Files
fips/testing/native-api
Johnathan Corgan 8b396b662d Keep the daemon's copy of a native API descriptor until the client holds it
A native API flow's descriptor reaches the client inside a message: an
arrival for a flow a listener accepts, or a connect or listen reply. The
daemon closed its own copy once the message was written, so until the client
read it, the message was the only reference to the socket. xnu's descriptor
collector flushes a socket in that state, and the client then receives a
flow that reads as end of file with the datagrams the daemon held for it
gone. That is the intermittent macOS failure of the two listener tests.

A listener now keeps the daemon's copy of each flow it hands over until the
client's first write on the flow, the listener's close, or the flow's end, on
every platform the listener builds on. The flow is recorded before its reader
starts, so a write already queued cannot race the record. The connection's
serving loop, now a method on the connection so a test can run it over a real
socket, keeps the copy sent in a connect or listen reply until the client's
next command on that connection or the connection's end of file. A client
sends its next command only after reading the reply, so either event means
the descriptor has left the message. The shipped client closes the connection
as soon as it has the reply, so it sees no change.

The cost is accepted and documented: a flow a client accepts and closes
without ever writing stays open, holding its port and a flow slot, until the
listener closes, so a server that refuses flows by dropping them pays for each
one until then; a client speaking the protocol directly that leaves its setup
connection open sees a flow or listener it closes stay open until its next
command or the connection's close. The reference and how-to pages, the client
rustdoc on FipsStream, FipsListener and accept, and the design note say so,
and the security reference records that a remote peer opening flows from many
source ports to such a server can exhaust the node-wide max_flows ceiling.

Tests cover an arrival surviving a provoked collection (deterministic on
macOS), a held flow outliving its dropped descriptor until the listener
closes, a client's write releasing it, a flow its client still holds working
after the listener has closed and let its copy go, and a reply's copy kept
until the next command and let go when the connection ends. The native API
harness asserts the new lifetime of a refused flow. On macOS and FreeBSD the
daemon notices a client's close only when a reader retries its read, up to a
quarter second later, so the test helpers that wait for a close (forgotten,
rebind, settle_closed) retry for up to five seconds by the clock rather than
for a count of yields, and still_open waits two retry intervals there before
asserting a flow is still open.
2026-10-01 22:40:40 +00:00
..

Native Datagram API Harness

Checks for the experimental native datagram API: a client process opens a flow to a remote pubkey over a Unix socket, receives a file descriptor, and sends and receives datagrams on it with no IPv6 emulation and no TUN device.

Design of record: design/native-api/v1-datagram-experiment.md in the project workspace, which is a separate tree from this repository. The feature is off by default and Unix only.

Shape

The client runs in its own container, reaching the daemon through a bind-mounted /run/fips. That is the real deployment shape — a separate process with its own filesystem opening the socket — rather than a test speaking to the daemon from inside the daemon's container. It also makes the access policy observable: the host sees the socket file and reads its mode directly.

The step scripts are Python rather than Rust so a check changes without rebuilding the daemon, which is what keeps the outside-in loop fast. That buys speed at the cost of covering nothing of the Rust surface a caller links against, so two compiled programs run here as well, both built on fips::native::client: examples/native-echo.rs, which arrived with A5 and serves the echo check, and examples/native-surface.rs, which walks the whole public surface against a live daemon.

The table covers this directory and the two example programs the driver runs.

File What it is
test.sh The driver. Holds the scenarios and the pass/fail accounting.
client.py A thin RPC client. Runs a script of steps over one connection and checks the replies.
control.py A thin control-socket client, used to read show_native_flows back while a flow is open.
node.yaml One node with the API enabled, no TUN, no DNS, no peers. Turns the debug commands on.
node-api-off.yaml The same node with the API disabled, for the default-off check.
node-debug-off.yaml The API enabled and the debug commands left at their default, for the gate check.
../../examples/native-echo.rs The echo server for check_echo_round_trip. A program shape to copy.
../../examples/native-surface.rs The surface walk for check_surface_walk. An assertion harness, not a shape to copy.

Running

cargo build --release --bins --examples   # the driver refuses a stale binary
./testing/native-api/test.sh

FIPS_TEST_IMAGE is used when set, which is how ci-local.sh passes its per-run image. There is deliberately no fips-test:latest to fall back on, so a consumer that stops reading the variable fails loudly. Without it the driver builds a minimal image from the locally compiled binary.

The driver refuses to run against a stale binary. Three binaries are built or read from this tree, the daemon and the two examples, and each is probed against what it is actually built from: src/ plus Cargo.toml for all three, this directory's *.py because the harness client is bind-mounted live rather than built in, and, for an example, its own .rs and no other. A guard rooted only at src/ would let a stale example pass a check written about new code. A stale binary is the worst outcome available here: the checks would run and report a verdict about code that is not the working tree's.

An example is probed against its own source rather than all of examples/ because cargo does not relink target/release/fips when only an example changes. Probing the daemon against every example would leave it permanently older than a just-edited one, and the rebuild the refusal prescribes would not clear the condition.

All three binaries must come from one profile directory. resolve_image refuses a profile that holds only the daemon, which is what a bare cargo build --release leaves behind.

Increments

The API is built outside-in, and this harness grows with it. Each increment's checks must pass before the next one starts.

# What it covers State
A1 The socket, its access mode, the line framing, the command validation, the reserved-port refusals, and that the API is off by default present
A2 Descriptor passing over SCM_RIGHTS, message boundaries, poll readability, close reaching the daemon, flow isolation present
A3 Port ownership across clients, listening and accepting, the dispatch order, and reclaim when a descriptor closes present
A4 The end-to-end path between two nodes, and that a queued datagram is not IPv6-compressed present
A5 Counters, show_native_flows read back over the control socket, the Rust client module and echo example, and the debug-command gate present
A6 Every public item of fips::native::client walked against a live daemon: the five setup entry points, all eight ToFipsAddr spellings, the deadlines, non-blocking mode, the descriptor traits, and the payload limit present

The "stub": true marker is gone. It meant "this flow reaches no peer", and after A4 every flow does. max_payload is now the real limit — the transport MTU less the FIPS encapsulation and the port header, 1362 bytes on a 1472-byte transport — and the end-to-end check asserts that number rather than accepting whatever is reported.

The tightening it existed for happened three times. A1's connect checks failed the moment A2 began returning a descriptor, because client.py treats an unannounced descriptor as a defect rather than ignoring it. A1's accept and reject checks failed when A3 gave those commands a real registry, since a flow no listener announced became a refusal. And the remaining stub assertions failed at A4 when the field disappeared. Checks that had quietly kept passing would have been worth nothing.

The accept and reject commands are gone, and so is the incoming event. A listener now returns its own descriptor, so it is pollable, accepting is one recvmsg on it that carries the arriving flow's descriptor, and refusing a flow is closing that descriptor. The command socket carries replies only, in command order. A step names a listener descriptor with keep_listener and takes flows off it with an accept step; every descriptor a reply carries must be named, or the run fails rather than dropping a flow silently.

The backlog is no longer the bound a client sees. It bounds arrivals the daemon has announced and not yet wired, and the daemon drains that queue itself, so a listener that never accepts is bounded by its send buffer and by node.native_api.max_flows instead. check_backlog_is_not_the_clients_bound asserts the change; the drop paths behind the new bound are covered by the daemon's own tests, because neither is a number a shell check can produce.

Flow identifiers are assigned by the node and keep counting up for its lifetime. A check must capture one with keep_flow rather than assume a literal, or it holds only for the first flow the daemon ever made.

The surface walk

check_surface_walk runs examples/native-surface.rs against the shared single node, last among the single-node checks. Its subject is the Rust surface rather than the wire: until it existed, FipsStream::connect, connect_from, connect_at, FipsListener::bind and bind_at had no coverage of any kind, and every other public item was exercised only against the hand-written stand-in daemon in the crate's unit tests. That stand-in has already hidden a real defect once, by being kinder than the daemon, which is why the walk talks to the real one.

It runs last because check_ephemeral_allocation asserts 49152, 49153 and 49154 as the first three ports the node ever hands out and the allocator is a forward-only cursor. The walk therefore asserts only that its own ephemeral ports are >= 49152, and takes its named ports from the otherwise unused 4800-4809 band.

The check asserts three things, not one: that the container exited 0, that its completion line is there, and that the count in that line equals SURFACE_ASSERTIONS in test.sh. The third is the anti-silence measure. The binary prints the recorder's own counter rather than a literal, so an assertion block that stopped running — a #[cfg] gate that no longer matches, an early return — still exits 0 and still prints the line, and only the count betrays it. The number is deliberately brittle: adding an assertion must force an edit in test.sh, so the two cannot drift apart quietly.

A hang has to become a red, and has to name itself. The walk's own subjects fail by blocking forever: a read deadline never applied to the descriptor, a set_nonblocking that did nothing. The binary arms a 30-second watchdog that prints the assertion it was in and exits 1, and run_surface_at bounds the container at 60 seconds as a backstop for a wedge before that thread is armed.

timeout 60 docker run is not that backstop, which a break-check measured rather than a reading of the manual. timeout signals the docker client, the client proxies SIGTERM to the container, and the walk is PID 1 there with no handler for it, so the kernel discards the signal: the container was still up five minutes after the bound passed and docker run never returned. The helper runs the container detached, polls its state, and removes it by force, since docker rm -f is a SIGKILL and PID 1 cannot discard that.

The two-node check

check_end_to_end is the only check that runs more than one node. It derives two identities with testing/lib/derive_keys.py, brings both up on their own docker network peered by npub, and sends a datagram from a client on one to a client on the other.

Three orderings are waited on explicitly rather than assumed, each because assuming it produced an intermittent failure:

  • The link forms before either client runs, watched for by the spanning tree adopting a parent. Not by a peer-promotion log line: on this path — a configured peer, dialled outbound — that line is never emitted.
  • The listener has bound its port before the sender starts, watched for in the listener's own output. Launching it first is not the same as it having registered.
  • The client runs unbuffered (python3 -u). Without it the marker above never reaches the log file, so the wait cannot see it and every run fails at the gate meant to make the check reliable.

The payload is deliberately not a valid IPv6 packet, and it is sent before any session exists so it goes through the native pending queue. If a native datagram were ever routed through the TUN pending queue it would be handed to the IPv6 compressor, which would refuse it, and this check would fail. The trap is asserted rather than trusted.