# Data Custody Contract — Pointer and Consent Schema (D14) Status: DRAFT — awaiting ratification (webui-audit S2, contract 7 of 9). Authority: PRD D14/D6 (Part I §7) — sensitive profile categories live in the **user's own brain ONLY**; PostgreSQL holds structural data, consent records, and pointers — never the content; "user data does not leak" is enforced by architecture, not policy. The Standalone split is a MAY with a recommended-default (kept for conversion forward-compatibility, D3). PRD D4 (Part I §6) — profile answers feed `USER.md` and/or the user's data store subject to the custody rule; connectors carry granular agentic-access consent. PRD D6 — estate brains hold operational records; only product-relevant material migrates into repository docs. Revision 2 (sol r1 findings F1–F6): the registry is now a full profile classifier that can represent non-sensitive rows, with an exact row shape, versioning, refusal semantics for unknown keys, and transition rules (F1); the consent model gains a concrete grantee reference model, an active-row uniqueness constraint, append-only re-grant semantics, and explicit mutation authority (F2); the pointer schema names its exact column set, binds the one-pointer rule to a database constraint, defines the `brain_ref` grammar and owner-bound resolution, replaces the unkeyed hash with a keyed construction, and bounds orphan repair (F3); the witnesses import the hierarchy contract's §6.2 column allowlist and §6.3-style closed route inventories, add negative controls and a column-type allowlist, and cover every binding rule (F4); the Standalone physical split, both valid layouts, the election record, and v1 phase timing are defined consistently with the wizard and mode-conversion contracts (F5); drafting additions are disclosed in §8 and the ruling request is one sentence with one decision (F6). Revision 3 (sol r2 findings F1–F9): reclassification gains a custody-config write fence (shared/exclusive row lock) so no concurrent writer can commit a stale-version route, a declared supported-version refusal, and witnesses for both transition directions (F1). The grantee reference becomes three per-type FK columns with a generated discriminant, real referent tables for `connector` and `feature` (contract-owned, empty at v1), the enrolled-agent binding named to the rank-4 family's table, and revoked-row immutability enforced by a database trigger (F2). The content hash is domain-separated per (user, category, locator) with canonical bytes, an embedded key id, and a rotation rule; the audit FK referent and the non-sensitive profile table (`profile_answers`) are named; tree-object resolution prohibits symlink escape (F3). The §7 route witnesses import hierarchy §6.3's full prong set, scan `plugins/`, extend the no-content probe to every platform table, and add the missing negatives (F4). `custody_config` is singleton by constraint (F5). §8 discloses the previously omitted policies (F6). Mutation authority is split into two disjoint actor predicates — subject mutations and the precondition-checked system auto-revocation (F7). Hash mismatch gets a representable pointer state with a defined terminal outcome (F8). Managed deletion is an ordered git-then-database protocol with fault-injection witnesses at both interruption points, replacing the impossible cross-store transaction (F9). Revision 4 (sol r3 findings F1/F2/F4/F6/F7/F9 residual, F10/F11 new): the write fence pins `READ COMMITTED` isolation and lock-first statement order for the reclassification migration, and the supported-version declaration becomes a named source symbol checked under the same lock as each decision (F1). The user foreign keys adopt the identity store's actual key type — `users.id` is `text` (BetterAuth identifiers), so every `user_id` column is `text` (F10). The agent referent binds to the live platform `agents` table by symbol, since `identity-lifecycle.md` defines no enrollment surface; an amendment re-binds if one arrives (F2). The system auto-revocation predicate is withdrawn entirely: grantee cessation is handled structurally by `ON DELETE CASCADE` from the grantee referent (as subject cessation already is from `users`), default-deny ends access, and the audit event table keeps the durable history — which removes the trigger/actor contradiction rather than patching it (F2, F7). Sensitive-write routes gain a static write-set closure witness so a derived representation cannot land in any generic platform table (F4). Managed deletion step 2 becomes a compare-and-delete on the hash removed in step 1, witnessed against a concurrent rewrite (F9). Ordinary sensitive writes get an ordered content-first protocol with deterministic locators, ack-after-pointer-commit, idempotent retry, and fault-injection witnesses (F11). §8 discloses every rule above plus the previously undisclosed §4.3 committed-tree/symlink rule (F6). This contract binds the profile-category registry (§2), the custody placement rule (§3), the pointer schema (§4), the consent schema and its evaluation (§5), mode application (§6), witnesses (§7), and disclosed drafting additions (§8). It defines schemas and placement; wizard step flow stays with contract 3 (`onboarding-wizard.md`), mode and conversion with contract 6 (`mode-conversion.md`), identity with `identity-lifecycle.md`, tool mapping with `tool-gateway-mapping.md`. ## 1. Definitions 1. **User brain**: the git-tracked per-user data store. Its two valid Standalone layouts are defined in §6.2; in Enterprise it is the user's own brain repository. 2. **Sensitive content**: any profile answer or derived text in a §2 category classified `sensitive`. 3. **Pointer**: a database record referencing sensitive content that lives in a user brain, carrying no content (§4). 4. **Grantee**: a non-subject principal that may be granted access to a user's sensitive content: a platform agent (a row of the `agents` table, §5.2), a connector, or a platform feature (§5.2). 5. **Consent record**: a database record granting one grantee access to one category of one user's data (§5). 6. **Registry version**: the monotonically increasing integer identifying the active state of the §2 registry. 7. **Physical split** (Standalone): sensitive user content living in a per-user brain repository separate from the estate mosaic-brain, as opposed to the unsplit layout where it lives in a dedicated user-files subtree of the single mosaic-brain (§6.2). 8. **Audit event table**: the single platform table into which the hierarchy contract (contract 1, `hierarchy-schema.md` §5.2) commits its semantic audit events. No sibling contract names the physical table, so this contract binds it by identity, not by name: every `audit_event_id` column in §3.5, §4.1, §5.1, and §6.3 is a foreign key to that table, the implementing PR that creates the audit store binds these FKs to it, and the §7.1 witness asserts that each such FK references the same physical table the contract-1 audit write path inserts into. ## 2. Profile-category registry 1. **Model.** The registry is the single classifier for every profile category, closed and versioned, in the platform database. Table `profile_category_registry`, columns exactly: | Column | Type | Constraints | | ---------------- | ----------- | ---------------------------------------------------- | | `category_key` | text | primary key | | `classification` | text | NOT NULL, CHECK in (`sensitive`, `non-sensitive`) | | `since_version` | integer | NOT NULL (registry version that introduced this row) | | `created_at` | timestamptz | NOT NULL | The current registry version is a single integer held in `custody_config` (§6.3). Rows are added or reclassified ONLY by amendment to this contract shipped as a migration that bumps the registry version; no runtime write path may insert, update, or delete registry rows. 2. **Initial registry (version 1).** Drawn from the D4 profile step and D14's "disabilities, family, communication style, and similar": | Category key | Classification | Covers | | ------------------------- | -------------------------- | ------------------------------------------------------------------- | | `disabilities` | sensitive | disabilities including ADHD/autism/PDA/vision | | `family-social` | sensitive | family, pets, friends | | `communication-style` | sensitive | desired agent communication style, voice-matching interview product | | `personal-interests` | sensitive | hobbies, likes/dislikes | | `connector-content` | sensitive | email and drive content reached through user connectors | | `professional-background` | non-sensitive (per ruling) | professional background summary used for agent configuration | | `education` | non-sensitive (per ruling) | education summary used for agent configuration | The `Covers` column is contract documentation, not a database column. Account identity fields (email, name, credentials) are identity-contract data, not profile custody data, and have no registry row. 3. **Unknown category — refusal.** A profile write naming a `category_key` with no registry row is REFUSED with an explicit error. Nothing is stored anywhere, no registry row is auto-added (§2.1), and no pointer is created (so the §4.1 foreign key is never asked to reference a missing row). Fail-closed means refusal, not silent routing. 4. **Reclassification transitions.** A reclassification ships as a contract amendment plus migration that bumps the registry version. Non-sensitive → sensitive: the same migration moves every existing relational value for that category into its owning user's brain, creates the pointers, and deletes the relational values, all before the new version activates. Sensitive → non-sensitive: existing brain content and pointers remain valid and are never automatically materialized into the database; only writes evaluated after the new version activates route relationally. 5. **Unreadable registry — refusal.** If the registry or its version cannot be read at decision time, every routing and consent decision that depends on it is refused. There is no cached-default or assume-sensitive fallback that performs a write. 6. **Write fence.** Every profile-write transaction reads the current registry version by taking a **shared lock** on the `custody_config` row (`SELECT ... FOR SHARE`) inside the same database transaction that performs the write, and routes by the version so read. A reclassification migration takes an **exclusive lock** on that row (`SELECT ... FOR UPDATE`) before its scan and holds it through the value moves and the version bump. Isolation and statement order are part of the fence, not implementation freedom: both the profile-write transaction and the migration transaction run at `READ COMMITTED`, and the migration's `SELECT ... FOR UPDATE` is the FIRST statement of its transaction — no read precedes it, so the migration establishes no snapshot before it holds the lock. Under `READ COMMITTED` each subsequent statement takes a fresh snapshot, so the migration's scan — which runs only after the lock is granted — sees every row committed by every `FOR SHARE` holder that finished before the lock was granted. Consequently a concurrent writer either commits before the lock is granted — its value is then visible to and swept by the scan — or blocks until the migration commits and then routes by the new version. No interleaving exists in which a value routed under the old version escapes the scan, including the writer-commits-while-migration- waits interleaving (witness §7.6g). 7. **Supported version.** Each release declares the exact registry version its code implements as an exported compile-time constant in the custody module of the shared schema package; the implementing PR names the symbol and §7.6(h) pins it by symbol identity, so the declaration is source, not configuration. Every profile routing decision and every consent decision reads `custody_config.registry_version` under a `SELECT ... FOR SHARE` on the `custody_config` row inside the same database transaction as the decision (write decisions share the §2.6 fence transaction; read-only consent evaluations take the shared lock in their own transaction), so the supported-version comparison and the decision it gates use one atomically read version. If the declared version does not equal the version so read, the decision is refused — a readable but unsupported registry is a refusal, never best-effort routing under either version (witness §7.6h). ## 3. Custody placement rule 1. Sensitive content is written to the owning user's brain ONLY. PostgreSQL tables MUST NOT store sensitive content in any column — not as text, not as excerpts or previews, not as encodings, and not as embeddings or other derived representations that reconstruct content. 2. The database MAY hold, about sensitive content: the pointer records of §4, the consent records of §5, the registry of §2, and the custody configuration of §6.3. Nothing else. 3. Every write path for profile answers routes by the registry: `sensitive` → brain write + pointer upsert; `non-sensitive` → the `profile_answers` table (§3.5); unknown → refusal (§2.3). The routing decision is made server-side from the registry at its current version, inside the §2.6 write fence; a client-supplied classification or routing override is ignored. 4. D6 boundary: operational records stay in estate brains and are linked, not migrated. This contract governs user-profile custody only and creates no new obligation on estate brains. 5. **Non-sensitive profile table.** Non-sensitive profile answers land in exactly one declared table, `profile_answers`, columns exactly: `id` (uuid, primary key), `user_id` (text, NOT NULL, FK → users(id) ON DELETE CASCADE), `category_key` (text, NOT NULL, FK → profile_category_registry(category_key)), `value` (text, NOT NULL), `created_at` and `updated_at` (timestamptz, NOT NULL), and `audit_event_id` (uuid, NOT NULL, FK → the §1.8 audit event table); plus UNIQUE (`user_id`, `category_key`). A value may sit in this table ONLY while its category's registry classification is `non-sensitive` (§2.4 migrates the rows on reclassification). No other platform table stores profile answer content. 6. **User-key type binding.** The identity store declares `users.id` as `text` (BetterAuth identifiers, `packages/db` schema); every `user_id` column in this contract (§3.5, §4.1, §5.1) is therefore `text`, matching the referenced key's declared type exactly. The identifiers are opaque strings, not guaranteed UUIDs; no custody column re-types, parses, or reformats them. If a sibling contract ever migrates the user key type, an amendment to this contract follows it (§7.1 asserts the FK types match the live referenced columns). 7. **Ordered sensitive-write protocol.** An ordinary sensitive write spans two stores and is ordered, content first: step 1 commits the content to the owning user's brain at a deterministic locator — the implementing PR declares a locator scheme that maps (category, answer slot) to one `brain_ref`, so a retry of the same write resolves to the same path; step 2, only after step 1 has committed, upserts the pointer row (insert, or update of the existing row for that (user, category, brain_ref)) in its own database transaction inside the §2.6 fence. The write is acknowledged to the caller only after step 2 commits. Interruption before step 1 leaves both stores unchanged. Interruption between the steps leaves committed brain content with no pointer: unpointed content is inert — it lives in the correct custody store, no read path serves it (reads resolve through pointers only), and nothing dangles in the database. The client's retry — the write was never acknowledged — recommits the same locator and completes the pointer upsert, converging to the pointed state. The reverse order (pointer before content) is forbidden: an ordinary write never creates a pointer whose content has not committed. Witness §7.16 fault-injects both interruption points and drives the retry convergence. ## 4. Pointer schema 1. **Exact columns.** Table `profile_pointers`, columns exactly: | Column | Type | Constraints | | ---------------- | ----------- | ------------------------------------------------------ | | `id` | uuid | primary key | | `user_id` | text | NOT NULL, FK → users(id) ON DELETE CASCADE (§3.6) | | `category_key` | text | NOT NULL, FK → profile_category_registry(category_key) | | `brain_ref` | text | NOT NULL, CHECK against the §4.3 grammar | | `content_hash` | text | NOT NULL (§4.4 construction) | | `created_at` | timestamptz | NOT NULL | | `updated_at` | timestamptz | NOT NULL | | `mismatch_at` | timestamptz | NULL unless the pointer is in the §4.6 mismatch state | | `audit_event_id` | uuid | NOT NULL, FK → the §1.8 audit event table | plus the database constraint UNIQUE (`user_id`, `category_key`, `brain_ref`) — the one-pointer rule is a constraint, not a convention. 2. **Opacity.** `brain_ref` and every other pointer column MUST NOT embed content or content-derived text (no titles, snippets, or free-text descriptions). A locator is structural, not descriptive. 3. **`brain_ref` grammar and owner binding.** `brain_ref` is a normalized repository-relative POSIX path: one or more segments matching `[A-Za-z0-9][A-Za-z0-9._-]*`, joined by `/`, with no leading `/`, no empty segment, and no `.` or `..` segment; the stored form matches `^[A-Za-z0-9][A-Za-z0-9._-]*(/[A-Za-z0-9][A-Za-z0-9._-]*)*$`. Resolution ALWAYS roots at the brain owned by the row's `user_id` (the resolver takes the owner from the row, never from the locator); the locator carries no repository, host, or user component, so a cross-user or traversal reference is unrepresentable, not merely forbidden. Resolution operates on the brain repository's committed git tree (tree and blob objects), never through filesystem path lookup: if any segment of the path resolves to a symbolic link — or to anything other than a tree (intermediate segments) or a blob (final segment) — resolution is refused. A symlink therefore cannot redirect a locator outside the owner's brain (witness §7.8). 4. **`content_hash` construction.** `content_hash` is `hmac-sha256::` — HMAC-SHA-256, keyed with a platform integrity key held in the secrets backend and never stored in the database or any repository, over the length-prefixed concatenation of: a fixed domain-separation string naming this contract and the construction version, the row's `user_id`, the row's `category_key`, the `brain_ref`, and the canonical content bytes. The canonical content bytes are the exact bytes of the committed blob the locator resolves to (§4.3) — no normalization. Because the input is domain-separated per (user, category, locator), equal answers from different users or categories store different hashes: the column is neither an offline dictionary oracle (external key) nor an equality/correlation oracle across rows (domain separation). `` names the key used; rotation introduces a new key id for new writes, re-verification accepts any still-registered key id, and a key is retired only when no stored hash references it. On read, a hash mismatch refuses the read and puts the pointer into the §4.6 mismatch state. 5. **Bounded orphan repair.** Pointers are deleted when their content is deleted; dangling pointers are repaired toward deletion, never toward re-creating content in the database. Reconciliation for a user's pointers runs on two triggers: every profile write for that user, and a periodic sweep whose interval the implementing PR declares (at most daily). A pointer whose content is absent is deleted by the next triggered reconciliation — an orphan survives at most one cycle, and repair performs no database content write. 6. **Mismatch state.** A failed §4.4 verification stamps the pointer's `mismatch_at` and the read is refused; every subsequent read of a pointer with `mismatch_at` set is refused without re-serving content. Reconciliation (§4.5 triggers) re-verifies each flagged pointer: verification success clears `mismatch_at`; content absent → the pointer is deleted (§4.5); persistent mismatch → the pointer is retained flagged with reads refused — the terminal outcome. The subject's next successful profile write for that category replaces the content, recomputes the hash, and clears the flag. Mismatch handling never deletes brain content and never copies content into the database. 7. **Managed deletion protocol.** A managed deletion of sensitive content spans two stores and is an ordered protocol, not a single transaction: step 1 commits the content deletion to the user's brain repository, recording the `content_hash` of the row it intends to delete as read before step 1; step 2, only after step 1 has committed, deletes the pointer row in its own database transaction as a **compare-and-delete** — the DELETE is conditioned on (`user_id`, `category_key`, `brain_ref`) AND `content_hash` equal to the recorded value. A concurrent §3.6 write that recreates the same locator with new content commits a new hash on the pointer row, so step 2's condition fails, deletes nothing, and the fresh content stays pointed — deletion never removes a pointer for content it did not delete. Interruption before step 1 commits leaves both stores unchanged. Interruption between the steps leaves a dangling pointer, which §4.5 repairs toward deletion within one reconciliation cycle. At no point does any compensation write content into the database (witness §7.10, including the concurrent-rewrite interleaving). ## 5. Consent schema and evaluation 1. **Exact columns.** Table `profile_consents`, columns exactly: | Column | Type | Constraints | | ---------------- | ----------- | ----------------------------------------------------------------------------- | | `id` | uuid | primary key | | `user_id` | text | NOT NULL, FK → users(id) ON DELETE CASCADE (the data subject, §3.6) | | `grantee_type` | text | NOT NULL, CHECK in (`agent`, `connector`, `feature`) | | `agent_id` | uuid | NULL, FK → agents(id) ON DELETE CASCADE (§5.2) | | `connector_id` | text | NULL, FK → custody_connector_registry(connector_key) ON DELETE CASCADE (§5.2) | | `feature_key` | text | NULL, FK → custody_feature_registry(feature_key) ON DELETE CASCADE (§5.2) | | `grantee_ref` | text | generated stored: COALESCE(agent_id::text, connector_id, feature_key) | | `category_key` | text | NOT NULL, FK → profile_category_registry(category_key) | | `state` | text | NOT NULL, CHECK in (`granted`, `revoked`) | | `granted_at` | timestamptz | NOT NULL | | `revoked_at` | timestamptz | CHECK ((state = 'granted') = (revoked_at IS NULL)) | | `actor` | text | NOT NULL (the authenticated principal that recorded the change) | | `audit_event_id` | uuid | NOT NULL, FK → the §1.8 audit event table | plus: the CHECK that exactly one referent column is non-NULL and matches the discriminant — `(grantee_type = 'agent') = (agent_id IS NOT NULL)` AND `(grantee_type = 'connector') = (connector_id IS NOT NULL)` AND `(grantee_type = 'feature') = (feature_key IS NOT NULL)` — and the partial unique index UNIQUE (`user_id`, `grantee_type`, `grantee_ref`, `category_key`) WHERE `state = 'granted'` — at most one active grant per (user, concrete grantee, category), as a database constraint. 2. **Grantee reference model.** A grantee is identified by (`grantee_type`, the matching referent column); its canonical display form is `:`. The discriminant set is closed at the three CHECK values, and every referent is a real foreign key: - `agent` → `agent_id` references the platform **`agents` table** (`agents.id`, uuid) as declared in the shared schema package (`packages/db`). This is a binding to the live schema, named honestly: the ratified `identity-lifecycle.md` defines no agent enrollment surface or enrolled-agent table, so there is no sibling-defined referent to bind to — the `agents` table is today's only platform representation of agents, and the §7.11 witness pins the FK's referenced table to that schema symbol. If a sibling amendment later introduces an agent-enrollment surface with its own table, an amendment to this contract re-binds the FK; until then, rows in `agents` are the closed set of possible agent grantees. - `connector` → `connector_id` references this contract's own table `custody_connector_registry`, columns exactly: `connector_key` (text, primary key), `since_version` (integer, NOT NULL), `created_at` (timestamptz, NOT NULL). Rows are added ONLY by amendment to this contract (§2.1 pattern); the table is EMPTY at version 1. - `feature` → `feature_key` references this contract's own table `custody_feature_registry`, with the same three-column shape (`feature_key` primary key) and the same amendment-only rule; EMPTY at version 1 (no feature grantee exists until an amendment names one). A consent row naming a nonexistent referent violates its FK and is refused by the database. A grant to one agent confers nothing on another agent of the same type; the constraint key includes `grantee_ref`, so two same-type grantees are distinct rows. 3. **Default deny.** Absence of an active `granted` row for (user, grantee, category) means no access. There are no implicit grants, no platform-admin bypass, and no mode in which default-deny is suspended. 4. **Mutation authority — subject only.** Every consent mutation (create, grant, revoke) must satisfy the single predicate: the authenticated actor IS the row's data subject — the server asserts `actor` equals the principal of the row's `user_id` before the mutation commits. A platform admin has no consent-mutation capability over another user's rows — an admin grant or revocation on another user's data is refused at write time, closing the write-side route around §5.3. There is no system-actor mutation predicate: revision 3's system auto-revocation is withdrawn (disclosed, §8), because grantee cessation is handled structurally instead — **Cessation by cascade**: when a grantee ceases to exist — the `agents` row is deleted, or a `custody_connector_registry` / `custody_feature_registry` row is removed by an amendment migration — the referent FK's `ON DELETE CASCADE` removes that grantee's consent rows in the same transaction as the referent deletion. Access ends with the rows (§5.3 default deny: no row, no access); no UPDATE is performed, so no actor question arises. The durable record of the grants and their lifecycle is the audit event table (§1.8): every mutation carried an `audit_event_id`, and audit events are not deleted by the cascade. The same rule already governs subject cessation via the `user_id` FK. §7.12 witnesses the subject predicate, its refusal complement, and the cascade; every §7.3-enumerated consent-mutation route asserts the subject predicate. 5. **Revocation and re-grant.** Revocation flips exactly one active row to `revoked` and stamps `revoked_at`; it is effective for every access evaluated after the revoking write commits. Revoked rows are retained as history and never mutated again — enforced by a database trigger on `profile_consents` that permits UPDATE only when it is the granted → revoked transition (the state flip plus the `revoked_at` stamp, every other column unchanged), and permits DELETE only when the row's referenced subject or grantee no longer exists — the trigger checks that the `users` row named by `OLD.user_id`, or the referent row named by the grantee column, is absent, which is true exactly during a §5.4 cessation cascade (referential cascades delete the parent row before the dependent rows, so the check distinguishes a cascade from a standalone DELETE). Every other UPDATE and every DELETE with both referents alive is rejected, so a revoked row cannot be flipped back to `granted` and history cannot be pruned by anyone, including through direct SQL (witness §7.13). A re-grant after revocation inserts a NEW row (append-only history) — repeated grant/revoke cycles are represented as successive rows, and the §5.1 partial unique index guarantees the old revoked rows cannot keep access live. 6. **Evaluation placement.** Access to sensitive content is mediated by the platform (Gateway/tooling) evaluating consent before any brain read on behalf of a grantee; the evaluation fails closed (`rbac-grant-model.md` §3.5 pattern), including when the consent state cannot be read (§2.5 pattern). The user reading their own data is not a grantee and needs no consent row. 7. Consent records govern agentic/feature access to user data. They are distinct from hierarchy grants (contract 2) and confer no platform authorization. ## 6. Mode application 1. The §2–§5 schemas are mode-independent: Standalone and Enterprise use the same tables and the same routing rule. 2. **Standalone layouts.** The D14 physical split remains a MAY. Its two valid layouts are: **split** — sensitive user content in a per-user brain repository separate from the estate mosaic-brain (the recommended default); **unsplit** — sensitive user content in the dedicated user-files subtree `users//` of the single mosaic-brain. §3 binds the logical user-brain region identically in both layouts; the layout election changes where the region lives, never whether routing applies. 3. **Election record.** The election lives in this contract's own one-row table `custody_config`, columns exactly: `id` (uuid, primary key), `singleton` (boolean, NOT NULL, DEFAULT true, CHECK (`singleton`), UNIQUE — the one-row rule as a database constraint: a second row cannot satisfy the CHECK and the UNIQUE index simultaneously), `standalone_layout` (text, NOT NULL, CHECK in (`split`, `unsplit`), default `split`), `registry_version` (integer, NOT NULL, §2.1), `elected_at` (timestamptz, NOT NULL), `actor` (text, NOT NULL), `audit_event_id` (uuid, NOT NULL, FK → the §1.8 audit event table). It is written at bootstrap and amended only by an explicit operator action; contract 6's exact, immutable mode record is not touched or extended by this contract. The row is also the §2.6 fence anchor. 4. **Phase timing.** v1 ships the §2–§6 schemas and the D14 database boundary, and the wizard collects no sensitive category in v1 (contract 3 §3), so v1 contains no sensitive write surface. §3 binds every sensitive write path from the moment one exists — the first profile surface that accepts a sensitive category (P2/P3) activates routing, consistent with contract 6 §5's v1 slice (D14 database boundary only, custody mechanics outside v1). 5. **Conversion precondition.** An operator electing `unsplit` accepts conversion-time partitioning: `mode-conversion.md` §4.2 requires the per-user partition to exist before the Enterprise flip, so conversion from an unsplit install performs the partitioning first. 6. In Enterprise, the split is mandatory (D3 table); no-leakage between users is enforced by §3 placement plus §5 default-deny — there is no cross-user read path to sensitive content through the database, because the database has no content to serve. ## 7. Verification requirements Binding on the implementing PRs. Every witness below MUST name, in its implementation, the exact tables, columns, commands, and source roots it scans; "the custody tables" means `profile_category_registry`, `profile_pointers`, `profile_consents`, `custody_config`, `custody_connector_registry`, and `custody_feature_registry`; "the declared profile table" means `profile_answers` (§3.5). 1. **Column-allowlist witness** (hierarchy contract §6.2 style): the custody tables' live column sets are exactly §2.1/§4.1/§5.1/§5.2/§6.3 and `profile_answers` is exactly §3.5; no platform table outside `profile_answers` carries profile answer content; every `audit_event_id` FK (§3.5, §4.1, §5.1, §6.3) references the same physical table that the contract-1 (hierarchy §5.2) audit write path inserts into (§1.8 binding); and every FK column's declared type equals the referenced column's live declared type — in particular each `user_id` is `text` matching `users.id` and `agent_id` is `uuid` matching `agents.id` (§3.6 binding). 2. **Column-type allowlist witness:** the custody tables and `profile_answers` use only the column types named in §2.1/§3.5/§4.1/§5.1/§5.2/§6.3 (uuid, text, integer, timestamptz, boolean) — no bytea, json/jsonb, array, vector, or tsvector column exists in them, closing the encoded/derived-representation routes by type rather than by probe alone. 3. **Closed write-route witness** (hierarchy contract §6.3, full prong set): a static, re-export-aware inventory over `apps/`, `packages/`, and `plugins/` (production code, tests excluded) enumerates every module that writes the custody tables, `profile_answers`, or profile answers generally, detecting access through each of hierarchy §6.3's prongs — schema-symbol imports, SQL string literals naming the tables, raw-execution primitives, and runtime code construction — with the database client reachable only through a closed importer allowlist. Every enumerated write route implements §3.3 registry routing inside the §2.6 fence, and every enumerated consent-mutation route asserts the §5.4 subject predicate; a route outside the enumeration, or a client import outside the allowlist, fails the assertion. **Write-set closure for sensitive paths:** for every enumerated route that performs a sensitive write, the same static inventory (same prong set) enumerates every database table that route's code path can write; the set MUST equal exactly {`profile_pointers`, the §1.8 audit event table} — the brain write goes through the declared brain-write surface, never the database. Any additional platform-table write statically reachable from a sensitive-write path — an embedding insert, a cache row, any derived representation in any generic table — fails the witness. Control: a mutated route that adds one insert into an arbitrary existing platform table is detected. This closes the §3.1 escape in which a conforming-looking route also writes derived sensitive data elsewhere: §7.5 probes for planted content; this closure bounds what a sensitive-write route can write at all. 4. **Closed brain-read witness** (same style): the inventory enumerates every production route that reads user-brain content on behalf of a grantee, and every enumerated route calls the §5.6 consent evaluation; a brain-read route outside the enumeration fails. 5. **Routing witness:** a sensitive-category answer submitted through the profile surface results in a brain write plus a pointer row and zero content bytes in the database; a non-sensitive answer lands in its declared table. The no-content probe is a negative control: the witness first plants the fixture text in a scratch column of a throwaway table to prove the probe detects it, then asserts its absence — as plaintext, base64, hex, and JSON-string encodings — across every column of every table in the platform database: §3.1 bans sensitive content in every column of every table, so the probe scope is the entire schema, not only the custody tables. 6. **Registry witnesses:** (a) the version-1 registry state is exactly the seven §2.2 rows with their classifications; (b) a `professional-background` answer routes relationally (or per the ruling's alternative); (c) an unknown `category_key` is refused with nothing stored (§2.3); (d) with the registry unreadable, the write is refused (§2.5); (e) a runtime insert/update/delete against `profile_category_registry` outside a migration is refused (§2.1); (f) a reclassification migration (non-sensitive → sensitive) on seeded data moves the values to brains, creates pointers, and leaves zero relational values (§2.4); (g) fence race: a profile write transaction opened before a reclassification migration takes its exclusive lock either commits before the lock is granted (its value is swept) or blocks and, on commit, routes by the new version — the witness drives both interleavings, INCLUDING the interleaving in which the writer holds `FOR SHARE` when the migration requests `FOR UPDATE`, the migration waits, the writer commits its relational row, and the migration's scan (running after lock grant, at `READ COMMITTED`, with the lock as its first statement per §2.6) is asserted to sweep that row — and asserts no relational value for the reclassified category exists after any interleaving completes (§2.6); the witness also asserts the migration implementation takes its exclusive lock as the first statement of its transaction (a migration variant that reads before locking fails review of this witness's static check); (h) with `custody_config.registry_version` set to a value the release's declared compile-time constant (§2.7, pinned by symbol) does not equal, profile writes and consent decisions are refused, and the witness asserts the version comparison reads the row under the §2.7 shared lock in the same transaction as the refused decision (§2.7); (i) sensitive → non-sensitive: after the version bump, existing brain content and pointers remain intact and readable, nothing is materialized into the database, and the next write for that category lands in `profile_answers` (§2.4). 7. **Server-side classification witness:** a client-supplied classification or routing override on a profile write is ignored; the registry decision is applied (§3.3). 8. **Pointer-constraint witnesses:** inserting a second pointer for the same (user, category, brain_ref) violates the §4.1 unique constraint; a `brain_ref` failing the §4.3 grammar (leading `/`, `..` segment, empty segment) is rejected by the CHECK; resolution of a valid `brain_ref` under user A's row never reads user B's brain (owner binding, §4.3); with a symlink committed at a locator's path or as an intermediate segment, resolution is refused and no content outside the owner's brain is read (§4.3 tree-object rule). 9. **Hash witnesses:** `content_hash` verifies via the keyed §4.4 construction; the database value alone, without the external key, does not equal any unkeyed digest of the fixture content (oracle control); the same fixture content stored for two users, and for two categories of one user, yields different stored hashes (domain-separation control — no cross-row equality oracle); after a key rotation, a pointer written under the old key id still verifies and a new write stores the new key id; a mismatch refuses the read and stamps `mismatch_at`, subsequent reads stay refused, reconciliation of a persistently mismatched pointer retains it flagged without deleting brain content or writing content to the database, and the subject's re-write clears the flag (§4.4, §4.6). 10. **Orphan and deletion-protocol witnesses:** starting from a PRE-EXISTING orphan (content already absent, pointer present), the next triggered reconciliation deletes the pointer and writes no content anywhere in the database (§4.5). The §4.7 protocol is fault-injected at both interruption points: killed before the brain commit, both stores are unchanged; killed between the brain commit and the pointer delete, the dangling pointer is deleted by the next reconciliation — and at no point is content written to the database or restored to the brain. **Concurrent-rewrite interleaving:** deletion step 1 commits; before step 2 runs, a concurrent §3.7 write recreates the same `brain_ref` with new content and completes its pointer upsert (new `content_hash`); step 2 then executes its compare-and-delete — the witness asserts the DELETE matches zero rows, the fresh pointer survives, its content resolves and verifies, and no unpointed content and no dangling pointer exist afterward (§4.7). 11. **Default-deny and granularity witnesses:** an agent grantee with no active row is refused; with a `granted` row for category A only, category B is refused; with agent X granted, agent Y of the same type is refused for the same (user, category); `connector` and `feature` are exercised via their FK refusal paths, since both registries are empty at version 1 (§5.2); a consent insert naming a nonexistent agent id violates the `agent_id` FK, and the witness pins that FK's referenced table by symbol identity to the `agents` table exported by the shared schema package (§5.2 binding); a platform admin requesting another user's sensitive content through any production read surface is refused — admins are not a grantee type and default-deny applies (the access-time complement of §7.12's write-time refusal); a hierarchy owner or manager grant over the subject confers no consent access (§5.7); with the consent state unreadable, evaluation refuses (§5.6). 12. **Mutation-authority witnesses:** a platform admin attempting to create a grant on another user's data is refused at write time; a hierarchy owner or manager likewise; the data subject succeeds; `actor` equals the subject's principal on every mutation row — there is no non-subject mutation path (§5.4). **Cessation cascade:** deleting an agent's `agents` row removes that agent's consent rows in the same transaction via the FK cascade, the next consent evaluation for that grantee refuses (no row), the linked audit events survive, and no other grantee's rows are touched; a connector-registry amendment migration removing a key cascades identically (§5.4). 13. **Revocation/re-grant witnesses:** after revocation commits, the next evaluation refuses and the revoked row persists unmutated; a full grant → revoke → re-grant cycle yields two rows (one revoked, one active) and access follows only the active row; a second concurrent grant attempt for the same key violates the §5.1 partial unique index; a direct SQL UPDATE flipping a revoked row back to `granted`, an UPDATE altering any other column of a revoked row, and a standalone DELETE of a row whose subject and grantee both still exist are each rejected by the §5.5 trigger; the complement controls pass: deleting the subject's `users` row cascades the subject's consent rows, and deleting the grantee's referent row cascades that grantee's rows — both permitted by the trigger's absent-referent prong (§5.5). 14. **Self-access witness:** the data subject reads their own content without consent rows (§5.6). 15. **Mode witnesses:** the custody-table schemas are byte-identical under Standalone and Enterprise migrations (§6.1); a fresh Standalone bootstrap records `standalone_layout = 'split'` by default, and an explicit opt-out records `unsplit` with actor and audit linkage (§6.3); conversion from an `unsplit` install refuses the mode flip until partitioning has produced the per-user region (§6.5, with contract 6 §4.2); in an Enterprise fixture with two users, user A's grantee with a grant on user A cannot reach any of user B's content (§6.6); inserting a second `custody_config` row violates the §6.3 singleton constraint. 16. **Ordered-write protocol witnesses:** the §3.7 protocol is fault-injected at both interruption points: killed before the brain commit, both stores are unchanged and the caller receives no acknowledgment; killed between the brain commit and the pointer upsert, the brain holds unpointed content, no pointer row exists, no read surface serves the content, and the caller received no acknowledgment — then the retried write recommits the same deterministic locator, completes the pointer upsert, and the witness asserts the converged state (one pointer, verifying hash, content served to the subject). A static control asserts the implementation orders content before pointer: no enumerated sensitive-write route creates a pointer row before its brain commit has been confirmed (§3.6). ## 8. Drafting additions (PRD §12.1 disclosure) The following are proposed drafting additions, visible here for ratification; none is claimed as a PRD mandate, and each is severable: 1. The `feature` grantee type, with a contract-owned registry table that is empty at version 1 (§5.2). 2. Append-only consent history: re-grants insert new rows; revoked rows are retained unmutated, enforced by trigger (§5.5). 3. Cessation by cascade: when a grantee or subject referent row is deleted, consent rows are removed by `ON DELETE CASCADE` in the same transaction; access ends through default deny, and durable history is carried by the §1.8 audit event table. The trigger's DELETE prong permits a child-row DELETE only when the referenced subject or grantee row is absent (§5.4, §5.5). This replaces the revision-2 system-actor auto-revocation predicate, which is withdrawn. 4. The `custody_config` election record for the Standalone layout, singleton by constraint (§6.3). 5. The domain-separated keyed `content_hash` construction, its key rotation rule, and the `mismatch_at` pointer state (§4.4, §4.6). 6. The bounded dangling-pointer reconciliation policy and the ordered managed-deletion protocol (§4.5, §4.7). 7. The column-type allowlist verification requirement (§7.2). 8. The amendment-only, versioned registry classifier itself, its unknown-key refusal, and both reclassification transition policies (§2.1, §2.3, §2.4). 9. The custody-config write fence and the declared supported-version refusal, including the revision-4 pinning: both fence transactions run at `READ COMMITTED` with the migration's `SELECT ... FOR UPDATE` as the first statement of its transaction, and the supported version is an exported compile-time constant in the custody module of the shared schema package, read under the same lock as the decision it gates (§2.6, §2.7). 10. Subject-only consent mutation authority (§5.4, first predicate). 11. The declared non-sensitive profile table `profile_answers` and its closed schema (§3.5). 12. The typed grantee referent columns, the `custody_connector_registry` and `custody_feature_registry` tables, the audit-table binding by identity (§5.1, §5.2, §1.8), and the agent-grantee binding by symbol identity to the `agents` table exported by the shared schema package (§5.2, §7.11). 13. Shipping all §2–§6 schemas in v1 ahead of any sensitive write surface (§6.4). 14. The committed-tree-only resolution rule: content reads resolve only through the committed tree of the brain repository, and symlink or non-tree/non-blob resolution is refused (§4.3, §7.8). 15. The text user-key binding: every `user_id` column is `text` matching the live `users.id` declaration, values are opaque strings not guaranteed to be UUIDs, and any sibling user-key migration triggers amendment of this contract (§3.6, §7.1). 16. The ordered sensitive-write protocol for ordinary writes: content-first at a deterministic locator, pointer upsert second in its own transaction, acknowledgement only after the pointer commit, idempotent retry convergence, and the pointer-before-content prohibition (§3.7, §7.16). 17. The compare-and-delete managed-deletion step: deletion step 2 is conditioned on the `content_hash` recorded in step 1, so a concurrent recreate of the same locator is never unpointed by a stale deletion (§4.7, §7.10). 18. The sensitive-path write-set closure: a static inventory of every table a sensitive-write route can write, required to equal exactly the pointer table plus the §1.8 audit event table (§7.3). The revision-1 "reporting" rationale for relational background/education storage is withdrawn; the traced rationale is agent configuration (PRD D4). ## Ruling request Ruling requested (one decision): classify `professional-background` and `education` as **non-sensitive** in the version-1 registry (stored relationally, used for agent configuration) — or, as the alternative, classify both **sensitive** (user-brain custody with pointers), accepting that agent-configuration reads then go through pointer indirection and consent evaluation?