Files
fips/docs/design/fips-nostr-discovery.md
T
Johnathan Corgan 6a564e26ac Prepare the v0.5.0 release content
Everything the release needs except the version number, which stays at
0.5.0-dev until the tag.

The changelog entry covers only the work that is new on this line. The
point release's forty-six entries arrived under their own heading with the
forward merge and are left alone; the twenty that remained are regrouped by
topic and eight more added for changes no entry covered. Three of those
eight matter to someone upgrading. Five root modules and four re-exports
left the public library surface and Node::connections narrowed, none of it
recorded anywhere; the entry names what to use instead and distinguishes
the removed connection-phase enum from the Noise type of the same name,
which is a different type that still exists. Tracing targets moved, so an
existing RUST_LOG filter stops matching rather than erroring. And the
handshake resend interval key no longer governs the first resend, which is
now a constant, though it still governs later ones.

Seven more entries cover the work that landed after the first content pass
was written: the experimental native datagram API, the fipsctl probe
diagnostic, per-instance transport addressing, the app-owned UDP socket
seam, and the connect, disconnect and path-MTU fixes. The four bug fixes
among them all reach the deployed line, so the release notes no longer
claim this release carries exactly one fix for a shipped bug; it carries
four.

There is no security section, because after the split every security entry
belongs to the point release. The release notes say so plainly rather than
leaving a reader upgrading across both releases to conclude this one
carries no security work.

The notes are organized by audience, since the release spans OpenWrt
routers, embedders, FreeBSD, and the existing platforms, and a single list
serves none of them. The native datagram API is given a section of its own
rather than folded into the embedding seam: it is a client-facing API
rather than a way to host a node, and its one rule with no Berkeley-socket
counterpart, that the v1 wire carries no half-close, needs to be somewhere
a client author will read it. FreeBSD is advertised as supported on x86_64
only, stated wherever the platform appears. Android is advertised as an
embedding seam and not as a supported platform: a compile-gated library
surface with no artifact and no host application guide.

The configuration table rename is carried through every shipped file that
taught the old spelling: nine documentation files, the OpenWrt sample
config and a test generator, twenty-two sites in all. Guides written this
same cycle were among them, which is how the omission was found. The
documentation that arrived with the native API was checked for the same
omission and was already clean. The compatibility tests keep the old
spelling deliberately, since they exist to test the fold.

The changelog section is the fold of master's [Unreleased], not a snapshot
of it. An earlier version of this commit took a copy that then drifted, so
each section ended up holding a bullet the other did not and re-folding
them would have picked a winner silently. Both causes were fixed on master
instead — the NixOS module had never been recorded there, and the
pre-release batch of fixes was new — so [Unreleased] is a strict superset
and this is a copy rather than a merge. [0.5.0] carries all forty-six
bullets byte for byte, [Unreleased] is empty, and [0.4.2] is untouched,
checked by hashing it against master's copy.

The BLE work landed after the content pass and gets one summary entry in
the changelog and one section in the release notes rather than nine
bullets: the ble_available gate replacing target_os = "linux",
packet-boundary recovery for stream-oriented backends, peer recognition by
node identity instead of a rotating link address, the L2CAP PSM moving
into the backend seam and onto the advertisement, the embedder-supplied
Android radio, bounded probe retry, and inbound handshakes moved off the
accept loop.

The two release-notes copies no longer share their link paths. Relative
links resolve from one directory only, so the seven written for
docs/releases/ all 404ed from the root copy. The root copy now uses paths
from the repository root and the versioned copy keeps the ../ form; both
sets were resolved against the tree. The same two links are broken the
same way in the v0.4.0 through v0.4.2 notes, left as shipped history.

The contributor tallies are re-derived against maint..HEAD rather than
adjusted: twenty commits from outside the project and 171 from me, with
Arjen at fifteen and fr34aky at two. An earlier count of twelve and 138
was carried from a measurement taken three days before this content was
written, and the BLE branch widened the gap after it. Arjen's NixOS flake
module, the UDP sin6_scope_id fix and most of the BLE rework were
uncredited, as was fr34aky's L2CAP PSM seam. They want one last re-derive
at tag time if anything lands before the tag.

A sweep of all 99 tracked markdown files against the tree corrected
fifty-three of them. Four told the reader to run a build.sh that does not
exist; the only harness builder is testing/scripts/build.sh. The BLE build
prerequisites were described as optional on the strength of a probe that
build.rs does not perform, and bluez was named a build prerequisite when
libdbus-sys asks only for libdbus-1-dev and pkg-config and bluez is the
runtime daemon. Link cost is the primary sort key in next-hop ranking, not
reserved for future use; Ethernet runs on macOS as well as Linux; the BLE
MTU is the L2CAP CoC MTU rather than a negotiated ATT_MTU; effective
Ethernet MTU is 1497; the LAN discovery subsystem is src/mdns and eight
citations still named a src/discovery that never existed here. The
connectivity states in three tutorials were invented, and their jq filters
matched nothing including healthy peers. One command filtered on a literal
fd97: address prefix, which only the first byte of fixes, so it returned
empty for all but one reader in 256 and every later step using the
variable failed silently. transports.tor.advertise_on_nostr was
undocumented despite being validated against node.rendezvous.nostr.enabled.

The transport design document gains the BLE section it never had, written
from the source: the backend cascade and its compile_error tripwire, the
platform gate, the PSM advertisement wire layout and the byte budget that
forces a 16-bit service-data key, and the probe and admission bounds.

Three source files carried the same class of staleness and are corrected
with the documentation: the OpenWrt ipk usage line and Makefile error text
both named a packaging/openwrt that does not exist, and chaos.sh parsed
--subnet without listing it.

Folded in with the content commit, having been prepared alongside it:

The three GitHub Action pins that had gone stale. Every third-party
action is pinned to a commit SHA, nothing reports that a pin has aged,
and re-resolving all ten against their tags found dorny/test-reporter@v2,
taiki-e/install-action@v2 and vmactions/freebsd-vm@v1 had moved. The
three install-action@nextest references stay unpinned, since that action
reads the tool to install from the ref name. check-action-pins.sh passes
at 75 references and all nine workflow files parse.

The lockfile refresh, which is the mutating half of the dependency sweep.
Thirty-six packages move to their latest semver-compatible versions and
every one is transitive; nothing declared in Cargo.toml changes version.
No advisory forces any of them. It was taken before the validation
battery, because a gate run against a lockfile that later moves proves
nothing about what ships.

The sha2 0.10 to 0.11, hkdf 0.12 to 0.13 and bech32 0.11 to 0.12 majors,
three of the four deferred at v0.4.0 for change surface rather than
security. All three land with no source change. sha2 and hkdf must move
together, since both depend on digest 0.11, and neither changes an
algorithm. That matters because the chaining-key KDF in the Noise
handshake is built on Hkdf::<Sha256>, where an output change would be a
wire break rather than a compile error; no known-answer vectors exist for
that path, so the wire-compatibility gate is what covers it. secp256k1
0.31 is deliberately absent, since nostr's own requirement would leave
two copies of the ECC library in the tree.

The README support matrix, rebuilt as one feature table broken out by
Linux variety. A single Linux column hid that Debian, Ubuntu, Arch and
NixOS are one glibc build differing in packaging, that OpenWrt is musl
and drops BLE, and that Android is not a daemon platform. Transport rows
sort by how many platforms carry them. A Native API row reads its
platform set from the cfg gates. The installer row becomes a package
format row naming the artifact, and only the .deb is exercised per
release.

Four changelog and release-note gaps the BLE re-walk found: a Bluetooth
LE bullet stranded inside the released 0.4.2 section, a missing Fixed
entry for the scan and probe loop counting a pool-refused connection as
an established link, the unnamed embedder call that installs an
application-owned radio, and the fact that stopping the transport now
stops scanning as well as advertising.

Three release-document gaps found walking the unsurveyed commits: the UDP
reuse-flag fix stated in the direction opposite to the one it was made,
with the silent second-daemon bind it prevents left unsaid; the corrected
native-API socket paragraph carried into both release-note copies, which
still named SOCK_SEQPACKET on FreeBSD and two kernels where three are
handled; and the coordinate-cache hardening, which shipped with no text
anywhere despite adding four operator-visible status fields. That last
entry states plainly that the checks are mitigations and not a closure,
since the coordinate is still not authenticated.

Also folded in, the documentation pass that followed the content commit:

A stage-pipeline diagram for the probe, embedded in the fipsctl
reference under the five-stage list. It draws the five stages left to
right with each stage's failure reasons below it, and the bypass that
skips both lookup stages when the coordinates are cached or the target
is a direct peer. Its branches come from the probe state machine rather
than from the report, so the path stage is drawn as the one failure that
does not stop the probe.

A rewrite of the README's "What FIPS does" section. It now opens with
what a machine running FIPS gets, rather than with the two deployment
modes, and gives the self-organizing and permissionless property its own
paragraph since it holds for both modes.

A regrouping of the README's feature list into the mesh, getting traffic
onto it, and running a node, with a bullet added for the native datagram
API, which had none despite sitting in the support matrix. The Quick
start now leads with the released packages rather than a source build.
It also fixes a real defect: the package enables fips.service and
fips-dns.service and starts neither on a fresh install, so .fips name
resolution was silently dead until the next reboot and neither page said
to start the service.

A rewrite of the release notes. They opened with seven subsections of
upgrade caveats and reached the first feature two hundred lines in; they
now open with a summary of the release and elaborate below it in the
same order. Android is stated as supported through an embedded crate
rather than as a standalone daemon, consistently across all three
documents. The OpenWrt pair is corrected: it is 802.11s between routers
with FIPS supplying encryption, authentication and routing, plus a
convention of an open !FIPS SSID a client joins over WiFi, not meshing
over a router's own radios. The probe's path output is described as the
least-common-ancestor walk, which is the worst-case fallback route
rather than the route a packet takes. Detail that did not change what a
reader does was cut from the notes and kept in the changelog.
2026-08-30 10:42:59 +00:00

604 lines
32 KiB
Markdown
Raw Blame History

This file contains ambiguous Unicode characters
This file contains Unicode characters that might be confused with other characters. If you think that this is intentional, you can safely ignore this warning. Use the Escape button to reveal them.
# FIPS Discovery: Nostr-Mediated and LAN/mDNS
FIPS nodes have two discovery mechanisms beyond the static `peers[]`
list. The bulk of this document describes **Nostr-mediated discovery**,
which works across the internet using public Nostr relays as a
signaling channel and can punch through UDP NAT. A second, much
simpler mechanism — **LAN/mDNS discovery** — finds peers on the same
local link with no relay, STUN, or NAT traversal at all; it is
described in its own section near the end. The two are independent: a
node can enable either, both, or neither.
Nostr-mediated discovery lets FIPS nodes find each other, and if
necessary, punch through UDP NAT, using public Nostr relays as the
signaling channel. A node publishes its reachable transport endpoints to
a small set of relays under its own Nostr identity (which is also its
FIPS identity), and peers resolve those endpoints at dial time by npub.
For peers behind UDP NAT, the same relay channel carries an encrypted
offer/answer exchange, and STUN supplies the reflexive address used for
a coordinated hole-punch.
Nostr discovery is unconditionally compiled into the `fips` binary on
every supported platform and ships in every published release artifact
(`.deb`, AUR, systemd tarball, OpenWrt `.ipk` and `.apk`, FreeBSD
`.pkg`, macOS `.pkg`, Windows `.zip`). It is runtime-opt-in: the YAML
configuration defaults to disabled (`node.rendezvous.nostr.enabled:
false`), so the discovery runtime stays dormant — and opens no relay
connections — until an operator flips the flag. Default relay and
STUN-server lists ship in the config; both are optional overrides. When
disabled, nodes behave exactly as before: only the static `peers[]`
addresses are used.
## Role
The feature adds three capabilities on top of FIPS's static peer model:
- **Advertising.** A node publishes the transport endpoints it wants
peers to use (direct UDP, direct TCP, a Tor onion, or the special
`udp:nat` rendezvous token) as a signed Nostr event. The advert is
anchored to the node's FIPS identity key — a peer that knows the npub
knows the advert is authentic.
- **Lookup.** When dialing a configured peer marked `via_nostr`, or any
peer in `policy: open` mode, the node fetches that peer's advert from
the configured relays and appends the advertised endpoints to its
dial list. Static addresses are always tried first.
- **UDP NAT hole-punch.** When both sides of a connection have UDP NAT
endpoints, the advert carries enough information to run a STUN-based
offer/answer exchange over encrypted ([NIP-59](https://github.com/nostr-protocol/nips/blob/master/59.md))
Nostr events. Each side observes its reflexive address via STUN,
exchanges candidate pairs through the relay, and both sides send UDP
probes at a shared punch time. On the first successful probe, the
punch socket is handed to FMP and becomes a normal UDP transport.
## When to use it
- **You run a public node** and want peers who know your npub to reach
you without you distributing an address list out-of-band.
- **You want to reach a peer behind UDP NAT** without deploying a relay
or running Tor on both sides. The peer advertises `udp:nat` and you
dial by npub.
- **You want zero-touch peer discovery** within a known application
namespace (`policy: open`), subject to an admission budget.
- **You want to advertise a Tor onion** so peers don't need to know the
`.onion` address out-of-band.
Skip the feature when every peer is already reachable through a stable
static address (a LAN mesh, a pre-configured test bed, or a deployment
where operators distribute `peers[]` blocks directly). The feature adds
relay dependencies, STUN round-trips for NAT cases, and a small ambient
background of relay traffic; none of that is useful when you already
know where peers are.
## Scenarios and configuration
For end-to-end operator recipes — each of the five activation scenarios
(advertise a directly-reachable UDP node, advertise a Tor onion node,
look up a configured peer by npub without advertising, NAT hole-punch
between two configured peers, and open discovery within an `app`
namespace) — see
[../how-to/enable-nostr-discovery.md](../how-to/enable-nostr-discovery.md).
The full configuration knob tables, per-transport keys, and startup
validation rules live in
[../reference/configuration.md](../reference/configuration.md) under
`node.rendezvous.nostr.*`. The Kind 37195 advert event format is in
[../reference/nostr-events.md](../reference/nostr-events.md). The rest
of this document covers the design of the discovery runtime itself.
## Under the covers
The rest of this document describes how the feature works inside the
node. For the generic protocol shape (event tags, NIP usage, on-the-
wire offer/answer schema, failure-suppression machinery), see
[port-advertisement-and-nat-traversal.md](port-advertisement-and-nat-traversal.md).
### Overview
The discovery runtime is a background task group started during node
initialization when `nostr.enabled` is true. It maintains a single
`nostr-sdk` client connected to the union of `advert_relays` and
`dm_relays`, and runs four loops: advert publication, advert
subscription (for open discovery and cache warming), DM subscription
(for incoming offers and answers), and a periodic advert-cache prune.
Discovery has no CLI surface; all operations are driven by the
configuration and by connection attempts made by the rest of the node.
```text
+-----------------------+
| Discovery runtime |
+-----------------------+
| | |
advert publish | | DM sub (offers, answers)
| |
v v
+-------------------------+
| Nostr relay pool | (advert_relays ∪ dm_relays)
+-------------------------+
^ ^
advert fetch/cache | | encrypted signaling
| |
+----------------+ | | +--------------------+
| connect_peer |--+ +->| offer / answer |
| (node side) | | handler |
+----------------+ +--------------------+
| |
v v
+---------+ +--------------+
| STUN |<-- same socket --->| UDP punch |
+---------+ +--------------+
|
v
adopt_established_traversal()
|
v
FMP IK handshake
on adopted socket
```
### Phase 1 — Advertisement
Adverts are published as Nostr kind `37195` parameterized replaceable
events (FIPS-specific, in the application-defined replaceable range
`30000–39999`; the digits visually spell `FIPS` — 7=F, 1=I, 9=P, 5=S).
The `d` tag is hardcoded to the wire-format identifier
`fips-overlay-v1` (or `fips-overlay-v1-next` on the `next` branch),
so each node has a single, in-place-updatable advert under its
identity. The configurable `app` value populates a separate
`protocol` tag, which scopes adverts within a relay set without
splitting them across multiple `d`-tag streams. The event is signed
with the node's FIPS identity key; there is no separate Nostr key. A
NIP-40 `expiration` tag is set to now + `advert_ttl_secs`, and a
`version` tag carries the protocol version. The advert content is a
JSON document shaped as `OverlayAdvert` (see
[../reference/nostr-events.md](../reference/nostr-events.md) for the
schema).
Publication happens on startup, again whenever the set of advertised
endpoints changes (for example, when a Tor onion hostname first
becomes available), and on a refresh timer every `advert_refresh_secs`.
If the `advertise` flag is turned off, the previous advert event is
deleted using a NIP-9 kind 5 delete event. Advert publication is
fan-out: the same event is sent to every relay in `advert_relays` with
no explicit failover — relay redundancy is implicit.
For a UDP or TCP transport with `public: true`, the address advertised
follows a fixed precedence: an operator-supplied `external_addr` wins;
otherwise a non-wildcard bound `local_addr` is used directly;
otherwise — only for UDP — the runtime asks `stun_servers` for the
reflexive address of the bound socket and advertises that. TCP has no
STUN equivalent, so wildcard-bound TCP without `external_addr`
produces a loud WARN and the endpoint is omitted from the advert.
### Phase 2 — Lookup
When the node decides to dial a peer that is eligible for Nostr
resolution (a `via_nostr` peer, or any peer under `policy: open`), it
issues a Nostr REQ filtered by `author = peer_pubkey`, `kind = 37195`,
`#d = fips-overlay-v1`. The fetch is time-bounded (~2 s) and runs
against all configured `advert_relays` in parallel. The first valid
advert wins; adverts whose `protocol` tag does not match the local
`app` value are rejected at validation.
Results are kept in an in-memory cache keyed by author npub. Cache
entries carry the advert's expiration time; a periodic prune drops
expired entries, and an LRU-by-expiry eviction enforces
`advert_cache_max_entries`. A parallel long-lived subscription on the
advert relays populates the cache passively, so open-discovery
candidates do not require per-dial fetches.
On cache hit, advert endpoints are appended to the peer's static
address list with lower priority; the static list is tried first.
### Phase 3 — Offer/Answer signaling
For any endpoint shaped as `udp:nat`, dialing triggers an
offer/answer exchange before the first packet is sent. Signaling events
are Nostr kind `21059` (ephemeral, not stored by conforming relays),
gift-wrapped per [NIP-59](https://github.com/nostr-protocol/nips/blob/master/59.md)
and encrypted with [NIP-44](https://github.com/nostr-protocol/nips/blob/master/44.md),
so only the intended recipient can decrypt the payload.
The initiator performs STUN first (see Phase 4), then builds a
`TraversalOffer` containing:
- A unique `sessionId` and a random `nonce` (used to correlate the
answer).
- Its reflexive address (if STUN succeeded).
- Its list of local (private) addresses for same-LAN paths.
- The STUN server it used, for informational reporting only.
- An `expiresAt` equal to now + `signal_ttl_secs`.
The offer is sealed to the recipient's npub and published to the peer's
preferred signaling relays — the node first tries to resolve the peer's
NIP-17 DM relay list (kind 10050), and falls back to `dm_relays` if
the inbox-relays fetch fails. Each side also publishes its own inbox
relay list on startup so dialers can discover it.
On the receiving side, admission is a pair of bounds taken together: a
per-sender allowance of `max_concurrent_offers_per_npub`, keyed on the
npub that signed the gift wrap, nested inside a global
`max_concurrent_incoming_offers`. A sender over its own allowance is
refused at debug, since by definition it is sending faster than the node
wants and a record per rejection would turn the spam into log volume; the
global bound being reached is the operator-visible warn, because that one
says the node is genuinely saturated. Together they keep one identity
from holding the whole pool. They do not make the pool inexhaustible:
nostr identities are free to generate, so an attacker running
`ceil(max_concurrent_incoming_offers / max_concurrent_offers_per_npub)`
throwaway npubs still saturates it at the same total offer rate. Raising
the attacker's cost beyond keypairs would mean pricing the offer itself.
A `sessionId` replay cache (bounded by `seen_sessions_max_entries`, with
entries valid for `replay_window_secs`) rejects duplicates.
The responder runs its own STUN query and replies with a
`TraversalAnswer` carrying its reflexive and local addresses plus a
`PunchHint { startAtMs, intervalMs, durationMs }` that tells both sides
when to begin probing and how aggressively. If the responder has no
usable addresses at all, it replies with `accepted: false` and a
`reason` string.
### Phase 4 — UDP hole-punch
Each side runs STUN (parsing XOR-MAPPED-ADDRESS from the response, all
other attributes ignored) on the *same* UDP socket it will later use
for punching and for the adopted FMP transport. This is critical: NAT
state is per-socket, so the punch has to reuse the socket that taught
the NAT about this binding.
Given its own reflexive + local addresses and the peer's, each side
builds a candidate-pair plan that tries, in priority order:
1. **Reflexive ↔ reflexive.** The classic STUN path. Tried first because
it is the only candidate that's reliable across arbitrary network
topologies — host candidates from one peer that happen to be
reachable from the other (via a corporate VPN, a Tailscale subnet
route, or overlapping private address space) will succeed at the
socket layer in the punch but fail in the FMP handshake when the
return path doesn't match.
2. **LAN ↔ LAN.** If both sides share a /24 prefix, same-subnet private
addresses are likely reachable directly. Only fires when both peers
shared local host candidates (which requires `share_local_candidates`
to be enabled — off by default).
3. **Mixed.** Reflexive on one side, local on the other — catches
hairpin and one-side-public scenarios.
At `startAtMs` both sides begin sending 24-byte probe packets on the
candidate pair(s) at `intervalMs` cadence for up to `durationMs`. A
probe carries a 4-byte magic (`NPTC`), a 4-byte sequence, and the
first 16 bytes of `SHA256(sessionId)`; both sides can compute the same
session hash independently from the public `sessionId`, so no shared
secret is needed on the punch path itself. On receiving a valid probe,
a side replies with an `NPTA` ack. The first valid probe or ack seen
from the far side records the working remote address and completes the
attempt.
On timeout (`attempt_timeout_secs` as overall bound,
`punch_duration_ms` as probe window), both sides issue NIP-9 deletes
for their offer and answer events and report failure up to the
discovery runtime's `BootstrapEvent::Failed` channel.
### Phase 5 — Adoption
On success, the discovery runtime emits `BootstrapEvent::Established`
carrying the session id, the punch socket, and the learned remote
address. `adopt_established_traversal()` in the node lifecycle takes
the socket, registers it with the UDP transport layer as a new
transport instance, and calls `initiate_connection()` with the peer's
FIPS identity as the expected remote. FMP's Noise IK handshake runs on
the same socket — there is no "promote link" step between punch and
handshake; the punch socket *is* the FMP socket.
From that moment on, the connection is a normal FMP link and is
subject to the usual liveness (MMP heartbeats), rekey, and removal
behavior. A link-dead event does not re-enter the discovery runtime
automatically; reconnection relies on `auto_reconnect` and the same
dial path that triggered the original punch.
### Auto-connect semantics
Discovery does not itself initiate connections. It only supplies
addresses. Dial attempts originate from the existing peer-connection
machinery:
- **Configured peers** (`peers[]` with `connect_policy: auto_connect`)
are dialed on startup and on retry. When `via_nostr` is set, advert
endpoints are appended to the dial list with lower priority than
static entries.
- **Open discovery peers** are assembled from the advert cache, fenced
by the peer ACL, and enqueued into a bounded retry queue sized by
`open_discovery_max_pending`. There is no event-driven
"connect on every advert" — a peer re-enters the queue only when its
prior attempt has drained.
- **Manual dials** (`fipsctl connect`) can target any configured peer
and use the same dial path, including Nostr resolution if configured.
### Rate limits and safeguards
| Mechanism | Default | What it prevents | Behavior at limit |
| --- | --- | --- | --- |
| Offer semaphore (`max_concurrent_incoming_offers`) | 16 | CPU and memory exhaustion from offer spam on DM relays. | Warn log, offer dropped. |
| Per-npub offer allowance (`max_concurrent_offers_per_npub`) | 4 | One sender identity holding every offer slot and denying traversal onboarding to everyone else. Does not prevent the same denial from several throwaway npubs. | Debug log, offer dropped. |
| Advert cache (`advert_cache_max_entries`) | 2048 | Memory growth from ambient advert traffic under `policy: open`. | LRU-by-expiry eviction. |
| Seen-sessions (`seen_sessions_max_entries`) | 2048 | Replay of stale `sessionId` values. | Oldest entry evicted. |
| Signal TTL (`signal_ttl_secs`) | 120 s | Indefinite in-flight offers on relays. | Expired offers rejected at validation. |
| Open discovery queue (`open_discovery_max_pending`) | 64 | Unbounded retry queue under ambient advert load. | New candidates skipped until the queue drains. |
| Punch window (`punch_duration_ms`) | 10 s | Endless probe traffic after one side has given up. | Attempt declared failed; sockets discarded. |
| Failure-streak threshold (`failure_streak_threshold`) | 5 | Repeated traversal attempts against a peer that keeps failing. | Peer enters extended cooldown. |
| Extended cooldown (`extended_cooldown_secs`) | 1800 s | Tight retry loops after a failure streak. | Per-peer suppression for the cooldown window. |
| WARN log throttle (`warn_log_interval_secs`) | 300 s | Log floods from a peer that fails on every attempt. | One WARN per peer per interval; the rest demote to debug. |
| Failure-state cap (`failure_state_max_entries`) | 4096 | Memory growth from per-peer failure tracking. | LRU eviction. |
The load-shedding mechanisms (`max_concurrent_incoming_offers` and the
failure-streak / extended-cooldown pair) are deliberately conservative
so that a misbehaving relay cannot flood the node with offers and a
chronically unreachable peer cannot keep the traversal pipeline
saturated. The remaining rows are capacity bounds.
Adverts also undergo a stale-advert sweep: cached entries whose
`expiresAt` has passed are evicted on the periodic prune tick. Inbound
signaling tolerates ±60 s of clock skew between sender and receiver,
and the runtime maintains an NTP-style skew estimate per remote so
that consistently-skewed relays don't trip the freshness check.
### Relay model
All configured relays (advert + DM) are opened on a single
`nostr-sdk::Client` at startup. Publication is fan-out: the same event
is sent to every relay in the target list, with no explicit retry or
relay selection. Redundancy is implicit — a downed relay simply means
its copy of the advert or signal is unavailable, while other relays
still serve the same data.
For signaling specifically, the node prefers the recipient's NIP-17
DM relays when available (the recipient publishes its DM relay list as
a kind 10050 event to its own DM relays on startup) and falls back to
the local `dm_relays` list otherwise. This keeps the common case
off the sender's DM relays when those are different from the
recipient's, at the cost of one extra NIP-17 fetch per offer.
There is no per-relay rate limiting or health check. The relay model
assumes that an operator chooses relays they trust to be best-effort
available and that outright misbehavior is handled at the offer
semaphore and replay-cache layers downstream.
## Security and threat model
- **Relay operators can observe metadata.** They see which npubs
publish adverts, to whom offers are sent, and the timing of that
traffic. The *contents* of offer and answer events are
NIP-59/NIP-44 sealed — only the intended recipient decrypts them.
Adverts are public by design.
- **STUN servers see the node's public IP and port.** Only the STUN
servers listed in the node's own `stun_servers` are ever contacted
for reflexive discovery. Peer-advertised STUN values are
informational; a malicious peer cannot steer this node to a
chosen STUN target. See the doc comment on
`node.rendezvous.nostr.stun_servers`.
- **The FIPS identity key signs adverts.** Compromise of
`fips.key` is compromise of the node's Nostr identity — an attacker
can publish adverts on behalf of the node. The recovery path is
the same as for any identity compromise: rotate the key and
re-advertise. There is no separate Nostr keypair to rotate
independently.
- **Tor advertising leaks timing via clearnet relays.** When a
Tor-only node advertises its onion address, the advert itself is
published on clearnet WebSocket relays. Operators who want full
unlinkability between the advertising identity and the node's
IP must route relay traffic through Tor as well — for example by
running `fips` inside a network namespace with a Tor SOCKS
proxy as its only egress, or by pointing `advert_relays` and
`dm_relays` at onion relay endpoints.
- **Open discovery accepts anyone publishing on the same `app`.**
Admission control is the peer ACL, not the discovery layer. Verify
the ACL before enabling `policy: open`, and consider using a
non-default `app` value to scope visibility.
- **Nothing about discovery bypasses FMP.** A successful punch yields
a UDP socket with a claimed remote identity. That identity is not
trusted until FMP's Noise IK handshake completes. A peer whose
advert says "I am npub X at 1.2.3.4:5678" but whose FMP handshake
presents a different static key is rejected at the mesh layer.
## LAN/mDNS discovery
LAN discovery is a separate, link-local discovery mechanism that finds
peers on the same broadcast domain using mDNS / DNS-SD
([RFC 6762](https://www.rfc-editor.org/rfc/rfc6762) /
[RFC 6763](https://www.rfc-editor.org/rfc/rfc6763)). Unlike
Nostr-mediated discovery, it contacts no relay, runs no STUN
observation, and performs no NAT traversal: an endpoint learned from a
LAN advert is by construction routable from the consumer's own link.
The result is sub-second peer pairing on the same LAN.
It is unrelated to the "LAN candidate" terminology used in the
NAT-traversal sections above (which refers to a host's own
locally-bound address offered as a hole-punch candidate). LAN/mDNS
discovery is a distinct subsystem under `src/mdns/`.
### Role
LAN discovery adds two capabilities, both confined to the local link:
- **Advertising.** The node publishes a `_fips._udp.local.` DNS-SD
service advert carrying its `npub`, its protocol version, and (if
configured) a discovery scope. The advert is multicast on the local
link only; it does not leave the broadcast domain unless the
operator's network bridges mDNS.
- **Browsing.** The node concurrently browses for the same service
type, learns the endpoints of other FIPS nodes on the link, and
initiates a normal FMP link to each newly-seen peer.
The mDNS service type is `_fips._udp.local.`
(`src/mdns/mod.rs:45`). Per RFC 6763 the `_udp` label denotes
the IP transport used for the advert, not the FIPS upper protocol —
both UDP and TCP FIPS endpoints announce under the same service type
because the link-layer handshake travels over UDP either way. (In
practice LAN discovery dials only over a UDP transport; see the
handshake subsection.)
### When to use it
- **You run several FIPS nodes on one LAN** (a lab bench, an office
segment, a home network) and want them to find each other without
hand-maintaining `peers[]` blocks or standing up Nostr discovery.
- **You want the lowest-latency pairing path.** Same-link pairing
completes in well under a second with no relay round-trip.
Skip it when nodes are not on a shared broadcast domain (mDNS does not
cross routed boundaries), or when you do not want the node to multicast
its identity on the local link. LAN discovery is **opt-in and disabled
by default**, so doing nothing leaves it off.
### How it works
The LAN discovery runtime (`src/mdns/mod.rs`) is started
during node initialization when `node.rendezvous.lan.enabled` is true.
It is independent of Nostr discovery and runs even when Nostr is
disabled (`src/node/lifecycle/supervisor.rs:432-437`). Startup requires an
operational UDP transport: the node advertises the port of its
lowest-`TransportId` operational, non-bootstrap UDP transport, chosen
deterministically so the advertised port is stable across restarts
(`src/node/lifecycle/mod.rs:1598-1609`). If no such port exists, the
runtime returns `NoAdvertisedPort` and LAN discovery does not start
(`src/mdns/mod.rs:165-167`).
The runtime does two things concurrently:
1. **Responder.** It registers a DNS-SD service with instance name
`fips-<first-16-chars-of-npub>` and a TXT record carrying the keys
below. `mdns-sd`'s address auto-detection appends every non-loopback
interface address, with `127.0.0.1` seeded so same-host peers and
integration tests can still resolve the advert
(`src/mdns/mod.rs:179-212`).
2. **Browser.** A background pump receives `ServiceResolved` events for
the same service type. For each resolved advert it extracts the
`npub` and `scope` TXT values, drops adverts that echo the node's own
npub, drops cross-scope adverts (see scope filtering), drops records
without an `npub`, and surfaces one `LanDiscoveredPeer` per routable
interface address (`src/mdns/mod.rs:230-297`). IPv6
unicast link-local addresses without an interface scope id are
skipped, since they cannot be dialed unambiguously
(`src/mdns/mod.rs:357-370`).
The TXT record carries three keys (`src/mdns/mod.rs:48-55`):
| TXT key | Contents |
| --- | --- |
| `npub` | bech32-encoded npub of the advertising node |
| `scope` | the node's discovery scope, if one is configured (omitted otherwise) |
| `v` | FIPS protocol version (the same `PROTOCOL_VERSION` used by the Nostr advert) |
Once per node tick, the node drains browser events and acts on them in
`poll_lan_rendezvous()` (`src/node/lifecycle/mod.rs:1131`, called from
`src/node/dataplane/rx_loop.rs:444`). For each discovered peer it finds
a UDP transport whose family matches the peer address, parses the
`npub` into a `PeerIdentity`, skips peers it is already connected to or
currently connecting to, and otherwise initiates a connection.
### Handshake: Noise IK
LAN-discovered peers are dialed through the standard FMP outbound link
path. `poll_lan_rendezvous()` calls `initiate_connection()`
(`src/node/lifecycle/mod.rs:448`), which, for connectionless transports
such as UDP, allocates a link and **starts the Noise IK handshake**
(documented at `src/node/lifecycle/mod.rs:438-442`). This is the same
link-layer handshake used by every other FMP connection — IK at the
link layer per the FIPS architecture — not a different pattern for LAN
peers.
The mDNS advert is **unauthenticated**: anyone on the link can
multicast a TXT claiming any `npub`. Identity is proven end-to-end by
the Noise IK handshake against the observed endpoint. A spoofed advert
carrying another node's npub fails the handshake — the impostor does
not hold the matching static key — and the half-open link is dropped.
The mDNS advert is therefore a routing hint, never an identity
assertion, exactly as a Nostr advert is treated (a successful contact
is not trusted until FMP's Noise IK handshake completes).
> Note: stale source doc-comments at `src/mdns/mod.rs:14, 76, 153`
> describe this path as a "Noise XX" handshake. Those comments are
> inaccurate — the path uses Noise IK as described above. They are
> flagged for a separate source fix and do not reflect actual
> behavior.
### Scope filtering
When a discovery scope is configured, the advert carries it in the
`scope` TXT entry and the browser surfaces only peers whose advert
carries a matching scope. Nodes on the same physical LAN but configured
for different mesh networks therefore do not cross-feed each other.
The scope is resolved by `lan_rendezvous_scope()`
(`src/node/lifecycle/mod.rs:1104`): the explicit
`node.rendezvous.lan.scope`, if non-empty, is used directly. Otherwise
the node falls back to deriving a scope from the Nostr discovery `app`
tag (stripping the `fips-overlay-v1:` prefix when present). This lets
an application keep its public, relay-visible Nostr `app` tag generic
while still isolating LAN discovery per private network, or share one
value across both. A node with no scope on either side surfaces all
adverts it sees on the link.
### Configuration
LAN discovery is configured under `node.rendezvous.lan.*`
(`src/config/node.rs:334`, `src/mdns/mod.rs:92-114`):
| Key | Type | Default | Meaning |
| --- | --- | --- | --- |
| `node.rendezvous.lan.enabled` | bool | `false` | Master switch. LAN discovery is opt-in; default-off avoids an unexpected per-link identity multicast on upgrade. |
| `node.rendezvous.lan.service_type` | string | `_fips._udp.local.` | DNS-SD service type. Overridable mainly so integration tests can isolate multiple services on one loopback interface. |
| `node.rendezvous.lan.scope` | string (optional) | unset | Application/network scope carried in the LAN-only `scope` TXT record. Kept deliberately separate from the public Nostr `app` tag. When unset, the scope falls back to the derived Nostr `app` value. |
The identity surface published over mDNS (`npub`, version, optional
scope) is a strict subset of what `nostr.advertise` already publishes
publicly, so enabling LAN discovery adds no marginal privacy cost
beyond making the node's presence observable on its own local link.
### Relationship to Nostr discovery
The two mechanisms are complementary and independent:
| | Nostr-mediated | LAN/mDNS |
| --- | --- | --- |
| Reach | Internet-wide, via relays | Same broadcast domain only |
| Signaling channel | Public Nostr relays | mDNS multicast on the local link |
| NAT traversal | STUN + UDP hole-punch for `udp:nat` peers | None — endpoint is link-routable by construction |
| Identity carrier | signed kind 37195 advert (authenticated at publish) | unauthenticated mDNS TXT (routing hint only) |
| Identity proof | FMP Noise IK on the connection | FMP Noise IK on the connection |
| Default | disabled (`nostr.enabled: false`) | disabled (`lan.enabled: false`) |
| Scope key | `app` tag (public) | `scope` TXT (link-local), falls back to `app` |
Both ultimately converge on the same trust boundary: discovery only
supplies candidate endpoints, and no peer is trusted until FMP's Noise
IK handshake confirms the claimed identity. A node may run both at
once — for example, advertising globally over Nostr while also pairing
instantly with same-LAN peers — with no interaction between the two
beyond the shared scope fallback.
## See also
- [../how-to/enable-nostr-discovery.md](../how-to/enable-nostr-discovery.md)
— operator activation recipes grouped under three capabilities
(resolve, advertise, open) across five scenarios.
- [../tutorials/resolve-peers-via-nostr.md](../tutorials/resolve-peers-via-nostr.md),
[../tutorials/advertise-your-node.md](../tutorials/advertise-your-node.md),
and [../tutorials/open-discovery.md](../tutorials/open-discovery.md)
— hand-held walkthroughs of the three capabilities, in
pedagogical order.
- [../reference/configuration.md](../reference/configuration.md) — full
configuration reference, including all surrounding keys elided from
the scenarios above.
- [../reference/nostr-events.md](../reference/nostr-events.md) — Kind
37195 (overlay advert), Kind 21059 (gift-wrapped traversal
signaling), Kind 10050 (NIP-17 inbox relay list).
- [../reference/security.md](../reference/security.md) — consolidated
security reference, including how the FIPS identity key signs both
adverts and Noise handshakes.
- [fips-transport-layer.md](fips-transport-layer.md) — UDP, TCP, and
Tor transport mechanics; the punch socket is adopted as a normal
UDP transport after handoff.
- [fips-mesh-layer.md](fips-mesh-layer.md) — FMP Noise IK handshake
that runs on the adopted socket.
- [port-advertisement-and-nat-traversal.md](port-advertisement-and-nat-traversal.md)
— generic protocol reference (event tags, NIP usage, on-the-wire
offer/answer schema, failure-suppression machinery), with the
FIPS-specific values called out as worked examples.