Two batches, verified against nextgraph-rs throughout. P1a — the capability surface. Reading was an ACL (Map<doc, Set<principal>>), the exact inversion of key possession. It is now possession: `capFor(nuri)` is the only question, there is no principal parameter anywhere, and nothing turns a bare reference into a cap. Sharing is `shareCap(cap, toInbox)`, a Link deposit; receiving needs no operation. `Nuri` and `ReadCap` are template literal types, so passing a bare reference where a cap belongs is a compile error, with runtime guards behind it for JavaScript callers. The virtual user boundary. Every access function is now confined to the connected user, through two rules on one criterion (possession), implemented in two places so a lapse in either is caught by the other: authorization at the passage points, and "do not even attempt" at the callers. The polyfill's own machinery moved to physical.ts — unguarded, never exported — which replaced an exemption list: the machinery no longer gets waved through the guard, it calls something the guard never saw. Removed, as emulating capabilities the target does not have: - discovery.ts and its global index. There is no discovery in NextGraph; you follow links. It also pooled user data across wallets. - the cross-account fan-out (listEntityDocs, resolveReadGraphs, allAccounts, loadShim), which was cross-user enumeration by construction. - resolveInboxAnchor, a single inbox common to every user. Caps are now stored where NextGraph stores them, and read back rather than recomputed: AddRepo on the store's Store branch for documents a user creates, AddLink on its User branch for caps received. Inboxes belong to someone — the user's own, plus one per document — and connecting a user drains them all; that is the library's job, not the app's. Corrections worth recording: a ReadCap is `r:`, not `:k:` (reported by NextGraph's developer, verified in BlockRef::readcap_nuri); received caps DO have a register (AddLink), contrary to what this repo's notes claimed; and "wallet" upstream means keyring — what owns three stores is a user, so the vocabulary follows. The cap value is the constant OK: the only question the emulation answers is whether a cap is held. P1b replaces that one constant with a real key. After this the shape is right and the isolation is still fake. Nothing here may be described as anonymous or private.
5.4 KiB
@ng-eventually/client
Two entry points — the data-plane is SDK-identical, the polyfill bootstrap is separate:
| Import | Surface |
|---|---|
@ng-eventually/client |
The same signature as the SDK — ng, useShape, inbox (+ types). A drop-in for @ng-org/web / @ng-org/orm; as NextGraph matures it resolves to the real SDK (build alias removed) with no code change. |
@ng-eventually/client/polyfill |
The only non-SDK surface — configure, setCurrentUser, and the capability surface (capFor, shareCap, getCaps). It falls away as NextGraph matures. |
Reading is key possession, and the isolation here is still fake. The cap surface has the shape of the real model — you hold a document's
ReadCapor you do not read it, and there is no authorization list anywhere — but nothing is encrypted yet and several read paths bypass the guard entirely. Nothing this library does may be described as "anonymous" or "private" until per-document encryption lands (P1b).
// bootstrap (the only non-SDK call) — inject the real SDK
import { configure } from "@ng-eventually/client/polyfill";
configure({ ng: realNg, useShape: realUseShape, sharedWallet, currentUser });
// from here on, a pure SDK surface:
import { ng, useShape, inbox } from "@ng-eventually/client";
await ng.doc_create(/* … */);
const set = useShape(MyShape, scope); // filtered to what the identity may read
await inbox.post(targetInbox, ref); // deposit (anticipated SDK API)
Principle — the polyfill compensates, it never extends
The polyfill's ONLY reason to exist is to bridge a NextGraph implementation gap or a bug. Every non-SDK surface must map to a capability NextGraph will provide natively, and must fall away at that point. The polyfill MUST NOT add functionality of its own — no bespoke features, no observability/tooling, no convenience API that isn't strictly "NextGraph will do this natively later." The test for any proposed addition: does it compensate a real, exhibited NextGraph gap or bug? If not, it does not belong here — build it in the consumer application, not in the polyfill. Corollary: a compensation whose gap is not actually exhibited on the target broker is dead weight, not defensive code — it should be removed, not kept "just in case."
What the polyfill adds on top of the real SDK (each emulated for now, native as NextGraph matures):
- Shared-wallet identity (one wallet for everyone; the current identity id is relayed to the SDK).
- Capability emulation — per-identity cap possession (
capFor) and a read filter over it: you read the documents whose cap you hold. Creating a document files its cap; receiving one is an inbox deposit. There is no authorization list. - Anticipated methods (inbox
post,shareCap) with their future-SDK shapes, emulated for now.
Generic: no application domain. The consumer application injects its shapes and performs the acts of sharing. The relationship concept ("who is connected to whom") is the consumer application's own — the client exposes only "share this one document's cap to that inbox".
The cap surface in three calls
import { capFor, shareCap, getCaps } from "@ng-eventually/client/polyfill";
import { storeRegistry } from "@ng-eventually/client";
// Creating a document records its cap and you hold it — nothing to declare.
const doc = await storeRegistry.createEntityDoc(myId, "protected");
capFor(doc); // → `${doc}:r:…` — you hold it
// Share it with one recipient, addressed by their inbox. They need no "receive"
// operation: their existing inbox.watch absorbs it.
await shareCap(capFor(doc)!, theirInbox);
// Publishing is TWO acts: place the data in your public store, and circulate its
// LINK. There is no discovery — you cannot be found, you can only be reached — so
// the link has to travel: into an inbox, or into a document the reader already
// holds. The bare NURI would name the document without opening it.
const link = getCaps().publishRepoLink(publicDoc);
await shareCap(link, theirInbox);
The one invariant to keep in mind: you never derive a cap from a bare reference.
You look it up in what you hold, or you were given it. A did:ng:o:… without :r:
names a document and grants nothing.
The types carry that invariant
Nuri and ReadCap are template literal types, not string aliases:
type Nuri = `did:ng:${string}`
type ReadCap = `did:ng:${string}:r:${string}`
They are still strings — assignable to string, JSON-serializable, no wrapper — but
the distinction is checked. A ReadCap goes wherever a Nuri is expected (a cap
is a NURI with the key inside); the reverse does not compile:
await shareCap(doc, theirInbox); // ✗ Argument of type '`did:ng:${string}`' is not
// assignable to '`did:ng:${string}:r:${string}`'
A string that comes from outside your code — storage, a URL, JSON, a form — is a
plain string. Narrow it, do not cast it: a cast re-opens exactly the confusion
the types close.
import { isNuri, hasReadCap } from "@ng-eventually/client";
const saved = localStorage.getItem("cap");
if (saved && hasReadCap(saved)) await shareCap(saved, theirInbox); // ✓ narrowed
The runtime guards remain regardless — a JavaScript caller never meets the compiler, and a cast bypasses it — so passing a bare reference where a cap belongs throws with a message that says so.