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* feat(common): MNP 0.2 — liveness, and chat history read the way it is writtenChristophe Besson2026-08-161-1/+9
| | | | | | | | | | | | | | | | | | | | | | | | `get_messages` pages forward from the oldest message. That is the right shape for "what happened since I last looked" and the wrong one for opening a conversation, and the browser asked it for `since=0, limit=200` — so a group with more than two hundred messages showed its first two hundred and the exchange anyone came for was unreachable. Demonstrated on 300 messages: the newest was simply absent from the answer. `get_recent` and `get_before` page backwards, cursored on the row id rather than the timestamp. Nothing makes a `time.time()` float unique, and a cursor on a value two rows can share eventually skips a message or repeats it. PING/PONG covers liveness on an already-open channel: a DataChannel whose peer vanished without closing still reads as connected, and nothing noticed until a real request hung. It is not a discovery mechanism — opening a connection to ping costs a full ICE/DTLS handshake, measured at 0.6-7 s across two ISPs — so presence in the group list comes from the hub's registry instead. Both additions are backward compatible: an 0.1 peer sends no `before` and is answered with the newest page, which is what it wanted. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com>
* fix: stop a stream on close, count only real users, record where a node isChristophe Besson2026-08-151-0/+1
| | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | **Closing the viewer left the node working.** Nothing told it to stop: the player dropped its handlers, which only made the browser deaf. ffmpeg kept running and held one of the node's two transcode slots until the credit timeout expired two minutes later — which is why the next video answered "server busy". `stream_stop` ends it at once, and the viewer also drops its queue, ends the MediaSource and revokes the object URL on the way out, any of which could be holding megabytes of decrypted video. While there: `file_chunk` replies were matched to their requests by arrival order, which was true by luck rather than by construction. The reply now names the file it belongs to and is matched on that and the chunk index; a chunk nobody is waiting for is dropped instead of being handed to whatever request happens to be oldest. **The administration panel counted its own history.** A deleted account is tombstoned so the connection log stays readable, and every count and list treated that row as a user — including a group's member count, and the member list of the group itself. They do not any more. **Where a node is.** `endpoint_hint` is what a node believes its address to be, learned from a STUN server and sent to us: useful for reaching it, and a claim. The announcement that carries it is signed with the node key over a fresh timestamp, so the address that request *arrives from* is the address of whoever holds that key — that is now recorded on the node row and shown in a Nodes tab, next to the hint, with the difference spelled out. Clients get the same treatment: `webrtc_offer` is logged with the address the hub saw when a browser starts a peer connection. Verified against the live deployment: the node's row reads 90.112.206.172 after a restart, and in e2e a stopped stream goes quiet in one message and the next one starts immediately instead of being refused. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com>
* feat(groups): remove a member, and keep gigabytes out of the tabChristophe Besson2026-08-151-0/+3
| | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | **Removing a member.** The owner can do it from the Members tab, and it is two halves in the order that fails safe: the node stops serving the group key first (an operator-signed request, so a paired browser only), then the hub drops the membership row. The other order would leave someone able to reach a node that still serves them. It is a membership, not an account. The user row is never written: their other groups, their files and their pinned identity survive, because one group's owner must not be able to erase someone from the hub. It is also per group — a node hosting two loses them from one — and it does not take back the key they already unwrapped, which is what rotating the GEK is for. The confirmation and the panel both say so. **Downloads and streaming through the disk, in both browsers.** The audit this started as found two ways to put gigabytes in a tab. Firefox and Safari have no File System Access API, so every download there was collected in memory. A service worker fixes it: the page keeps the writable half of a transferred stream, the worker answers a made-up URL with the readable half and a Content-Disposition header, and the browser writes it to disk as it arrives, with real backpressure. The worker caches nothing and falls through on every request that is not one of these downloads. A zip announces no Content-Length, since the archive is larger than the files in it and a length we miss truncates the file. Video was worse and affected both browsers. The node pushed ffmpeg's whole output as fast as it was produced while the player consumed a segment at a time, so the queue held the film — and appending all of it hit the SourceBuffer's cap, where the handler logged the error and dropped the segment, leaving a hole in the middle of the film with nothing to show for it. Streaming is credit-based now, 24 segments of 256 KB in flight, verified against the live node: three credits, three segments, then silence until more are granted. The player evicts what is more than a minute behind the playhead and retries a refused segment rather than dropping it. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com>
* feat(files): download a folder as a zip, and remove an empty oneChristophe Besson2026-08-151-0/+2
| | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | Two things a Files panel needs and did not have. **Removing a directory** is privileged, where creating one is not: it acts on a name other members are using, on the operator's disk. It is refused unless the directory is empty, and that rule is the safety property — whatever the browser sends, this cannot destroy content. The check runs twice, once before the challenge and once after the signature comes back, because a file can land during the round trip. A file also accepts its uploader's key; a directory has no uploader, so only the operator's key will do. **Downloading a folder** produces a zip built in the browser, written straight to disk as the chunks arrive. An archive of a group folder is routinely tens of gigabytes, so nothing is held: peak memory is one chunk plus a small record per file. The node is not involved at all — it serves the same encrypted chunks as any other download, holds no temporary files, and cannot be asked to compress anything. zipstream.js is store-only. Group content is video and images, already compressed, so deflate would spend CPU on every byte to save nothing, in the thread that is also decrypting. Sizes and CRCs go in a data descriptor after each file because a stream cannot seek back to patch a header, and zip64 kicks in per entry past 4 GiB and for the archive itself. Because none of that can be checked from the Python side of the house, test_zipstream.py runs the real module under Node and reads what it produces with zipfile — CRCs, UTF-8 names, zip64 records and all. The archives also pass `unzip -t`. Firefox and Safari have no File System Access API, so there is nowhere to stream to: the fallback builds the archive in memory and says so, with the size, before starting rather than after failing. One mistake worth recording: the first version of deleteDirectory passed the node's own answer as the value to check the challenge against, which turns the comparison into a tautology. It checks the path we asked for. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com>
* feat(files): upload into the current directory, and create foldersChristophe Besson2026-08-141-0/+2
| | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | The per-user quarantine is gone. `.uploads/{user_id}/` was the fix for C5a, and it worked, but it made the shared directory something nobody could organise: every file landed under a uuid nobody recognises. Files now go where the member is looking, most often the root. What the quarantine actually bought is kept, and is now what the tests assert rather than the location: - an existing file is never replaced. That was the real defect — overwriting a file also made the attacker its recorded uploader, and therefore able to delete it through the uploader path - the name allowlist is unchanged - the destination is confined under the shared root That last one is new surface: the directory arrives from the client. safe_subdir() is the single place that decides, with two independent guards — every segment against the name allowlist, and the resolved result under the root — because one of them will eventually be refactored by someone who does not know why it is there. Ten traversal cases are covered, and they fail if both guards go. Also adds `dir_create` (any member may organise a shared directory; audited like anything that writes to the operator's disk) and makes the node report its real directory list in index_sync — folders were inferred from file paths, so a new empty one, or one that had been emptied, simply did not exist as far as the UI was concerned. Two C5a tests changed their assertions deliberately, as C5b's did before: they encoded the quarantine path, which is the thing being removed. The property they existed for is asserted more directly than before. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com>
* feat(client): make the key backup a choice, and raise the passphrase floorChristophe Besson2026-08-141-0/+1
| | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | Two things the multi-browser story made obvious. **The backup is now opt-out.** Keys are kept, encrypted with the passphrase, on every node whose group you join — that is what lets a second browser recover them, and it is finding C4: a PBKDF2-protected blob on other people's disks, attackable offline at the speed of PBKDF2, which is memory-light and therefore cheap on a GPU. Until now everybody paid that cost, including people who will only ever use one browser and get nothing back for it. Settings → "Use this account on other devices". Turning it off does not merely stop future uploads: the next connection to each node withdraws what that node already holds (new keypair_bundle_delete, which only ever deletes the caller's own, taken from the authenticated session and never from the message). The warning says plainly what it costs — clearing the browser then loses everything encrypted for that account, with no recovery, which is the point of choosing it. Default is on. Silent, unrecoverable key loss is worse for an ordinary user than an exposure the roadmap already tracks, but that is a judgement call and it is now visible and reversible instead of implicit. **Passphrase floor 8 → 12 characters, plus a strength estimate** shown while typing, with a refusal below ~60 bits. This number matters more here than in most applications: it is what stands between a node operator and your identity keys. It has to live in the client — with the password split (T1) the hub never sees a password and cannot enforce anything about one — so the UI says why it is asking, rather than nagging. The estimator is deliberately conservative and dependency-free: character classes and length, penalised for repetition and for the handful of patterns everyone tries. Verified against the live deployment: withdrawing the backup leaves a second browser unable to recover anything, which is exactly what it promises, and re-enabling restores it. Tests: 338. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com>
* feat(node)!: the node wraps the group key — closes H3 and M3Christophe Besson2026-08-141-1/+7
| | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | The invite flow fetched the invitee's pk_x25519 from the hub and wrapped the GEK for whatever came back (app.js:1466, and gek-init did the same server-side). The hub is the key directory, so a hub answering with its own key was handed the group key by an honest member following the protocol exactly. No forgery, no injection, nothing for the client to notice. That was H3. The fix is not safety numbers. Nobody reads the directory any more: - the node holds the GEK and wraps it itself, on every connection, for the X25519 key the joiner signed with their Ed25519 identity in one transcript (meshbay:join:v1), so the identity key vouches for the encryption key; - identities are bound to accounts by a one-time code the hub never sees — 40 bits, single use, one account, bounded per connection AND node-wide; - the node's own roster decides who may receive the key. Hub membership lets someone reach a node; it no longer gets them anything. A hub that invents an account and mints it a token is answered not_authorized_for_group. Safety numbers would have made substitution detectable by a human who checks, at the moment there is nothing to check against — first contact. Removing the lookup makes it impossible, and costs the user one code to pass along. M3 falls out of the same work. The daemon auto-pinned its own keystore key as admin_pk_ed25519 while the browser signs with the user identity key, so every privileged operation failed closed with a signature error that looked like a bug somewhere else; the demo only worked because a deploy script overwrote the value. Authority now comes from the roster, established locally by `operator pair`. Asking the hub for the operator's key — the obvious-looking fix — would have let the hub install itself as node administrator. BREAKING: gek_bundle_store is deleted, not gated. No member hands the node key material at all, so C5b becomes structural rather than an authorization to check. Existing stored bundles are still served, so current deployments keep working. Also: - join_policy (invite|open) is read from node.toml, never from the hub — a hub able to declare a group open would be handed its key. Unknown group ⇒ invite. - admin signatures are verified against the roster on every check, so unpinning takes effect without a restart. admin_pk_ed25519 stays readable as legacy. - two C5b tests were rewritten, deliberately: they asserted that gek_bundle_store demanded an operator signature, and the message is gone. They now assert the stronger property. The file says not to fix these tests, so this is the record of why they changed. - a slice-1 bug found while writing slice 2: connect() never passed skEdB64, so pairing would have failed at runtime with no test able to catch it. Tests: 152 node+common here, including an end-to-end DataChannel run where a member who has never held the group key redeems a code in the pre-proof window and receives the key wrapped for a key only they can open. Design: docs/invite-pairing-v1.md Co-Authored-By: Claude Opus 5 <noreply@anthropic.com>
* fix: swarm privacy, revocation persistence, keystore KDF, audit integrityChristophe Besson2026-08-131-2/+4
| | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | Phase 11.5 hardening batch — H7, H4, M2, M6, M7, L1, L3, L6. H7 — private content hashes leaked to the hub. The daemon registered blake3 hashes for every group it hosted, private ones included, giving the hub a content fingerprint of every private file and letting anyone confirm whether a known file exists in the network. The leak was dormant only because the routes were declared on the groups router with a full path and mounted at /v1/groups/v1/swarm/* — the node's calls 404'd into a swallowed exception. Fixing the path alone would have activated the leak, so both land together: registration is gated on group visibility, the routes moved to a real /v1/swarm router, and the lookup now requires authentication. H4 — revocation was advisory. Group revocations were signed and broadcast by the hub and then dropped by the node, whose handler understood only "user" and "jti", so "suspend a group" enforced nothing. The denylist was also in-memory only, so a restart silently un-revoked everyone. Now persisted to data_dir/denylist.json, group targets honoured on both transports, and live sessions for a revoked group are closed. M2 — the node keystore, which protects the node's Ed25519 and X25519 private keys, was still deriving at 64 MB long after the hub's password verifier moved to 256 MB; the docs recorded the bump as done, true for the hub only. Raising the constant alone would have made every existing keystore permanently undecryptable, so envelopes now record the parameters they were written with and pre-M2 files continue to open under the legacy profile. M6 — registration inserted its audit row with a NULL user_id and then ran UPDATE ip_logs SET user_id=<new> WHERE user_id IS NULL, claiming every unattributed row in the table: failed logins for other usernames, concurrent registrations. In logs retained a year for legal requests, that attributed other people's connections to the wrong account. M7 — X-Forwarded-For was trusted unconditionally at four call sites, so anyone could forge the IP written to the compliance log and evade per-IP rate limits. New netutil.client_ip honours the header only from a trusted proxy and takes the rightmost hop (the one our proxy appended); no direct header reads remain. L1 dead GEK_REQUEST/GEK_RESPONSE constants removed; L3 peer errors no longer echo exception text (paths, internal state); L6 email sanity-checked instead of accepting any string — deliberately not RFC 5322, to avoid a new dependency. test_daemon_index_change_pushes_to_peers asserted that a PRIVATE group's hashes are registered with the hub. Split: private asserts not-called (index push to members still asserted), and a new test proves public groups still register. That is the fourth pre-existing test found asserting a vulnerability as intended behaviour, after gek auto-activation, the transport-wide chat_store and the blind admin challenge. Tests: 116 node, 132 hub+common. Regression suite now 43. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com>
* feat: Phase 12 — P2P crypto material, password split, node Ed25519 authChristophe Besson2026-08-131-0/+12
| | | | | | | | | | | | | | | | Baseline commit capturing in-progress Phase 12 work that was already present in the working tree (uncommitted) before the Phase 11.5 security remediation begins. Committed as-is, without review or modification, so that remediation changes arrive as a separable diff. Contents: BundleStore (P2P GEK + keypair bundles), password split (auth_key / bundle_key), node Ed25519 auth (POST /v1/nodes/auth, node-scoped JWT), GEK-HMAC handshake proof with DTLS channel binding, Ed25519 admin challenge-response, node local admin UI rewrite, browser key persistence. Not authored in this session — captured to establish a baseline. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com>
* feat: Phase 10c — MSE video streaming (real-time playback)Christophe Besson2026-08-111-0/+4
| | | | | | | | | Replace download-then-play VideoPlayer with MSE (MediaSource Extensions) streaming. Node remuxes to fMP4 via ffmpeg, probes codecs with ffprobe, and sends encrypted segments over DataChannel. Browser decrypts and appends to SourceBuffer — playback starts within seconds. Co-Authored-By: Claude Opus 4.6 <noreply@anthropic.com>
* fix(ui): upload chunk size, cached file display, chat names, file delete, ↵Christophe Besson2026-08-111-0/+2
| | | | | | | | | | | | | | | | inline thumbnails - Upload chunks capped at 64KB to avoid WebRTC DataChannel max-message-size - Show cached files immediately while WebRTC connects (tabs visible during connection) - Persist sender_name in chat store (SQLite) — no more UUID display in history - File delete action in menu (node admin only, enforced server-side) - FILE_DELETE / FILE_DELETE_ACK MNP message types - Inline image thumbnails in chat attachments (download+decrypt, Signal-style) - Member panel: "Owner" label instead of "Group admin" to avoid hub/group admin confusion - Create group page: hint about needing a node - Refresh index after chat file attachment upload Co-Authored-By: Claude Opus 4.6 <noreply@anthropic.com>
* feat: Phase 10b — Self-service UI (group create/join, upload, IndexedDB, ↵Christophe Besson2026-08-111-0/+2
| | | | | | | | | | | | | | | | search) Six self-service features for the web SPA: - Group creation UI with GEK auto-generation (AES-256-GCM ECIES) - Member management + invite by username (GEK wrapping for invitee) - Open group self-join flow (POST /v1/groups/{id}/join) - File upload client→node (FILE_UPLOAD MNP type, .uploads/ staging) - IndexedDB caching of group file indexes (instant display on revisit) - Cross-group file search (SearchPage, pure client-side on cached indexes) 11 new tests (166 total): 8 group self-service + 3 AES GEK wrap/unwrap. Co-Authored-By: Claude Opus 4.6 <noreply@anthropic.com>
* feat: Phase 9 — Web client SPA with WebRTC P2P transportChristophe Besson2026-08-111-0/+4
| | | | | | | | | | | | | | | | Complete browser-based client: Preact SPA with login, group file browser, encrypted download, video playback, group chat, i18n, and dark/light theme. Browser connects P2P to nodes behind residential NAT via WebRTC DataChannel (aiortc). Hub handles signaling only — all data flows E2E. Performance: pipelined downloads (8-chunk sliding window), binary msgpack wire format (no base64), redundant I/O elimination. Large file downloads stream to disk via File System Access API (showSaveFilePicker). Validated on SFR + Orange residential NATs, Chrome + Firefox, IPv4/IPv6. 132 tests passing. Deployed to meshbay.org + Orange node. Co-Authored-By: Claude Opus 4.6 <noreply@anthropic.com>
* chore: initialize monorepo structure for MeshBayChristophe Besson2026-08-091-0/+72
3-package layout: meshbay-common (shared crypto/protocol), meshbay-hub (FastAPI server), meshbay-node (local daemon). Includes validated POC spikes 1-6 in poc/, architecture drafts v1/v2 in docs/, and CLAUDE.md project conventions. All cryptographic primitives extracted from POC into meshbay_common/crypto.py (GEK wrap/unwrap, chunk key derivation, keystore encryption, chunk signing). Co-Authored-By: Claude Sonnet 4.6 (1M context) <noreply@anthropic.com>