Files
ng-eventually/docs/api-contract.md
T
Sylvain Duchesne c42236bc00 test: l'inventaire du contrat est tenu par un test, plus à la main
L'appendice « inventaire des exports pour diff » d'`api-contract.md` était
périmé : il listait encore les internes du shim dans le namespace
`storeRegistry` alors que l'entrée avait été réduite à sept fonctions. Or c'est
précisément l'instrument qu'on diffe quand la surface bouge — et un inventaire
périmé est pire qu'aucun, il se lit comme vérifié.

Régénéré depuis les `export`, et désormais tenu par `vocabulary.test.ts` : si la
liste et le code divergent, le test échoue. Le document suit le code au lieu de
dériver.

Au passage, le contrôle de vocabulaire suit maintenant `export * from`, ce qui
lui a fait voir trois types qu'il ignorait — d'où le suffixe structurel `…Like`
(`NgLike` = « ce qui a la forme de ng ») déclaré comme de la glue de typage et
non un mot de domaine.

162 tests unitaires, typecheck src/test/e2e vert.
2026-08-04 18:14:53 +02:00

42 KiB

API contract — what @ng-eventually/client exposes today, and what the future SDK should expose per subject

Updated 2026-08-03, after the source layout was reorganised by migration fate (docs/source-layout-by-fate.md). Paths, and three names, changed under this document: readModel became the directly-exported readUnion; accounts / AccountRecord / AccountStorage became virtualUsers / VirtualUserRecord / VirtualUserStorage (module shared-wallet/virtual-users.ts); store-registry-api.ts became surface/placement.ts. Two modules were created and are covered here: emulated-verifier/branch-registers.ts (the four durable registers, split out of the shim) and shared-wallet/bootstrap.ts (the injection store, split out of the /polyfill entry). The subject-by-subject rulings below are unaffected — what moved is where the code lives, not what it promises.

Scope: the APP-FACING contract only. Everything reachable from the two published entry points, and nothing else. The library's internal modules — the shim machinery, the read paths, the boundary guards — are held to the same standard (as close as possible to what NextGraph does or plans) but have their own document, docs/internal-contract.md: a consumer never reads that one, a maintainer does. This split was made on 2026-08-03, together with the export change described in § 15.

Scope. The real exported surface of @ng-eventually/client (verified against the export statements in packages/client/src/index.ts and packages/client/src/polyfill.tspackage.json maps exactly two entry points, . and ./polyfill), and, for each subject, the target signature the future NextGraph JS SDK is expected to expose. Written 2026-08-03, verified against the nextgraph-rs clone (HEAD 213338f6, 2026-05-16) and the installed @ng-org/web@0.1.2-alpha.13 type declarations (node_modules/.bun/@ng-org+web@0.1.2-alpha.13/node_modules/@ng-org/web/dist/index.d.ts, hereafter index.d.ts).

How to read the epistemic labels. Every target-side claim carries one of:

  • PASSTHROUGH (level 3 / level 2, VERIFIED) — the target function exists today; the lib forwards to it. Citation into nextgraph-rs or the installed .d.ts. Level numbers per README.md § The three references: 3 = JS ORM (sdk/js/orm), 2 = wasm binding / @ng-org/web (sdk/js/lib-wasm, sdk/js/web), 1 = Rust engine (engine/).
  • LEVEL-1 SHAPE (model VERIFIED, JS surface ASSUMED) — the engine's model constrains the shape and is cited, but no JS surface exists at any level, so the signature offered here is this library's invention. The future SDK's name and parameter order for it are unknown.
  • ASSUMPTION — nothing at any layer constrains this; the bet and what bounds it are stated.
  • NO COUNTERPART — the subject has no image in the target at any layer, usually because it is shared-wallet machinery that disappears at migration. That is a finding about the emulation, not a gap in the target.

Per the design principle (README.md § Design principle): an absent implementation is never treated as evidence about the future — "the engine does not do X" and "the SDK will not offer X" are kept apart throughout.


1. Bootstrap and configuration

Today — @ng-eventually/client/polyfill (everything here is removed at migration)

// polyfill.ts:44
export interface EventuallyConfig {
  ng: NgLike;
  useShape: UseShapeLike;
  sharedWallet?: { name: string; secret: string };
  currentUser?: PrincipalId;
  debugAccessLog?: boolean;
  init?: (...args: any[]) => any;
  initNg?: (...args: any[]) => any;
}
// polyfill.ts:99
export function configure(c: EventuallyConfig): void;
// polyfill.ts:113 — tests only
export function resetConfig(): void;

// polyfill.ts:24
export interface StoreRegistryDeps {
  getSession: () => Promise<RegistrySession>;
  normalizeId?: (id: string) => string;
  pointerGuard?: { attempts?: number; baseMs?: number; maxStepMs?: number };
}
// polyfill.ts:124
export function configureStoreRegistry(deps: StoreRegistryDeps): void;
// polyfill.ts:161 — tests only
export function resetStoreRegistry(): void;

// polyfill.ts:106 / :153 — both tagged @internal, exported so the SDK-shaped wrappers can reach the injected SDK
export function getConfig(): EventuallyConfig;
export function getStoreRegistryDeps(): ResolvedRegistryDeps;

Target

NO COUNTERPART, by design. The whole subject is the polyfill bootstrap: it exists to inject the real SDK without a hard import (build-alias safety). At migration the consumer initializes the real SDK directly, with the two calls in § 2, and configure / configureStoreRegistry are deleted (docs/migration-guide.md § 7). Nothing in the target takes an "injected ng".


2. Lifecycle

Today — @ng-eventually/client

// lifecycle.ts:11 — forwards to the real @ng-org/web init injected at configure()
export function init(...args: any[]): any;
// lifecycle.ts:18 — forwards to the real @ng-org/orm initNg injected at configure()
export function initNg(...args: any[]): any;

Target

PASSTHROUGH, VERIFIED at both levels. The wrapper's ...args: any[] is deliberately shapeless; the real signatures it forwards to are:

// level 2 — @ng-org/web: index.d.ts:108, source sdk/js/web/src/index.ts:51
export declare const init: (callback: Function | null, singleton: boolean, access_requests: any) => Promise<void>;

// level 3 — @ng-org/orm: sdk/js/orm/src/connector/initNg.ts:51 (exported as initNg from core.ts)
export function initNgSignals(ngImpl: NG, session: Session): void;

// level 2 — the Session initNg consumes: index.d.ts:264-272
export declare type Session = {
  session_id: string | number;
  protected_store_id: string;
  private_store_id: string;
  public_store_id: string;
  ng: typeof NGModule;
  [key: string]: unknown;
};

Divergence: none in behaviour (pure forwarding), but the wrapper erases the parameter types. A consumer typing calls against the wrapper learns nothing it must unlearn — it just gets no compile-time help the real SDK would give.


3. The ng object

Today — @ng-eventually/client

// index.ts:55
export const ng: Record<string, any>;
// type re-export, index.ts:50
export type { NG } from "@ng-org/web";

ng is a Proxy (ng-proxy.ts:10) forwarding every property to the injected real ng, overriding exactly two things: login / session_start (currently a passthrough with a TODO for shared-wallet credentials) and sparql_update (the emulated write-cap guard, rejecting a write when a write policy governs the anchored document and the current user lacks the cap).

Target

PASSTHROUGH (level 2, VERIFIED). export declare const ng: NG with NG = typeof NGModule, 77 exported members (index.d.ts:136-231). The surface is identical by construction — the proxy adds no member and removes none.

The two overrides:

  • session_start(wallet_name: string, user_id: any): Promise<any> (index.d.ts:276) — target signature unchanged; only the emulated credential injection disappears.
  • sparql_update(session_id: any, sparql: string, nuri: any): Promise<any> (index.d.ts:297) — target signature unchanged. The native enforcement the guard stands in for is the engine's permission model (verify_perm, engine/repo/src/commit.rs:897), which today is called only from tests (its enclosing Commit::verify has no runtime caller — see docs/nextgraph-current-state.md § Author-signature verification). That absence says nothing about the target: write permissions are the engine's declared model, so the guard's behaviour (a refused write) is target-shaped even though its mechanism (a JS-side check) is emulation. Known limit, documented in README.md: the guard fires only on this proxy, and the lib's own writers call the injected ng directly, so it is best-effort until P1b.

4. Reactive typed reads — useShape

Today — @ng-eventually/client

// use-shape.ts:12
export function useShape(shapeType: unknown, scope: unknown): unknown;
// type re-exports, index.ts:48-49
export type { ShapeType, BaseType, Schema } from "@ng-org/shex-orm";
export type { DeepSignalSet } from "@ng-org/alien-deepsignals";

Behaviour: forwards to the injected real useShape; once any emulated cap exists (caps.isEnforcing()), the returned set is wrapped in a read-filtered view keeping only items whose document cap the current holder has.

Target

PASSTHROUGH (level 3, VERIFIED), with a signature the wrapper widens. The real hook:

// level 3 — @ng-org/orm/react: sdk/js/orm/src/frontendAdapters/react/useShape.ts:86-124
const useShape = <T extends BaseType>(
    shape: ShapeType<T>,
    scope: Scope | string | undefined
) => DeepSignalSet<T>;

// its Scope — sdk/js/orm/src/model/types.ts:25-38 (NOT this lib's Scope, see § 12)
export type Scope = {
  graphs?: string[] | string;
  subjects?: string[];
};

The read filter disappears at migration: in the target, isolation is cryptographic — a repo whose cap the wallet does not hold is never decrypted, a union read over it yields nothing, and a targeted read errors RepoNotFound (engine/verifier/src/request_processor.rs:155,163 via resolve_target). VERIFIED at level 1; the consumer-visible result (you only see what you hold) is the same, which is the point of the emulation.

Divergence to note: the wrapper types everything unknown, losing the generic T. A consumer wanting typed sets today must cast; at migration the real generic signature gives it back. Nothing to unlearn, only ergonomics deferred.


5. Reactive typed reads with load state — watchShape

Today — @ng-eventually/client

// watch-shape.ts:73
export interface ShapeQuery<T = UnionSubject> {
  data: T[];
  isPending: boolean;
  isSuccess: boolean;
  isError: boolean;
  error: unknown;
}
// watch-shape.ts:90
export interface ShapeObservable<T = UnionSubject> {
  getSnapshot(): ShapeQuery<T>;
  subscribe(onChange: () => void): () => void;
  refetch(): void;
}
// watch-shape.ts:166
export function watchShape<T = UnionSubject>(
  shapeType: unknown,
  scope: Scope,
): ShapeObservable<T>;

Target

Partly ASSUMPTION — flagged deliberately. surface/watch-shape.ts's header says it "anticipates NextGraph's planned useShape(shape, scope) upgrade, which will natively distinguish 'sync in progress' from 'synced but empty'". No provenance for that plan exists in this repo's docs or in the nextgraph-rs clone — treat the "planned upgrade" as an assumption, not a stated NextGraph direction. What IS verified at level 3 is that the distinction is expressible today, just not through the hook:

// level 3, VERIFIED — sdk/js/orm/src/connector/GraphOrmSubscription.ts:228,260,274
OrmSubscription.getOrCreate<T extends BaseType>(shape: ShapeType<T>, scope: NormalizedScope): OrmSubscription<T>;
get readyPromise(): Promise<void>;   // resolves when the subscription is synced — the native "no longer pending" signal
public close(): void;

So the constraint on the bet: the target can already answer "synced?" (readyPromise), and useShape today returns "an empty set, if still loading" (its own doc comment, useShape.ts:29-31) — indistinguishable from synced-empty. watchShape surfaces the distinction with a TanStack-useQuery-minimal vocabulary (isPending/isSuccess/isError), which is a shape of this library's choosing. If the future hook exposes load state under different names, the consumer's binding code changes; the underlying distinction it teaches (pending ≠ empty) is target-expressible and safe to learn.


6. One-shot listing — the read-model

Today — @ng-eventually/client

// read-model.ts:59
export interface UnionSubject {
  subject: string;
  graph: string;
  props: Record<string, string[]>;
}
// read-model.ts:140
export async function readUnion(docs: Nuri[]): Promise<UnionSubject[]>;

Behaviour: one anchored sparql_query per doc (default-graph body, no GRAPH wrapper), parallel, per-doc failure tolerance, cap filter applied inside, machinery subjects dropped.

Target

Two verified counterparts, one per level; neither returns UnionSubject — that grouping is lib-invented:

// level 2, VERIFIED — the primitive readUnion composes: index.d.ts:295, source sdk/js/lib-wasm/src/lib.rs:352 (nodejs) / :555 (web)
declare function sparql_query(session_id: any, sparql: string, base: any, nuri: any): Promise<any>;

// level 3, VERIFIED — the one-shot typed read: sdk/js/orm/src/connector/getObjects.ts:23
export async function getObjects<T extends BaseType>(
    shapeType: ShapeType<T>,
    scope: Scope | string
); // returns a deep-cloned Set of matching objects

The anchored-read mechanics are level-1 VERIFIED: an anchor restricts the query to that repo's graph as default graph (resolve_target_for_sparql, engine/verifier/src/request_processor.rs:256-285), an anchorless query unions every named graph in the session store (same function, UserSite → Noneset_default_graph_as_union). At migration readUnion survives as composition (the anchored per-doc read is native); a consumer that wants typed results should be on useShape/getObjects, not on UnionSubject — the property-bag shape is a polyfill artifact, kept generic precisely so the consumer maps it into its own types and can drop it later.


7. Raw document / SPARQL primitives — docs.*

Today — @ng-eventually/client (namespace docs)

// docs.ts:46
export async function docCreate(
  sessionId: string,
  crdt: string,
  cls: string,
  dest: string,
  store?: unknown,
): Promise<Nuri>;
// docs.ts:85
export async function sparqlUpdate(
  sessionId: string,
  query: string,
  anchor?: Nuri,
  label = "sparqlUpdate",
): Promise<void>;
// docs.ts:130
export async function sparqlQuery(
  sessionId: string,
  query: string,
  base?: string,
  anchor?: Nuri,
  label = "sparqlQuery",
): Promise<unknown>;
// docs.ts:113 — machinery, see § 15
export async function depositInto(
  sessionId: string,
  query: string,
  targetInbox: Nuri,
  label = "deposit",
): Promise<void>;

Target

PASSTHROUGH (level 2, VERIFIED) — these mirror the real methods 1:1 minus the trailing label (a lib-internal access-log tag, never forwarded):

// index.d.ts:60 — the installed web SDK's doc_create
declare function doc_create(session_id: any, crdt: string, class_name: string, destination: string, store_repo: any): Promise<any>;
// index.d.ts:297
declare function sparql_update(session_id: any, sparql: string, nuri: any): Promise<any>;
// index.d.ts:295
declare function sparql_query(session_id: any, sparql: string, base: any, nuri: any): Promise<any>;

depositInto has NO COUNTERPART as a SPARQL write: upstream a deposit is a sealed message, not an update into the recipient's graph (§ 9). It exists only because the emulated inbox is an RDF document.

Store targeting — finer than "not JS-constructible". (The other docs were corrected on 2026-08-03 to match this entry; they used to state the blanket form.) Verified in the clone:

  • The web wasm variant (sdk/js/lib-wasm/src/lib.rs:1575, #[cfg(not(wasmpack_target = "nodejs"))]) deserializes its 5th argument as Option<StoreRepo> via serde — so a value CAN be passed, but no JS helper exists to build the serde form, which keeps it out of practical reach. The published .d.ts documents this 5-arg form.
  • The nodejs variant (lib.rs:1618, 6 args) takes store_type: Option<String> + store_repo: Option<String> and builds the store via StoreRepo::from_type_and_repo(store_type, repo_id_str) with store_type ∈ "public" | "protected" | "private" | "group" (sdk/rust/src/local_broker.rs:2969-2987, engine/repo/src/types.rs:819-828).

So the target's direction for scope placement is already visible in the source (level 2, VERIFIED, nodejs SDK): name the store by type + repo id strings. The migration-guide's anticipated getNativeStore(scope)-style resolver should expect to produce exactly that pair (or the serde StoreRepo once a web helper lands) — not a new concept.


8. Per-document subscription — subscribeDoc

Today — @ng-eventually/client

// subscribe.ts:47,60,79
export type DocChange = unknown;
export type DocChangeType = string | undefined;
export type Unsubscribe = () => void;
// subscribe.ts:69
export function docChangeType(resp: DocChange): DocChangeType;
// subscribe.ts:104
export function subscribeDoc(
  nuri: Nuri,
  onChange: (r: DocChange, type: DocChangeType) => void,
): Unsubscribe;
// subscribe.ts:184
export function subscribeDocs(
  nuris: Nuri[],
  onChange: (nuri: Nuri, r: DocChange, type: DocChangeType) => void,
): Unsubscribe;

Target

PASSTHROUGH (level 2, VERIFIED) with two deliberate ergonomic deltas:

// index.d.ts:66, source sdk/js/lib-wasm/src/lib.rs:1908
declare function doc_subscribe(repo_o: string, session_id: any, callback: Function): Promise<any>;
  • The real call is async and resolves to an unsubscribe function; the wrapper returns the unsubscribe synchronously and honours an early cancel when the promise settles. A consumer coding against the sync return will keep working against the real SDK only through an adapter — a small, known unlearn, traded for not forcing await on every subscription site.
  • The real callback receives one argument, the serialized AppResponse ({ V0: { State | Patch | TabInfo | … } }); the wrapper adds a second, pre-extracted type. docChangeType is a convenience over the verified payload shape (pinned by the e2e CONTRACT-3 probe), not an upstream API.
  • subscribeDocs has NO COUNTERPART and needs none: it is client-side composition (a set of doc_subscribe with per-doc error isolation). The upstream fan-out primitive that looks like it (orm_start_graph(graph_scope, …), index.d.ts:243) aborts wholesale on one RepoNotFound (sdk/js/ormengine/verifier/src/request_processor.rs:53-66) — the reason this composition exists.

9. Inbox — deposits, and cap delivery

Today — @ng-eventually/client (namespace inbox; shareCap also re-exported from /polyfill)

// inbox.ts:48,58
export interface Deposit {
  from: PrincipalId | null;
  payload: unknown;
  ts: number;
}
export interface PostOptions {
  from?: PrincipalId | null;
  payload: unknown;
  ts?: number;
}
// inbox.ts:140
export async function post(targetInbox: Nuri, opts: PostOptions): Promise<void>;
// inbox.ts:215
export async function postToDocument(doc: Nuri, opts: PostOptions): Promise<void>;
// inbox.ts:282
export async function shareCap(cap: ReadCap, toInbox: Nuri): Promise<void>;
// inbox.ts:339
export async function read(targetInbox: Nuri): Promise<Deposit[]>;
// inbox.ts:419
export const materialize = read;
// inbox.ts:441
export async function readSynced(targetInbox: Nuri): Promise<Deposit[]>;
// inbox.ts:466
export async function processInbox(targetInbox: Nuri): Promise<Deposit[]>;
// inbox.ts:492
export function watch(
  targetInbox: Nuri,
  onDeposits: (deposits: Deposit[]) => void,
  _opts?: { intervalMs?: number },
): () => void;

Target

LEVEL-1 SHAPE throughout — the model is VERIFIED, every JS signature here is this library's invention. There is no inbox method in @ng-org/web (none in the 77 index.d.ts exports, re-verified), and the verifier's dispatch has no InboxPost arm (arms actually handled listed at engine/verifier/src/request_processor.rs:53-1444, re-verified). The engine model that constrains the shape:

  • An inbox is a keypair on exactly one repo: pub inbox: Option<PrivKey> (engine/repo/src/repo.rs:126); routing is inboxes: HashMap<PubKey, RepoId> on the verifier (engine/verifier/src/verifier.rs:105, looked up at :1677, inserted at :1928).
  • A message is sealed to the inbox pubkey and carries no target documentInboxMsgBody { to_overlay, to_inbox: PubKey, from_overlay: Option<OverlayId>, from_inbox: Option<PubKey>, … } (engine/net/src/types.rs:4265). The address identifies the recipient repo; nothing else is needed. This is why Deposit has no document field and why post takes only the inbox NURI.
  • from optional upstream (from_inbox: Option<PubKey>) — the "identified if known, anonymous otherwise" behaviour PostOptions.from mirrors, including the null-means-anonymous case.
  • The recipient's own verifier unseals and applies queued messages when it processes its inbox (engine/verifier/src/verifier.rs:1674-1690process_inbox); an inbox is a consumed queue, not a store you re-read.

Consequences per function:

  • post / postToDocument — the sender-side act exists in the model (the broker routes InboxPost natively, engine/net/src/server_broker.rs); its JS surface does not. The future SDK's name and signature are unknowndocs/nextgraph-current-state.md:187 records that nothing is announced. postToDocument's resolution step (find the document's inbox address) rides on a deliberate divergence: this lib PUBLISHES the address on the document (Header-branch emulation), whereas upstream an address is only ever TRANSMITTED (ContactDetails carries ng:site_inbox/ng:protected_inbox, engine/verifier/src/inbox_processor.rs:778-830; the verifier's inboxes table is session-local, rebuilt empty — verifier.rs:520,2820). Documented in docs/briefs/2026-08-03-document-inbox-addressing.md.
  • shareCap — a gap upstream, not a disagreement, verified at both ends: ContactDetails.read_cap: Option<ReadCap> exists (engine/net/src/types.rs:4233) but building a message with it is unimplemented!() (types.rs:3786), its only caller passes with_readcap: false, and the receiving arm never reads the field (inbox_processor.rs:778-830). InboxMsgContent::Link is a unit variant carrying nothing (types.rs:4252) — do not read it as the delivery channel. The recipient-side filing the lib emulates is real: AddLink { read_cap } on the User branch (engine/repo/src/types.rs:1939-1948). The consumer's act (share one document's cap to one inbox) is target-shaped; only the transport is emulated.
  • read / materialize / readSynced / processInbox / watchstand-ins for the recipient's own verifier processing, which has no consumer-facing JS surface upstream and may never have this list-of-deposits shape. A consumer should treat "my inbox gets processed when I connect, and applied caps just appear in what I hold" as the durable contract (that is what connectedUser automates, § 13); code that leans on enumerating raw deposits as a mailbox UI is coding against emulation detail it may have to unlearn. The consumer-payload case (Deposit.payload as app data) maps to InboxMsgContent variants upstream (types.rs:4249-4260), of which only ContactDetails and SocialQuery are more than unit variants today — arbitrary app payloads through the inbox are an ASSUMPTION, constrained by the model only in that messages are sealed, per-recipient, and applied by the recipient.
  • watch's _opts?: { intervalMs?: number } is accepted and ignored (kept for signature compatibility with a removed polling watcher) — dead surface, see § 15.

10. Capabilities — possession, not ACL

Today

// @ng-eventually/client — nuri.ts:50,60 (type guards; the only doors from string to typed)
export function isNuri(s: string): s is Nuri;
export function hasReadCap(s: string): s is ReadCap;

// @ng-eventually/client — types.ts:11,34
export type Nuri = `did:ng:${string}`;
export type ReadCap = `did:ng:${string}:r:${string}`;

// @ng-eventually/client/polyfill — polyfill.ts:205
export function capFor(nuri: Nuri): ReadCap | undefined;
// polyfill.ts:193 — hands out the registry itself
export function getCaps(): CapRegistry;
// polyfill.ts:215 — tests / fresh wallet only
export function resetCaps(): void;

// @ng-eventually/client/polyfill — caps.ts:59 (class CapRegistry)
constructor(holder?: () => PrincipalId | null);
mint(nuri: Nuri): ReadCap;
learn(cap: ReadCap): void;
capFor(nuri: Nuri): ReadCap | undefined;
publishRepoLink(nuri: Nuri): ReadCap;
isPublished(nuri: Nuri): boolean;
open(nuri: Nuri, scope: Scope): ReadCap;
isEnforcing(): boolean;
onChange(listener: () => void): () => void;
grantWrite(doc: Nuri, principal: PrincipalId): void;    // decorative until P1b
governsWrite(doc: Nuri): boolean;                        // decorative until P1b
canWrite(doc: Nuri, principal: PrincipalId | null): boolean; // decorative until P1b
hasWritePolicy(): boolean;                               // decorative until P1b
clear(): void;

Target

LEVEL-1 SHAPE. There is no capability API at level 2 or 3 (no cap method in index.d.ts, none in the ORM), and there is nothing to introspect upstream: reading is key possession. The model, VERIFIED:

  • A ReadCap is the serialized ObjectRefformat!("r:{}", base64_url::encode(&ser)) (BlockRef::readcap_nuri, engine/repo/src/types.rs:518-521). The lib's ReadCap template-literal grammar (…:r:{cap}) is upstream's, with the stand-in constant OK in place of the key material (P1b swaps the value, not the shape).
  • Caps live in two durable registers by origin: created documents → AddRepo { read_cap } on the store's Store branch (engine/repo/src/types.rs:1890-1899, committed by doc_create via send_add_repo_to_store, engine/verifier/src/request_processor.rs:698); received caps → AddLink { read_cap } on the private store's User branch (types.rs:1939-1948).
  • The one path that loads a repo from a cap is pub(crate)Verifier::load_repo_from_read_cap (engine/verifier/src/verifier.rs:2237) — unexposed to JS.

capFor(nuri) asks the only question the model admits — "do I hold this document's key?" — and returning undefined is the whole possible answer. There is no "may principal P read D?" anywhere, and the future SDK cannot offer one without inventing an ACL the engine does not have. That absence is a finding about the target's model, not a missing feature: a consumer should never expect a cap-introspection API.

The CapRegistry class itself is machinery (the in-memory record of what the connected holder holds — upstream's local user storage). The consumer-facing surface is capFor + the acts (shareCap, creating a document, processing one's inbox); see § 15.


11. NURI and SPARQL string utilities

Today — @ng-eventually/client

// sparql.ts:32,66,95
export function escapeLiteral(value: string): string;
export function escapeIri(value: string): string;
export function assertNuri<T extends string>(nuri: T): T;

(isNuri / hasReadCap are in § 10; targetOf, parseNuri, mintCap exist in nuri.ts but are not exported from either entry point — deliberately: nothing on the surface turns a bare reference into a cap.)

Target

NO COUNTERPART at any level, and none expected. Neither @ng-org/web nor the ORM exposes SPARQL escaping helpers (re-verified against index.d.ts and sdk/js/orm/src); the engine does its own ad-hoc literal escaping internally where it builds SPARQL (e.g. update_header, engine/verifier/src/request_processor.rs:196-208). These are generic injection-safety utilities, not SDK anticipation: they stay useful to any app that builds SPARQL by interpolation, against this lib or the real SDK. Nothing to unlearn; also nothing that migration replaces.


12. Scope resolution, per-entity documents, and the store registry

Today — @ng-eventually/client (namespace storeRegistry) — plus Scope from types.ts

Narrowed 2026-08-03. The entry used to re-export the WHOLE store-registry module. It now re-exports an app-facing slice (src/surface/placement.ts): createEntityDoc, listMyEntityDocs, resolveScopeGraph, resolveWriteGraph, userInbox, openDocumentInbox, documentInboxAddress. The rest — userStoreDoc, isOwnInbox, myInboxes, addLink, readLinks, resolveAccount, ensureAccount, reservedAccount, resetRegistryCache, and the VirtualUserRecord / RegistrySession types — is no longer importable from @ng-eventually/client and is covered by docs/internal-contract.md. The signatures below are kept for the record, marked accordingly.

// types.ts:38 — NB: NOT the ORM's Scope (a graphs/subjects filter); this is the store scope
export type Scope = "public" | "protected" | "private";

// store-registry.ts:90,234
export interface VirtualUserRecord {
  id: string;
  docPublic: Nuri;
  docProtected: Nuri;
  docPrivate: Nuri;
}
export interface RegistrySession {
  sessionId: string;
  privateStoreId: string;
  protectedStoreId?: string;
  publicStoreId?: string;
}

// consumer-facing, designed to survive migration (store-registry.ts:917, 1358, 1079, 735, 698)
export async function createEntityDoc(id: string, scope: Scope): Promise<Nuri>;
export async function listMyEntityDocs(id: string, scope: Scope): Promise<Nuri[]>;
export async function userStoreDoc(id: string, scope: Scope): Promise<Nuri>;
export async function resolveScopeGraph(scope: Scope): Promise<Nuri>;
export async function resolveWriteGraph(id: string, scope: Scope): Promise<Nuri>;

// inbox-side (store-registry.ts:772, 837, 1133, 1203, 1286)
export async function userInbox(id: string): Promise<Nuri>;
export async function isOwnInbox(nuri: Nuri): Promise<boolean>;
export async function openDocumentInbox(doc: Nuri): Promise<Nuri>;
export async function documentInboxAddress(doc: Nuri): Promise<Nuri | undefined>;
export async function myInboxes(): Promise<Nuri[]>;

// User-branch registers (store-registry.ts:1307, 1331)
export async function addLink(cap: ReadCap): Promise<void>;
export async function readLinks(): Promise<ReadCap[]>;

// shim machinery (store-registry.ts:542, 631, 213, 278)
export async function resolveAccount(id: string): Promise<VirtualUserRecord | null>;
export async function ensureAccount(id: string): Promise<VirtualUserRecord>;
export function reservedAccount(name: string): string;
export function resetRegistryCache(): void;

Target — split by what each piece maps to

  • createEntityDoc(id, scope) → level 2, VERIFIED direction. Target: doc_create(session_id, crdt, class_name, destination, store_repo) aimed at the identity's real per-scope store (see § 7 for the store-targeting nuance — the nodejs SDK already takes store_type/store_repo strings). The two writes the lib performs by hand are native side effects of doc_create upstream: the ldp:contains listing on the store's Main branch and the AddRepo { read_cap } on its Store branch (engine/verifier/src/request_processor.rs:697-710). The id parameter disappears (the session IS the identity); expect createEntityDoc(id, scope) to become doc_create(sid, …, storeOf(scope)) with no listing/cap bookkeeping.
  • listMyEntityDocs(id, scope) → level 1/2, VERIFIED mechanism. Upstream the listing is the store's ldp:contains graph (written at request_processor.rs:706-708), readable with an anchored sparql_query on the store; the caps come back by replaying the Store branch (AddRepo::verifyload_repo_from_read_cap). The function's shape (give me my per-scope doc NURIs) survives; its implementation becomes one native read.
  • userStoreDoc(id, scope) / resolveScopeGraph(scope) / resolveWriteGraph(id, scope) → level 2, VERIFIED. The target answers these from the session: did:ng: + session.private_store_id | protected_store_id | public_store_id (Session, index.d.ts:264-272). The store IS the container; the per-scope index document disappears.
  • userInbox(id) → level 1, VERIFIED counterpart with a different granularity. Upstream a user's inboxes are their public and protected STORE repos' inboxes — the only two AddInboxCap commits in the engine (engine/verifier/src/site.rs:128,149). An identity-level "my inbox" therefore maps to a store inbox; the resolution moves into the lib/SDK and the consumer's act (deposit to an address, process my own) is unchanged.
  • openDocumentInbox(doc) / documentInboxAddress(doc) → level 1, VERIFIED support, no exerciser. Every Repo carries inbox: Option<PrivKey> (engine/repo/src/repo.rs:126); AddInboxCapV0 is keyed by repo_id with no is-store restriction (engine/repo/src/types.rs:1973; applied at engine/verifier/src/verifier.rs:1920-1928); but no code path creates one for a plain document (doc_create leaves inbox: None, repo.rs:574) and no level-2/3 API exposes any of it. So: the capability is engine-verified; the functions are invented surface; and the address publication is a real, deliberate divergence (upstream transmits addresses, never publishes them — § 9), with the ownership guard compensating our design, not mirroring an upstream rule.
  • addLink(cap) / readLinks() → level 1, VERIFIED model, no JS surface. The emulated AddLink { read_cap } register (engine/repo/src/types.rs:1939-1948"so that a user can share with all its device a new Link they received", external repos only). Upstream this filing happens inside the verifier when it processes the inbox; the future SDK most likely never exposes these as calls, so consumers should not code against them (§ 15).
  • resolveAccount / ensureAccount / VirtualUserRecord / RegistrySession / reservedAccount / resetRegistryCache → NO COUNTERPART. The shared-wallet shim (accounts directory, pointer → doc-shim indirection) has no image in the target — the target has no central directory of identities (docs/migration-guide.md § 3). The whole group disappears with the shim.
  • isOwnInbox / myInboxes → NO COUNTERPART as API. Upstream the question "which inboxes may I read" is answered inside the verifier by the User branch's AddInboxCap records; nothing suggests a JS API for it. These exist for the emulated read guard and the connection drain.

13. Identity and connection

Today

// @ng-eventually/client — virtualUsers.ts (namespace accounts)
export const ACCOUNT_STORAGE_KEY = "ng-eventually.account.id";          // :18
export interface VirtualUserStorage {                                        // :26
  getItem(key: string): string | null;
  setItem(key: string, value: string): void;
  removeItem(key: string): void;
}
export class IdentityStore {                                             // :37
  constructor(storage: VirtualUserStorage | null, key?: string);
  get(): string | null;
  set(id: string): string | null;
  clear(): void;
}
export function browserIdentityStore(key?: string): IdentityStore;       // :89

// @ng-eventually/client/polyfill
export function setCurrentUser(id: PrincipalId | null): void;            // polyfill.ts:171
export function getCurrentUser(): PrincipalId | null;                    // polyfill.ts:187
export async function connectedUser(): Promise<void>;                    // connect.ts:52

Target

PASSTHROUGH-to-be at level 2, VERIFIED signatures. In the target the identity is established by opening one's own wallet and starting a per-user session — there is no "set the current user" call because the session IS the user:

// index.d.ts:276, 280, 313, 315
declare function session_start(wallet_name: string, user_id: any): Promise<any>;
declare function session_stop(user_id: string): Promise<void>;
declare function user_connect(client_info: any, user_id: string, location?: string | null): Promise<any>;
declare function user_disconnect(user_id: string): Promise<void>;
  • virtualUsers.* (the persisted identity id) — NO COUNTERPART; removed at migration (docs/migration-guide.md § 5). It exists only because every virtual user shares one wallet. It is exported from the SDK entry, which is a placement wart (§ 15).
  • setCurrentUser / getCurrentUserNO COUNTERPART; the relay of an identity the broker cannot see. Disappears with the shared wallet.
  • connectedUser() — the awaitable form of what the target does automatically: the recipient's verifier processes its inbox as messages arrive/at connection (Verifier::inbox, engine/verifier/src/verifier.rs:1674). VERIFIED at level 1 that no consumer call is needed upstream; the polyfill fires it from setCurrentUser for the same reason. A consumer should treat it as "await a deterministic start" (tests), not as an operation the future SDK will name.

14. Type re-exports

@ng-eventually/client re-exports, type-only (erased at build, index.ts:48-50):

export type { ShapeType, BaseType, Schema } from "@ng-org/shex-orm";
export type { DeepSignalSet } from "@ng-org/alien-deepsignals";
export type { NG } from "@ng-org/web";

PASSTHROUGH (levels 2/3, VERIFIED)ShapeType/BaseType at @ng-org/shex-orm dist/types.d.ts:5,12 (installed 0.1.2-alpha.8); NG at index.d.ts:136. At migration these imports point at the same packages directly; nothing changes for the consumer.


15. Machinery on the surface — what a consumer should NOT code against

Exported, but not SDK surface. Coding against these builds knowledge that migration deletes:

  • docs.depositInto — the named boundary-crossing write inbox.post uses. It is exported only because inbox.ts lives in another module; a consumer must always go through inbox.post / inbox.shareCap. Upstream a deposit is a sealed message, not a SPARQL update — this function's very signature is emulation.
  • getConfig / getStoreRegistryDeps — tagged @internal in source, exported for the lib's own wrappers.
  • resetConfig / resetStoreRegistry / resetCaps / storeRegistry.resetRegistryCache — test/reset machinery. In particular resetCaps wipes EVERY holder's caps, which no product flow should ever do.
  • getCaps() and the CapRegistry class — the registry is the emulation's engine room. The consumer surface is capFor (possession lookup), inbox.shareCap (grant), and the acts that file caps implicitly (creating a document, processing one's inbox). CapRegistry.grantWrite / governsWrite / canWrite / hasWritePolicy are explicitly decorative until P1b — the guard they feed is bypassed by every internal writer.
  • storeRegistry.reservedAccount, resolveAccount, ensureAccount, VirtualUserRecord, RegistrySessionRESOLVED 2026-08-03: no longer exported. Shim internals, now in docs/internal-contract.md. The consumer's legitimate touchpoint is configureStoreRegistry (bootstrap) plus the scope/entity resolvers.
  • storeRegistry.addLink / readLinksRESOLVED 2026-08-03: no longer exported. Consumers receive caps by processing their inbox (automated at connection); calling these directly baked in a register the verifier owns upstream.
  • virtualUsers.* on the SDK entryRESOLVED 2026-08-03: moved to /polyfill, where its disappearance at migration is visible at the import line.
  • inbox.watch's _opts?: { intervalMs?: number } — accepted and ignored (no polling exists). Dead compatibility surface; do not pass it.
  • The label parameters on docs.sparqlUpdate / docs.sparqlQuery / docs.depositInto — lib-internal access-log tags, never forwarded to ng. The real signatures have no such parameter.

Places the current surface teaches something to unlearn

  • The SDK entry is not as pure as its header claims. FIXED 2026-08-03. The header claimed the entry "exposes ONLY what @ng-org/web / @ng-org/orm expose" while also shipping virtualUsers and the whole store-registry module. Both are gone from it, and the header now states what the entry actually promises: every symbol here has a target-SDK counterpart, verified or assumed, listed in this document. It still exports docs, readUnion, watchShape, subscribeDoc(s), the SPARQL helpers and the NURI guards — justified inventions, documented per subject above — so the promise is no longer "@ng-org surface only", which was never true, but "nothing here is machinery".
  • shareCap is importable from both entries (inbox.shareCap on the SDK entry via export * as inbox, and a named re-export on /polyfill). The polyfill re-export exists "so the cap vocabulary stays on the polyfill side" — but the namespace export undoes that. Harmless functionally; blurs the same boundary.
  • inbox.read/materialize as a mailbox — enumerating raw deposits is emulation detail (§ 9); the durable contract is deposit-and-it-gets-applied. An app building UI on the deposit list should expect that surface to change shape entirely.
  • watchShape's "planned useShape upgrade" — stated in the module header with no provenance in this repo or the clone (§ 5). The load-state distinction is safe; the claim that NextGraph plans this exact hook shape is an assumption and must not be cited as an announced API.
  • UnionSubject property bags — polyfill read-model shape, not a target type; map them into app types at the boundary (which watchShape's design already assumes).
  • The sync-returning subscribeDoc unsubscribe vs the target's promise-resolved one (§ 8) — a deliberate, documented ergonomic delta; an adapter is one line at migration, but it is a delta.

Appendix — full export inventory (for diffing)

Generated from the export statements, and pinned by packages/client/test/vocabulary.test.ts — if this list and the code disagree, that test fails. It went stale once, still listing storeRegistry's shim internals after the entry had been narrowed, which is what a hand-maintained inventory does.

@ng-eventually/clientsrc/index.ts

direct: BaseType, DeepSignalSet, DocChange, DocChangeType, InboxScope, NG, NgLike, Nuri, PrincipalId, ReadCap, Schema, Scope, ShapeObservable, ShapeQuery, ShapeType, UnionSubject, Unsubscribe, UseShapeLike, assertNuri, docChangeType, escapeIri, escapeLiteral, hasReadCap, init, initNg, isNuri, ng, readUnion, subscribeDoc, subscribeDocs, useShape, watchShape
docs: depositInto, docCreate, sparqlQuery, sparqlUpdate
inbox: Deposit, PostOptions, materialize, post, postToDocument, processInbox, read, readSynced, shareCap, watch
storeRegistry: createEntityDoc, documentInboxAddress, listMyEntityDocs, openDocumentInbox, resolveScopeGraph, resolveWriteGraph, userInbox

@ng-eventually/client/polyfillsrc/polyfill.ts

direct: CapRegistry, EventuallyConfig, RegistrySession, StoreRegistryDeps, VirtualUserRecord, VirtualUserStorage, capFor, configure, configureStoreRegistry, connectedUser, getCaps, getConfig, getCurrentUser, getStoreRegistryDeps, resetCaps, resetConfig, resetStoreRegistry, setCurrentUser, shareCap
virtualUsers: ACCOUNT_STORAGE_KEY, IdentityStore, VirtualUserStorage, browserIdentityStore