mirror of
https://github.com/jmcorgan/fips.git
synced 2026-08-09 08:14:42 +00:00
Single combined commit covering five interlocking pieces of test and CI work that landed during the v0.3.0-prep cycle. ## fips-gateway robustness - src/bin/fips-gateway.rs DNS upstream probe converted from a 3-second hard-fail to a bounded retry loop (5 attempts × 1s timeout, 1s sleep between attempts; ~10s worst case). Covers the cold-boot race where the daemon's TUN is up but the DNS responder at [::1]:5354 is still binding. Each failed attempt logs at INFO. In production the binary's retry is the live recovery mechanism; with retry it recovers silently instead of relying on Restart=on-failure (~5s blip + spurious ERROR per cycle). - packaging/debian/fips-gateway.service `ExecStartPre` now waits up to 30 seconds for the daemon's `fips0` TUN to appear before exec'ing the gateway binary. Eliminates the cold-boot race where the gateway exits with `fips0 interface not found` and recovers via `Restart=on-failure`, producing a 5-second blip and a spurious error log per restart cycle. - testing/docker/entrypoint.sh gateway-mode waits up to 30s for the daemon's DNS responder to bind [::1]:5354 (probes once per second with `dig @::1 -p 5354 ... test.fips`) before exec'ing fips-gateway. Belt-and-suspenders with the binary's own retry: in CI we want deterministic startup ordering. On timeout, fall through so the binary's probe reports the definitive error. ## Test infrastructure DNS bind migration to ::1 After session 359's daemon DNS-bind default flipped from `127.0.0.1` to `::1` (the production fix for ISSUE-2026-0002), the static-test infrastructure was carrying a stale workaround that overrode the default back to IPv4 loopback. The fips-gateway integration test exposed the divergence: the gateway probes its DNS upstream at `[::1]:5354` (production default) while the daemon was binding `127.0.0.1:5354` from the template override — IPv6-explicit sockets do not accept v4-mapped traffic, so the upstream probe exhausted retries and the gateway exited. - Drop the explicit `bind_addr: "127.0.0.1"` line from every test config that emits it: testing/static/configs/node.template.yaml, testing/chaos/configs/node.template.yaml, the sidecar heredoc in testing/docker/entrypoint.sh, testing/acl-allowlist/generate-configs.sh (six per-node blocks), testing/nat/scripts/generate-configs.sh, and the four tor templates under testing/tor/. Daemon picks up its production `::1` default. - Flip the dnsmasq forwarder for `.fips` in testing/docker/Dockerfile from `127.0.0.1#5354` to `::1#5354` so dnsmasq on the shared test image continues to reach the daemon. Template and Dockerfile must move together since most static suites resolve `<npub>.fips` via the test-image dnsmasq. ## rekey-accept-off integration variant + UDP unit test - New `rekey-accept-off` topology and docker-compose profile under testing/static/. 2-node variant where node-b runs with `udp.accept_connections: false`. Pins the regression class that ISSUE-2026-0004 fixed (cross-connection winner's rekey msg1 was being filtered by the accept_connections gate, breaking rekey). - testing/static/scripts/rekey-test.sh accepts REKEY_TOPOLOGY and REKEY_ACCEPT_OFF_NODES env vars; its inject-config subcommand applies the per-node `udp.accept_connections: false` edit, and the test asserts no sustained "Dual rekey initiation" log lines. - New UDP variant of `should_admit_msg1` admit-rekey unit test in src/node/tests/handshake.rs. ## ci-local.sh full integration coverage - New runner functions and dispatcher entries for `acl-allowlist`, `nat-cone` / `nat-symmetric` / `nat-lan`, `rekey-accept-off`, `dns-resolver`, `deb-install`. Each integrates with the existing summary tracking via `record`. - New `--with-tor` flag (off by default) gates `tor-socks5-outbound` and `tor-directory-mode` runners. Tor stays opt-in because both harnesses depend on the live Tor network and would introduce a flake source unrelated to the FIPS code. - New suite arrays (`ACL_SUITES`, `NAT_SUITES`, `DNS_RESOLVER_SUITES`, `DEB_INSTALL_SUITES`, `TOR_SUITES`) drive both the default sweep and `--list` output. - `run_suite` extended to accept the new suite names for `--only` invocations. ## GitHub CI matrix expansions - `gateway` matrix entry runs testing/static/scripts/gateway-test.sh against the existing docker-compose `gateway` profile. - `rekey-accept-off` matrix entry exercises the new topology with REKEY_ACCEPT_OFF_NODES=b. - `deb-install` matrix (debian12 + ubuntu24 + ubuntu26) runs testing/deb-install/test.sh with privileged systemd containers. ~5-7 min cold cache, ~2 min warm per distro. Self-contained: builds its own .deb in a Debian 12 cargo-deb builder image; does not depend on the build job's pre-built artifact. - `dns-resolver` matrix entry runs the full 13-scenario harness (per-distro systemd resolver-backend tests + real-fips end-to-end scenarios) in a single job. Pins the production DNS bind path that ISSUE-2026-0002 lived in. ~7-12 min warm, ~12-15 min cold. Verified locally: full `bash testing/ci-local.sh` sweep passes, including 5/5 deb-install distros and all 13 dns-resolver scenarios. Tor-inclusive sweep (`--with-tor`) verified in a follow-up run.
NAT Lab Harness
Real Docker-based NAT traversal integration tests for the mainline FIPS Nostr/STUN bootstrap path.
This harness spins up:
- two FIPS nodes
- a local Nostr relay
- a local STUN server
- one or two Linux router containers performing NAT with
iptables
For the NAT scenarios, the node LAN interfaces are not attached to
Docker bridge networks. The harness creates explicit veth pairs and
moves them into the node and router namespaces after docker compose up
so every packet must traverse the router namespace.
It covers three scenarios:
cone: both peers behind explicit namespace/veth full-cone emulation, UDP traversal succeedssymmetric: both peers behind symmetric-style NAT, UDP traversal fails, TCP fallback succeedslan: both peers share a LAN subnet, LAN targets are preferred over reflexive addresses
NAT model notes
The harness does not rely on plain Docker MASQUERADE for the cone case.
cone- uses explicit full-cone emulation in the router namespace
- outbound UDP is
SNATed to the router WAN address while preserving the source port - inbound UDP to the router WAN address is
DNATed back to the single LAN host regardless of remote source
symmetric- uses UDP
MASQUERADE --random-fully - outbound mappings may be port-randomized and are only reopened by matching conntrack state
- uses UDP
This distinction matters because plain MASQUERADE is convenient source NAT, but it does not by itself model the "accept from any remote once mapped" behavior expected from a full-cone NAT.
Prerequisites
- Docker with Compose support
- locally built
fips-test:latest
Build the test image with:
./testing/scripts/build.sh
Run
Run all scenarios:
./testing/nat/scripts/nat-test.sh
Run one scenario:
./testing/nat/scripts/nat-test.sh cone
./testing/nat/scripts/nat-test.sh symmetric
./testing/nat/scripts/nat-test.sh lan
Layout
docker-compose.yml- relay/STUN/WAN topology plus container definitions
node/- node bootstrap wrapper that waits for the injected veth interface
router/- NAT router image and
iptablessetup
- NAT router image and
stun/- minimal STUN binding responder
relay/- local
strfryconfig
- local
scripts/generate-configs.sh- derives ephemeral identities and writes per-scenario FIPS configs
scripts/setup-topology.sh- injects and configures the NAT LAN
vethpairs in the container namespaces
- injects and configures the NAT LAN
scripts/nat-test.sh- boots the lab, waits for convergence, and asserts the resulting path
Assertions
-
cone- both nodes connect
- connected transport is UDP
- active link remote addresses are on the WAN NAT subnet
-
symmetric- NAT bootstrap does not establish a UDP link
- fallback converges
- connected transport is TCP via router-published WAN addresses
-
lan- both nodes connect
- connected transport is UDP
- active link remote addresses stay on the shared LAN subnet