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A client process opens a flow to a peer's public key on a chosen port and sends and receives datagrams on a file descriptor the daemon hands it. No IPv6 emulation, no TUN device, no DNS: a datagram travels from key to key. The feature is off by default and is not a stable interface. The wire needs no change and gets none. Every FSP data packet has carried a port pair inside its AEAD envelope since v0.2.0, and port 256 is simply the IPv6 shim. What was missing was a way for a program to ask for a port of its own and be handed the traffic. Addressing is the part worth reading twice, because the obvious design is wrong. The x-only public key is the address. An npub is that key written in bech32, so converting between them is a local encoding rather than a lookup or a name service. The 16-byte node address that travels on the wire is the first half of a SHA-256 of the key: it is a truncated hash, it does not invert, and it appears nowhere a client can see. An earlier iteration of this work reported a peer by that hash and could supply a key only sometimes, which is what treating a wire identifier as an identity produces. An accepted flow therefore always knows its peer. The key is captured where the peer is authenticated rather than looked up when a report is rendered: every inbound datagram passes one call site inside a handler that refuses anything whose session is not established, and the responder has already rejected the session unless the claimed address derives from the key it proved. Reaching for the identity cache instead gives a best-effort answer from a structure that evicts. A listener is a descriptor. The daemon writes one message per arrival to it, carrying the new flow's descriptor and the peer's address, so poll, select and epoll work on a listener and accepting is a recvmsg. That is what lets the API be used from a program that already has an event loop, which a command-and-reply listener could not support: an arrival could not be waited on beside anything else. There is no accept command and no reject command. Refusing a flow is closing the descriptor you were handed. The Rust surface mirrors std::net. FipsStream::connect, FipsListener::bind, incoming, accept, io::Result and an errno mapping rather than a bespoke error type. An address is given as an npub, as a key, or as a pair, through one parameter, the way ToSocketAddrs takes several spellings of one thing. Each type holds its descriptor and copies of what setup told it and nothing else, so a stream that outlives its setup connection is not representable. set_nonblocking, AsFd and the four deadline methods carry the names and signatures std::net uses for the same jobs. They were asked for by a user integrating the API with tokio: AsyncFd requires a non-blocking descriptor, and anything receiving from a peer needs a bounded wait. AsFd is the better of the two descriptor accessors, because the borrow cannot outlive the value that owns the descriptor, so a reactor cannot hold a registration for a descriptor that has since been closed and its number reused by the next open. The non-blocking flag is read, modified and written back rather than assigned, since the flag word carries more than that one bit and a caller may have set O_ASYNC. A zero timeout is refused with EINVAL, because the kernel reads a zero timeval as "wait for ever", which inverts what a caller passing zero means; std::net refuses it for the same reason. The two directions are separate options and stay that way. FipsListener gets no timeout methods, matching TcpListener: bounding an accept is set_nonblocking plus the caller's own poll, which the reactor how-to builds. A flow taken from accept is blocking whatever the listener was set to, because the two are separate sockets and the daemon hands over a fresh one. One rule has no counterpart in Berkeley sockets and a client author must know it: the v1 wire carries no half-close, so nothing peer-driven ever closes a flow. A server written to read until the flow ends waits for a signal that cannot arrive, holding a thread and a flow per peer until its process exits. A program decides its own termination, and the example serves one datagram per flow. The tests reach a live daemon rather than a stand-in. Every public item had a unit test against a hand-written stand-in with canned replies, and the five entry points a program actually calls first, connect, connect_from, connect_at, bind and the SOCKET constant, had no coverage of any kind, because the tests that appear to cover them build a Wire over a socket pair and hand it to the private open and hold, so nothing ever resolved a socket path or mapped its errors. examples/native-surface.rs walks all thirty-eight items against a running daemon and reports the number of assertions it made. The count is read from the recorder rather than written as a literal, and the harness asserts the exit status, the completion marker and the count together, so deleting an assertion fails the check rather than quietly shrinking it. Watchdogs turn a hang into a named failure, which several of the walked behaviours would otherwise produce. The shared Docker image is built once for every integration leg, so the new binary is staged at all ten places the existing one is, the interop builder included, which gets a stub because those images exercise the wire between daemon versions and older refs do not carry the example. The platform gating was tested rather than reasoned about: flipping all eleven gates so the native API is excluded leaves the crate compiling clean across the workspace, every target and the profiling feature. The shipped docs tree gains what only the LaTeX manual under design/ had, which is not published with the daemon. A reference entry covers the whole surface: addressing and the port tiers, the Berkeley mapping, every method on FipsAddr, FipsStream, FipsListener and Incoming, the errno table, the ceilings, the four places data disappears with nothing reported, the line protocol and the command reference. The errno table gives names rather than numbers, since the client maps each name onto the libc constant for the platform it was built for and the supported platforms disagree on the numbers. A tutorial side trip stands up two throwaway nodes on one machine, peered over loopback UDP with no TUN and no DNS, then writes a listening program and a connecting program against them; it needs neither the public mesh nor root, because the native path is the one that does not go through the IPv6 adapter. The obligations a client in another language carries are a how-to of their own, since they are a task rather than a description: reading the setup connection with recvmsg, associating a descriptor with the last complete line, telling an empty datagram from a close, and six others. Serving many peers from one poll loop is another, with the whole program, because the straightforward listener spawns a thread per flow and that is wrong at the node's ceiling of 256. The drop causes are a table mapping each of the seven texts DropReason::as_str produces to the counter it increments, with drop_oversize called out as the ninth counter that is not in the table. What a daemon restart costs is a section of its own: every flow and listener ends, descriptors do not survive, there is no resumption, and datagrams sent but not yet forwarded are lost through a window nothing bounds. A stack comparison diagram places the interface against the stack a reader already knows: the same application over HTTP, TLS, TCP, IP and Ethernet on one side, and over its own format, FSP, FMP and a FIPS transport on the other, aligned so each row is one concern. The two columns are not alternatives and are not drawn as such. An unmodified IPv6 program's packets reach fips0, and the adapter hands each one to FSP as a payload, so the left stack runs inside the right one; the left column ends at a fork, eth0 for the ordinary internet and fips0 for the mesh, and an arrow leaves fips0 and runs back up into FSP's input. The row where TCP would be is empty on purpose and names Reliable Object Delivery, which is where that capability is expected to land. ROD is a v2 capability, the box is dashed because none of it exists yet, and the design entry says the part a reader needs most: nothing on the surface anticipates it, so a program written today should assume it does not exist. Both endpoints carry a scheme and a worked port, https://<npub>.fips:443 and fips://<npub>:443, with a footnote saying the two ports are not the same kind of thing, a TCP port inside the tunnel on the left and an FSP port on the right. The fips:// form is a coinage: nothing in the tree parses it, nothing registers the scheme, and the API takes a key and a port as separate arguments rather than a URL. The diagram also says where the right column stops, since FIPS over UDP still rides IP and Ethernet beneath. It appears in fips-concepts.md and fips-ipv6-adapter.md, which were making its argument in prose without a picture, and deliberately not in fips-architecture.md, which already carries the OSI mapping and makes the same point about the transport row. The gateway's control socket moves onto the same bind policy this API uses, which is the one change here that touches deployed behaviour: fips-gateway now tightens /run/fips to 0750. That is unreachable under the packaged deployment, where fips.service has already created the directory at that mode, and reachable for a source build or a container that starts the gateway alone. One changelog entry under Added, describing the released state: what a client opens and reads, the addressing and why the node address is not it, the listener being a descriptor, the std::net shape of the Rust surface, and the one rule Berkeley sockets have no counterpart for. It says in as many words that the wire is unchanged.
321 lines
16 KiB
Markdown
321 lines
16 KiB
Markdown
# Security Reference
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Consolidated security reference covering the nftables baseline, peer
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ACL file format, cryptographic primitives, rekey defaults, replay
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window, filesystem permissions, threat-resistance matrix, and default
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network exposures per transport. For the threat-model design and
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rationale, see [../design/fips-security.md](../design/fips-security.md).
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For the operator activation steps and drop-in recipes, see
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[../how-to/enable-mesh-firewall.md](../how-to/enable-mesh-firewall.md).
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## nftables Baseline
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The shipped baseline is `/etc/fips/fips.nft`. It defines a single
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nftables table `inet fips` with one chain hooked at `input`, structured
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as follows:
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| Step | Rule | Effect |
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| ---- | ---- | ------ |
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| 1 | `iifname != "fips0" return` | Match only traffic arriving on `fips0`; everything else short-circuits. |
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| 2 | `ct state established,related accept` | Allow conntrack replies and related ICMPv6 errors. |
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| 3 | `icmpv6 type echo-request accept` | Allow IPv6 echo (ping6 reachability). |
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| 4 | `include "/etc/fips/fips.d/*.nft"` | Splice in operator drop-ins (empty matches nothing). |
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| 5 | `counter drop` | Default-deny everything else; counter increments on every drop. |
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Outbound from `fips0` is unrestricted. The baseline is a documented
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dpkg conffile — operator edits to `/etc/fips/fips.nft` are preserved
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across upgrades.
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The systemd unit is `fips-firewall.service` (oneshot). It is **not**
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enabled by default; activation is an explicit operator gesture
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documented in
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[../how-to/enable-mesh-firewall.md](../how-to/enable-mesh-firewall.md).
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## Drop-In File Format
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Operator extensions live under `/etc/fips/fips.d/` with the `.nft`
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suffix. Each file is included inline into the `inbound` chain at the
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marked point and may contain any nftables rule lines valid in that
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context.
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Naming convention: `<purpose>-from-<source>.nft` keeps drop-ins easy
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to scan. Examples shipped in the design discussion:
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- `ssh-from-bastion.nft` — accept TCP/22 from a single mesh-node address
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- `http-from-cluster.nft` — accept TCP/80 from a `/64` mesh-address prefix
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- `dns-public.nft` — accept UDP/53 and TCP/53 from any mesh node
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- `git-from-trusted.nft` — accept TCP/9418 from a set of mesh-node addresses
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After editing, reload via
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`sudo systemctl reload-or-restart fips-firewall.service` (or
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equivalently `sudo nft -f /etc/fips/fips.nft` since the file is
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idempotent).
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## Cryptographic Primitives
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| Component | Choice | Where Used |
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| --------- | ------ | ---------- |
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| Curve | secp256k1 | FMP IK, FSP XK, Schnorr signatures |
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| Diffie-Hellman | ECDH on secp256k1 (x-only normalized) | Noise IK, Noise XK |
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| AEAD | ChaCha20-Poly1305 | FMP link encryption, FSP session encryption |
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| Hash | SHA-256 | NodeAddr derivation, Noise key schedule |
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| Key derivation | HKDF-SHA256 | Noise key schedule |
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| Signatures | secp256k1 Schnorr | TreeAnnounce, LookupResponse proof, Nostr adverts |
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| Noise pattern (link) | `Noise_IK_secp256k1_ChaChaPoly_SHA256`, with the deviation below | FMP link layer (IK with epoch payload) |
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| Noise pattern (session) | `Noise_XK_secp256k1_ChaChaPoly_SHA256`, with the deviation below | FSP session layer (XK with epoch payload) |
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These choices align with the Nostr cryptographic stack
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(secp256k1 + ChaCha20-Poly1305 + SHA-256) and the NIP-44 encrypted
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messaging standard.
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### Deviation: Empty Associated Data in the Handshake AEAD
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Both Noise patterns above deviate from the standard construction in one
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respect. The handshake AEAD uses an empty associated-data field where
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standard Noise `EncryptAndHash` uses the handshake hash `h`.
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The choice was deliberate. Using secp256k1 rather than 25519 already put the
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construction outside standard Noise, so no standard-Noise peer could be
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confused with it, and the transcript hash bought no distinguishing value.
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That argument is about domain separation, and on those grounds it holds. It
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does not cover transcript binding, which is the property actually absent.
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Domain separation and DH binding survive through the chaining key `ck`, which
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`mix_key` chains from `ck = h`, seeded from the protocol name in
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`SymmetricState::initialize` (`src/noise/handshake.rs`). The handshake hash
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`h` is maintained at every step and is never fed to the AEAD, so it binds
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nothing.
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## Rekey Defaults
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Both link-layer and session-layer Noise sessions rekey under one of
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two triggers, configurable under `node.rekey.*`:
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| Parameter | Default | Description |
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| --------- | ------- | ----------- |
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| `enabled` | `true` | Master switch. |
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| `after_secs` | `120` | Time-based rekey threshold. |
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| `after_messages` | `65536` | Message-count rekey threshold. |
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In addition to the configurable triggers, the daemon retains the old
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session keys for a fixed **10-second drain window** after each
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cutover (compile-time constant `DRAIN_WINDOW_SECS` in
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`src/node/handlers/rekey.rs`). Rekey rotates the Noise key schedule
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and the session indices; old session keys are kept in
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`previous_session` for the drain window so in-flight packets
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encrypted under the old keys still decrypt.
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## Replay Window
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Both layers use explicit per-packet counters with a sliding bitmap
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window for replay protection. The bitmap is **2048 entries** at both
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layers — large enough to accommodate UDP reordering and packet loss
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without false-positive replay rejection. Counters older than the
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window are rejected. The same `ReplayWindow` and
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`decrypt_with_replay_check()` implementation is used at both the FMP
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and FSP layers.
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## Peer ACL
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Mesh-level ACL files at `/etc/fips/peers.allow` and
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`/etc/fips/peers.deny` give the operator allowlist/blocklist control
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over which npubs may complete the FMP Noise IK link handshake.
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File format:
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- One entry per line. An entry is either a bech32 `npub1...`,
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an alias defined in `/etc/fips/hosts`, or the literal `ALL`
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wildcard (case-insensitive).
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- Lines beginning with `#` are comments.
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- Blank lines are ignored.
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Evaluation order (first match wins, default-allow on no match):
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1. `peers.allow` — if the peer matches an entry here (or `ALL` is
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in `peers.allow`), the handshake is admitted, regardless of any
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`peers.deny` entry.
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2. `peers.deny` — if the peer matches an entry here (or `ALL` is
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in `peers.deny`), the handshake is refused.
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3. Otherwise the peer is admitted.
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`peers.allow` is **not** an exclusive gate on its own: an unlisted
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peer falls through to step 3 and is admitted unless it appears in
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`peers.deny`. To turn `peers.allow` into a strict allowlist, place
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`ALL` in `peers.deny` so every unlisted peer is rejected at step 2.
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The `ALL` wildcard makes the operator's posture explicit:
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- `ALL` in `peers.allow` admits every peer (same effect as the
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default-allow behavior, but documented in the file).
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- `ALL` in `peers.deny` blocks every peer except those listed in
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`peers.allow` — the "allowlist-strict" posture.
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In practice this collapses to a few common postures:
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- **Default-allow with denylist**: leave `peers.allow` empty;
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populate `peers.deny`. All npubs may peer except those listed.
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- **Allowlist-strict**: populate `peers.allow` and put `ALL`
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in `peers.deny`. Only the listed npubs may peer; everyone else
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is rejected at step 2.
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A populated `peers.allow` with an empty `peers.deny` is not a
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strict allowlist — it is equivalent to default-allow plus an
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explicit "always-admit" set. The strict variant requires `ALL`
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in `peers.deny`.
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Aliases are resolved through `/etc/fips/hosts` at file-load
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time. If `peers.allow` lists `core-vm` and `/etc/fips/hosts`
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maps `core-vm` to a specific npub, that npub is admitted. If
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`core-vm` is later remapped to a different npub, the ACL
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re-resolves on the next mtime change. Operators should be aware
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that ACL semantics follow the `hosts`-file aliasing, not just
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the literal npubs visible in the file.
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Both files are reloaded automatically when their mtime changes
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— no daemon restart or signal is needed. ACL evaluation runs
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after msg1 decryption but before any further peer-state
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mutation; rate-limited msg1s never reach the ACL.
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## Filesystem Permissions
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| Path | Owner | Mode | Purpose |
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| ---- | ----- | ---- | ------- |
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| `/etc/fips/fips.key` | root:root | `0600` | Persistent identity private key (sensitive). |
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| `/etc/fips/fips.pub` | root:root | `0644` | Public key (npub). |
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| `/etc/fips/fips.yaml` | root:root | `0644` | Daemon configuration (dpkg conffile). |
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| `/etc/fips/fips.nft` | root:root | `0644` | nftables baseline (dpkg conffile). |
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| `/etc/fips/fips.d/` | root:root | `0755` | Operator drop-in directory. |
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| `/etc/fips/hosts` | root:root | `0644` | Optional hostname → npub map (dpkg conffile). |
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| `/etc/fips/peers.allow` | root:root | `0644` | Optional peer allowlist. |
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| `/etc/fips/peers.deny` | root:root | `0644` | Optional peer denylist. |
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| `/run/fips/control.sock` | root:fips | `0770` | Control socket (members of `fips` group can use `fipsctl`). |
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| `/run/fips/api.sock` | root:fips | `0770` | Native datagram API socket, when `node.native_api.enabled` is set (experimental; absent otherwise). |
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| `/run/fips/` | root:fips | `0750` | Socket parent directory. |
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Adding a user to the `fips` group grants `fipsctl` access without
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requiring root. The daemon `chown`s the control socket and its parent
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directory at bind time, and does the same for the native API socket when
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that is enabled.
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## Native Datagram API
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**Experimental. Disabled by default** (`node.native_api.enabled`, default
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`false`), and built on Linux and FreeBSD only. It is not a stable API
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surface, not a reliability layer, and not the v2 external process API. No
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compatibility promise is made about it.
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**Any user in the `fips` group can impersonate the node on the mesh.** The
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API socket is created at mode `0770` owned by group `fips`, and that is the
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entire authorization model. A process that can open it can:
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- send datagrams under this node's identity to any peer it names, which
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peers authenticate as coming from this node;
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- hold any port from 1024 upward and receive mesh traffic addressed to this
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node on it, including traffic another local program expected;
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- do both without authenticating, without a capability check, and without
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any record beyond the daemon's own logs.
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Group membership is therefore equivalent to possession of the node's
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identity for the purpose of sending on the mesh. **On a node with the native
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API enabled, treat membership of the `fips` group exactly as you would treat
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`/etc/fips/fips.key`.** Grant it to the accounts that are trusted to speak as
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the node and to no others, and review it before enabling the API on a shared
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machine.
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**The file descriptor carries the grant, not the connection.** A setup call
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hands the client a socket descriptor and the connection it was made on is then
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closed; the flow or the held port lives until that descriptor is closed. A
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descriptor is an ordinary kernel object, so it survives `fork`, survives
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`exec` unless the client asked for it close-on-exec when it received it, and
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can be handed to another process over `SCM_RIGHTS`. A process holding one can
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send as this node on that flow, or receive on that port, without ever opening
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the API socket and without being in the `fips` group.
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Nothing revokes a descriptor already handed out. Restarting the daemon closes
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its own halves and ends every flow and listener at once, and that is the only
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revocation there is.
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Two consequences follow for `fipsctl` access. First, the `fips` group is
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already the control-socket group, so enabling the native API silently
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upgrades every existing `fipsctl` user from "can read node state and manage
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peers" to "can send as the node". Second, an operator who wants the two
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audiences separated must not enable the API on a node whose `fips` group has
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been handed out for monitoring.
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`node.native_api.debug_commands` (default `false`) is a second, independent
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gate. It admits three commands (`inject`, `stats`, `arrive`) that exist for
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the test harness: `arrive` makes the daemon dispatch a datagram as though a
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peer had sent it, reaching any listener on this node under any peer identity
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the caller names. Leave it off outside a test harness; a packaged node does
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not enable it.
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The socket is local only. It is not reachable over the network, and nothing
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about it changes the mesh's own authentication: a peer still verifies the
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node's signature, which is precisely why a local caller that can send through
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this socket is indistinguishable from the node itself.
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See [configuration.md](configuration.md#native-datagram-api-nodenative_api)
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for the key list and
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[../how-to/use-the-native-datagram-api.md](../how-to/use-the-native-datagram-api.md)
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for the client.
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## Threat-Resistance Matrix
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The link layer's threat-resistance matrix is consolidated here from
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the FMP design document:
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| Threat | Mitigation |
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| ------ | ---------- |
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| Connection exhaustion | Token-bucket rate limit + connection count limit |
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| CPU exhaustion (msg1 flood) | Rate limit before crypto operations |
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| Replay attacks | Counter-based nonces with sliding window (2048 entries) |
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| State confusion | Strict handshake state machine validation |
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| Spoofed encrypted packets | Index lookup + AEAD verification |
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| Spoofed msg2 | Index lookup + Noise ephemeral key binding |
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| Address spoofing | Cryptographic authority, not address-based |
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| Session correlation | Index rotation on rekey |
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| Inbound exposure on `fips0` | Default-deny nftables baseline (operator opt-in) |
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| Sybil identities | Discretionary peering + handshake rate limiting + optional peer ACL |
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| Eclipse attack | Diverse peering across independent operators and transports |
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| Unauthorized peer admission | Optional `peers.allow` allowlist consulted before handshake |
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| Local impersonation via the native datagram API | API disabled by default; when enabled, `fips` group membership is the only gate and must be treated as key access |
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See [../design/fips-mesh-layer.md](../design/fips-mesh-layer.md) for
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the unauthenticated-attack-surface analysis (only handshake msg1 is
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reachable by unauthenticated parties), and
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[../design/fips-mesh-operation.md](../design/fips-mesh-operation.md#privacy-considerations)
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for the metadata-privacy model and the rejection of onion routing.
|
|
|
|
## Default Network Exposures by Transport
|
|
|
|
| Transport | Default Inbound | Default Bind | Opt-in |
|
|
| --------- | --------------- | ------------ | ------ |
|
|
| UDP | None until `bind_addr` set | `0.0.0.0:2121` typical | Operator sets `transports.udp.bind_addr` |
|
|
| TCP | None until `bind_addr` set | None — outbound-only without bind | Operator sets `transports.tcp.bind_addr` |
|
|
| Ethernet | Listens on configured interface (raw `AF_PACKET`) | EtherType 0x2121 on selected interface | Per-flag `listen`, `announce`, `auto_connect`, `accept_connections` |
|
|
| Tor | None until `directory_service` configured | `127.0.0.1:8443` (loopback only) | Operator sets `transports.tor.directory_service` and configures `HiddenServiceDir` in `torrc` |
|
|
| BLE | Off by default | n/a | Operator enables `transports.ble.*` |
|
|
| Nostr discovery | Off by default | n/a (relay client, not a listener) | Operator sets `node.discovery.nostr.enabled: true` |
|
|
|
|
The mesh-layer `fips0` interface is reachable from any mesh node that
|
|
can route to you, not only direct peers — your direct peers forward
|
|
traffic from any reachable mesh node onto your `fips0`. The
|
|
default-deny nftables baseline (operator opt-in) is the recommended
|
|
way to restrict inbound traffic on `fips0`. See
|
|
[../how-to/enable-mesh-firewall.md](../how-to/enable-mesh-firewall.md).
|
|
|
|
## See also
|
|
|
|
- [../design/fips-security.md](../design/fips-security.md) — threat
|
|
model and design rationale for the `fips0` baseline
|
|
- [../design/fips-mesh-layer.md](../design/fips-mesh-layer.md) — FMP
|
|
link encryption, replay protection, rate limiting
|
|
- [../design/fips-session-layer.md](../design/fips-session-layer.md)
|
|
— FSP end-to-end encryption, Noise XK, replay window
|
|
- [../how-to/enable-mesh-firewall.md](../how-to/enable-mesh-firewall.md)
|
|
— operator activation and drop-in recipes
|
|
- [configuration.md](configuration.md) — full `node.rekey.*`,
|
|
`node.rate_limit.*` parameter tables
|
|
- [../how-to/use-the-native-datagram-api.md](../how-to/use-the-native-datagram-api.md)
|
|
— enabling the experimental native datagram API, and what group
|
|
membership grants once it is on
|