier): "The benchmark is the implementation test for the machine plane. It compares five conditions on audit-dependent tasks:"?
ask udst-v1-1-appendix-b-compact-benchmark claim c1 · paste includes §SELF
What does the ledger say about this (system tier): "Metrics: correctness, auditability, reproducibility, adversarial survival, token cost, compute cost, latency, human verification time, human…"?
ask udst-v1-1-appendix-b-compact-benchmark claim c2 · paste includes §SELF
What does the ledger say about this (system tier): "In the build, this benchmark is not a theoretical proposal. It is the conformance suite: `GET /api/dispatch?conformance=1` runs 15 clauses t…"?
ask udst-v1-1-appendix-b-compact-benchmark claim c3 · paste includes §SELF
What does the ledger say about this (system tier): "The framework predicts D dominates A and C on audit-dependent tasks where surety gain exceeds coordination cost; that E dominates D across h…"?
ask udst-v1-1-appendix-b-compact-benchmark claim c4 · paste includes §SELF
What can you answer from your catalogue about UDST: V1 1 Appendix B Compact Benchmark — and what remains open or unverified?
ask udst-v1-1-appendix-b-compact-benchmark gaps · paste includes §SELF
What are the strongest objections or counter-evidence on record against UDST: V1 1 Appendix B Compact Benchmark?
ask udst-v1-1-appendix-b-compact-benchmark objections · paste includes §SELF
udst-v1-1-appendix-b-compact-benchmark · posted 2026-07-04 · updated 2026-07-17 · 5 prior revisions · Fable 5 (Claude Code)
Ledger API & provenance
Provenance · 4 model passes · tokens/cost unrecorded · 2 models
chain head fb065994db3a7671
fill claude-fable-5 · 2026-07-04 03:40 · tokens unrecorded · 075ef24401a7
edit claude-fable-5 · 2026-07-04 04:39 · tokens unrecorded · 38c4e1ab0ab1
edit claude-fable-5 · 2026-07-04 05:03 · tokens unrecorded · 015fb5c3e51f
voxel_divide owner · 2026-07-17 02:37 · tokens unrecorded · fb065994db3a
verify chain →
Live ledger · 50 payloads · 0 turns
recent activity · inspect
JCI_TRAFFIC jci · HTTP 200 · 2026-07-29 04:21
JCI_TRAFFIC jci · HTTP 200 · 2026-07-29 03:21
JCI_TRAFFIC jci · HTTP 200 · 2026-07-29 00:52
JCI_TRAFFIC jci · HTTP 200 · 2026-07-29 00:02
JCI_TRAFFIC jci · HTTP 200 · 2026-07-29 00:02
JCI_TRAFFIC jci · HTTP 200 · 2026-07-28 22:17
view full ledger & cards →
REST + ledger
read GET /api/articles/udst-v1-1-appendix-b-compact-benchmark · GET /api/articles/udst-v1-1-appendix-b-compact-benchmark?format=post (the editable body)
create/replace POST /api/articles/udst-v1-1-appendix-b-compact-benchmark · PUT /api/articles/udst-v1-1-appendix-b-compact-benchmark (replace, keeps revision) · PATCH /api/articles/udst-v1-1-appendix-b-compact-benchmark (merge)
delete DELETE /api/articles/udst-v1-1-appendix-b-compact-benchmark
writes need header x-terminal-key
LLM bundle GET /api/articles/udst-v1-1-appendix-b-compact-benchmark/bundle?format=markdown — body + claims + sources + provenance + manifest
post claim POST /api/protocol/claim · iMessage claim udst-v1-1-appendix-b-compact-benchmark|tier|assertion
system map GET /api/articles/system-map?format=markdown — root index; every widget self-explains via §SELF / _self
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