Files
fips/README.md
T
Johnathan Corgan 9979826235 Prepare the v0.5.2 release notes, changelog and documentation corrections
Move the staged changelog entries under a 0.5.2 heading dated 2026-09-28
and leave an empty Unreleased section above it. The date is provisional:
a comment beside the heading says so, and the two release-notes files
carry the same date with the same marker, so the check at the version
bump finds all three.

Add the release notes and mirror them byte for byte to RELEASE-NOTES.md.
Every link is absolute so the Release body resolves them, and each
paragraph and list item is on one line, because the Release page shows
every newline inside a paragraph as a line break; the file exempts
itself from the line-length lint rule. The notes lead with who should
upgrade and with the three defaults that changed: the gateway's DNS
port, the Windows config directory, and an ephemeral node no longer
writing its key file. They say what was measured and what was not,
including the mixed-version interop run against v0.5.1 and v0.5.0, the
Windows installer checks on Windows Server under Windows PowerShell 5.1
and PowerShell 7, and the checks still outstanding. They state that a
link to a v0.5.0 or v0.5.1 node can still drop after a lost rekey reply
until that node is upgraded, since the fix is on the answering side.
The Windows upgrade notes say to stop the service before every run of
the installer, and to move fips.yaml and fips.key from \etc\fips into
C:\ProgramData\fips before upgrading a service that was set up by hand
to read its config from \etc\fips, which otherwise comes up under a new
identity with no warning.

The README's status badge, release-notes link and status paragraph
follow the release.

Correct documentation that no longer matches the gateway, tree, Windows
and packaging behavior:

- The gateway design document, how-to, OpenWrt tutorial and the
  configuration reference describe the NAT rebuild as one transaction,
  the 1000-mapping ceiling and the new-name rate limit in place of the
  pool size as a hard cap, and which DNS queries allocate a mapping.
- The spanning-tree documents describe the periodic re-broadcast and
  the resend of an unconfirmed announce, and the bloom filter update
  triggers include a parent switch and a child joining or leaving.
- The fips, fipsctl and security references cover the restricted
  C:\ProgramData\fips on Windows, the ACL and key paths on macOS,
  FreeBSD and Windows, the legacy peer ACL fallback in \etc\fips, and
  the Debian fips.yaml's actual mode and conffile status.
- The packaging guides no longer list MIPS as supported, the arm64 .deb
  leg is described as also purging the package, and the OpenWrt SDK-feed
  README says a package built from its Makefile carries none of the
  released packages' maintainer scripts.
- The testing README gains a section for the OpenWrt maintainer-script
  suite and says the ACL allowlist suite runs by hand only, and the
  interop README lists the mesh-size check as its eighth phase.


The upgrade notes were then corrected where following them as written
would have left a node worse off:

- Gateway DNS port: a fips.yaml that sets gateway.dns.listen keeps its
  port through the upgrade, and the v0.5.1 example config and deployment
  guide set it to [::1]:5353, so the resolver instruction depends on
  whether the config sets it.
- OpenWrt: an operator who had the gateway disabled must stop it and
  then disable it after the first opkg upgrade.
- FreeBSD: an upgrade step that restarts fips and fips_dns; the command
  comes from pkg's source and is listed as not measured.
- Debian: the upgrade re-enables and starts fips-dns every time;
  `systemctl mask fips-dns` keeps it off. The .deb start bound is 90
  seconds for fips-gateway.
- Arch and the systemd tarball: what to restart or start after the
  upgrade, and that only a .deb upgrade reloads the firewall.
- Ephemeral nodes: set persistent before upgrading to keep a key.
- Windows: one ordered sequence in an elevated PowerShell, with the
  installer run under -ExecutionPolicy Bypass.
- Building from source on glibc Linux also needs libdbus-1-dev and
  pkg-config. README, getting-started and the packaging README install
  the .deb with apt install ./ and point to the packaging README for
  per-format install commands.

The notes record an OpenWrt 24 router test of the gateway DNS port,
and that a gateway that fails to start leaves dnsmasq forwarding .fips
to its port, with how to hand .fips back to the daemon.

Drop the test-us03-next alias from the shipped hosts file and from the
roster in the host-aliases how-to.
2026-09-28 22:16:15 +00:00

404 lines
19 KiB
Markdown

# FIPS: Free Internetworking Peering System
![banner](docs/logos/fips_banner.png)
[![License: MIT](https://img.shields.io/badge/license-MIT-blue.svg)](LICENSE)
[![Rust](https://img.shields.io/badge/rust-orange.svg)](https://www.rust-lang.org/)
[![Status](https://img.shields.io/badge/status-v0.5.2-green.svg)](#status--roadmap)
A self-organizing encrypted mesh network built on Nostr identities,
capable of operating over arbitrary transports without central
infrastructure.
> FIPS is under active development. The protocol and APIs are not
> yet stable. See [Status & roadmap](#status--roadmap) below.
## What FIPS does
A machine running FIPS becomes a node in the mesh with a self-generated
cryptographic identity, tunneling existing IPv6 traffic over the mesh
or bypassing IP altogether and letting natively written applications
communicate directly with each other. In either case all traffic between
nodes is end-to-end encrypted and authenticated.
The mesh is self-organizing and permissionless. Any node can join and reach
any other node without a central address registry, routing configuration, or
coordination server. Peering between nodes can be manually configured or
use auto-discovery.
There are two equally-supported deployment modes.
**As an overlay** on top of existing IP networks, FIPS lets your node reach
any other FIPS node wherever it sits: behind a NAT, on a different ISP, on a
phone over cellular, on a laptop with only Bluetooth in range, or behind a
Tor onion.
**Ground up** over raw Ethernet, WiFi, or Bluetooth, FIPS provides a
complete permissionless network without any pre-existing IP infrastructure,
ISP, or DNS. Any node that joins the link gets routable IPv6 addresses, peer
discovery, and a path to every other node automatically. Support exists in
OpenWrt for turning a router radio into a backhaul link and for creating an
open access SSID so a phone or laptop can join without any configuration.
Either way, existing networking software runs over it unchanged — SSH, HTTP
servers, file transfer, anything IPv6-native works the same way it would on
a local network. Applications written to the FIPS native API skip that
layer entirely and address each other by public key, with no IPv6
emulation.
## Features
### The mesh
- **Self-organizing mesh routing.** Spanning-tree coordinates with
bloom-filter-guided discovery; no global routing tables, no
flooding.
- **Multi-transport.** UDP, TCP, Ethernet, Tor, Nym, and Bluetooth
(BLE L2CAP) ship today; transports compose on a single mesh and a
node may run several at once.
- **Self-assigned cryptographic identity.** secp256k1 / schnorr
keypairs as node addresses; no registration, no central authority.
- **Two-layer encryption.** Noise IK between peers (hop-by-hop) and
Noise XK between mesh endpoints (independent end-to-end), with
periodic rekey for forward secrecy.
- **(Optional) Nostr-mediated discovery and NAT traversal.** Peers may
publish endpoint adverts on public Nostr relays, exchange peering
candidates, and establish direct paths through NATs using
STUN-assisted hole punching. On the local network, mDNS LAN discovery
finds peers directly without relays.
### Getting traffic onto it
- **IPv6 adapter.** A TUN interface maps each remote npub to an
`fd00::/8` address, so unmodified IPv6 software reaches mesh
peers as `<npub>.fips`. Built-in `.fips` DNS resolver, with
optional static name mapping via `/etc/fips/hosts`.
- **Native datagram API.** A local program moves bytes between two
public keys over the mesh, addressing a peer as `npub:port` with no
IPv6 emulation and no TUN device in the path. `connect` and `bind`
take a key and a port, and from there it is ordinary socket calls.
- **LAN gateway.** Optional `fips-gateway` service folds an entire
unmodified LAN into the mesh: outbound (LAN clients reach mesh
destinations through a DNS-allocated virtual IPv6 pool and
nftables NAT) and inbound (LAN-side services exposed to the mesh
through 1:1 port forwards).
- **OpenWrt support.** FIPS ships as an OpenWrt package. Routers run
802.11s between themselves as a bare L2 link, with FIPS supplying the
encryption, authentication and routing over it. A second helper brings
up an open `!FIPS` SSID, the same on every router, which a FIPS client
joins over WiFi without configuration.
### Running a node
- **Operator visibility.** `fipsctl` CLI for control and inspection
with time-series stats history queryable for any metric,
`fipstop` TUI for live status with inline sparkline dashboards,
and a JSON-line control socket on each binary for direct
programmatic access.
- **Per-link metrics.** RTT, loss, jitter, and goodput on every
hop, plus mesh-size estimation, via the Metrics Measurement
Protocol.
- **ECN congestion signaling.** Hop-by-hop CE-flag relay with RFC
3168 IPv6 marking and transport kernel-drop detection.
- **Mesh-interface security baseline.** Optional default-deny
nftables policy for `fips0` shipped as a packaged conffile
(`/etc/fips/fips.nft`) with an operator drop-in directory
(`/etc/fips/fips.d/`) and a disabled-by-default
`fips-firewall.service`. The baseline polices only the mesh
interface, leaving Docker, Tor, and the host firewall untouched.
- **Reproducible builds** with toolchain pinning and
`SOURCE_DATE_EPOCH`.
## Quick start
**Start from a released package.** Every packaged platform in the table
below gets an installer built and published per release, with checksums,
on the [releases page](https://github.com/jmcorgan/fips/releases/latest).
Building from source produces the same artifacts and the same
post-install state, so it is the path to take when you want to modify
FIPS rather than run it.
On Debian or Ubuntu, download `fips_<version>_amd64.deb` (or
`_arm64.deb`) and install it:
```bash
sudo apt install ./fips_<version>_amd64.deb
sudo systemctl start fips fips-dns
```
This installs the daemon, CLI tools (`fipsctl`, `fipstop`), the
`fips-dns` service that wires `.fips` name resolution into the host
resolver, the optional `fips-gateway` service, systemd units, and a
default `/etc/fips/fips.yaml` you can edit before starting. The package
enables `fips` and `fips-dns` but starts neither, which is why the
second command is there.
For macOS, Windows, FreeBSD, OpenWrt, the systemd tarball or a Nix
flake, [packaging/README.md](packaging/README.md) gives the install
commands for each package format, and
[docs/getting-started.md](docs/getting-started.md) is the full
multi-platform installation guide.
To join a live mesh and reach your first peer, follow the new-user
tutorial progression starting at
[docs/tutorials/join-the-test-mesh.md](docs/tutorials/join-the-test-mesh.md).
### Building from source
To build the Debian package yourself rather than downloading it:
```bash
git clone https://github.com/jmcorgan/fips.git
cd fips
cargo install cargo-deb
cargo deb
sudo apt install ./target/debian/fips_*.deb
```
For the binaries alone, without an installer:
```bash
cargo build --release
```
Requires Rust 1.94.1+ (edition 2024). Linux, macOS, FreeBSD, and Windows
run as standalone daemons. FreeBSD is packaged for **x86_64 only**;
no aarch64 FreeBSD artifact is built or tested. Android is supported as
an **embedded crate** rather than as a standalone daemon: a
compile-gated library surface where the host app owns the TUN (a
`VpnService`, for example) and reaches the built-in resolver through
`Node::dns_local_addr()`. There is no Android daemon artifact and no
host-app guide. Transport and feature availability varies by platform.
| Feature | Debian/Ubuntu | Arch | NixOS | macOS | OpenWrt | FreeBSD | Android | Windows |
|----------------|:-------------:|:----:|:-----:|:------:|:---------------:|:-------:|:-------:|:-------:|
| UDP | ✅ | ✅ | ✅ | ✅ | ✅ | ✅ | ✅ | ✅ |
| TCP | ✅ | ✅ | ✅ | ✅ | ✅ | ✅ | ✅ | ✅ |
| Tor | ✅ | ✅ | ✅ | ✅ | ✅ | ✅ | ❌ | ✅ |
| Nym | ✅ | ✅ | ✅ | ✅ | ❌ | ✅ | ❌ | ✅ |
| Ethernet | ✅ | ✅ | ✅ | ✅ | ✅ | ❌ | ❌ | ❌ |
| BLE | ✅ | ✅ | ✅ | ❌ | ❌ | ❌ | ✅ | ❌ |
| Native API | ✅ | ✅ | ✅ | ✅ | ✅ | ✅ | ❌ | ❌ |
| Package format | `.deb` | AUR | flake | `.pkg` | `.ipk` / `.apk` | `.pkg` | ❌ | ZIP |
A column records what builds and runs in a packaged daemon, FreeBSD on
x86_64 only. **Native API** is the native datagram API, which is off by
default; Windows cannot carry it, because it has no `SCM_RIGHTS` with
which to pass a descriptor. **Package format** names the artifact you install,
and a ❌ there means the platform ships none. Windows is the odd one:
its ZIP is an archive you unpack yourself rather than a package an
installer consumes, and there is no MSI.
Five of these columns are Linux: Debian/Ubuntu, Arch, NixOS, OpenWrt
and Android. Linux is not one target. Debian, Ubuntu, Arch and NixOS
are the same glibc build, and what
differs is the packaging: Debian and Ubuntu take the same `.deb`, Arch
takes `fips` from the AUR, and NixOS uses the Nix flake described
below. **Only the `.deb` is exercised by an install test**, by the
`deb-install` suite across debian12, debian13, ubuntu22, ubuntu24 and
ubuntu26; neither the AUR package nor the flake is. That suite runs on
every push and pull request, on x86_64, against a `.deb` built by the same
pinned container as the released one. The arm64 package, built the same way
on an arm64 runner, is installed, its daemon started and the package purged on
ubuntu22 on every push and pull request as well; its upgrade and conffile paths
are not exercised. The suite does not run at a tag: no workflow installs a
published artifact, so the released packages are checked by
hand. OpenWrt is a musl
target rather than glibc, and it takes an `.ipk` on 24.x and earlier or
an `.apk` on 25 and later; both carry the `fips-mesh-setup` and
`fips-ap-setup` helpers.
**Android records what compiles for `aarch64-linux-android` under the
CI cross-check and nothing more**: no transport in that column is
exercised on a device or an emulator, so read it as "compiles", not
"verified here". Being an embedded crate rather than a daemon platform, it
has nothing to
install, which is what its ❌ package format records. The BLE cell is
narrower still: the transport compiles, but the radio behind it is
supplied by the embedding application rather than by FIPS, and no part
of that path is device-tested.
On Linux, a source build requires `libclang` — the LAN gateway's
nftables bindings are generated by `bindgen` at build time, which
needs `libclang.so` on the build host. Install it before building
(`sudo apt install libclang-dev` on Debian / Ubuntu); without it the
build fails inside the `rustables` crate with an "Unable to find
libclang" error. This is a build-time prerequisite only — it is not a
runtime dependency, and the pre-built `.deb` artifacts do not need it.
BLE compiles on every glibc Linux target and on Android, and is
excluded on musl. On glibc Linux, libdbus is a hard build prerequisite
(`sudo apt install libdbus-1-dev pkg-config` on Debian / Ubuntu) —
without it the build fails inside `libdbus-sys` rather than skipping
BLE. The BlueZ daemon itself is a runtime dependency, not a build one.
The OpenWrt ipk is a musl target, so it omits BLE.
Nym (mixnet) transport builds on all desktop platforms. The OpenWrt
❌ is provisional, pending verification of `nym-socks5-client`
availability on the target; it will flip to ✅ only if confirmed
buildable there.
Alternatively, the repo ships a [Nix flake](flake.nix): `nix develop`
drops you into a shell with the pinned toolchain and every build
prerequisite (libclang, dbus, pkg-config) already provided, and
`nix build .#fips` builds all four binaries with no host setup. See the
Nix / NixOS section of [packaging/README.md](packaging/README.md).
## Documentation
`docs/` is organised by reader purpose:
- **[Tutorials](docs/tutorials/)** — hand-held walk-throughs from
a fresh install through to a participating mesh node, plus
advanced deployments (gateway on OpenWrt, hosting services,
ground-up two-device mesh).
- **[How-to guides](docs/how-to/)** — operator recipes for
specific tasks: firewall activation, Nostr discovery, Tor onion
service, Bluetooth peering, 802.11s mesh backhaul and the open
access SSID on OpenWrt, LAN gateway deployment and
troubleshooting, MTU diagnostics, host aliases, persistent
identity, unprivileged-user setup, UDP buffer tuning.
- **[Reference](docs/reference/)** — `fips.yaml` configuration,
wire formats, control-socket protocol, CLI references for each
binary, security posture matrix, Nostr events catalog, transport
statistics inventory.
- **[Design](docs/design/)** — protocol-level architecture and
layer specifications. Start with
[fips-concepts.md](docs/design/fips-concepts.md) for the framing,
then [fips-architecture.md](docs/design/fips-architecture.md) for
the protocol stack.
- **[Release notes](docs/releases/)** — per-version notes, including
[v0.5.2](docs/releases/release-notes-v0.5.2.md).
If you want to contribute, see [CONTRIBUTING.md](CONTRIBUTING.md)
and [testing/README.md](testing/README.md).
## Examples
- **[examples/sidecar-nostr-relay/](examples/sidecar-nostr-relay/)** —
Run a [strfry](https://github.com/hoytech/strfry) Nostr relay
reachable exclusively over the FIPS mesh. The relay container
shares the FIPS sidecar's network namespace and is isolated from
the host network.
- **[examples/sidecar-nostr-mixnet-relay/](examples/sidecar-nostr-mixnet-relay/)** —
Single-container demo of FIPS peering through a **mixnet**
(implemented with [Nym](https://nym.com/)): the FIPS daemon, the mixnet
proxy, and a strfry Nostr relay all in one isolated container, with
the direct route to the peer firewalled off so traffic provably
crosses the mixnet.
- **[examples/k8s-sidecar/](examples/k8s-sidecar/)** — Run FIPS as
a Kubernetes Pod sidecar. The sidecar creates `fips0` in the
Pod's shared network namespace so every other container in the
Pod gets mesh access without modification.
- **[examples/wireguard-sidecar-macos/](examples/wireguard-sidecar-macos/)** —
Reach the FIPS mesh from a macOS host through a local Docker
container over a WireGuard tunnel. Only traffic destined for
`fd00::/8` transits the sidecar; regular internet traffic
continues to use the host network.
## Project structure
```text
src/ Rust source: library + fips, fipsctl, fipstop, fips-gateway binaries
docs/ Documentation: tutorials, how-to, reference, design
packaging/ Debian, AUR, systemd tarball, OpenWrt ipk/apk,
macOS .pkg, FreeBSD .pkg, Windows ZIP
examples/ Deployment examples (Nostr relay, K8s sidecar, macOS WireGuard)
testing/ Docker-based integration test harnesses + chaos simulation
```
## Status & roadmap
FIPS is at **v0.5.2** on the `maint` branch, a maintenance release
that closes security gaps in the Windows service, the gateway and the
rekey handshakes, and fixes the gateway, the Linux, OpenWrt and FreeBSD
packages, and session and discovery recovery after lost messages.
[v0.5.0](https://github.com/jmcorgan/fips/releases/tag/v0.5.0) was the
last feature release, so how much of that release is new to you depends on
which version you are upgrading from. The core
protocol
works end-to-end over UDP, TCP, Ethernet, Tor, Nym, and Bluetooth on a
global, public test mesh of thousands of nodes.
v0.5.2 and v0.5.1 are maintenance releases; the feature content below
is v0.5.0's. v0.5.2 moves the gateway's default DNS port to 5365 and the
Windows config directory to `C:\ProgramData\fips`, and an ephemeral node
no longer writes `fips.key`; see the
[v0.5.2 release notes](docs/releases/release-notes-v0.5.2.md) before
upgrading.
v0.5.0 is a platform-and-lifecycle release. It adds FreeBSD as a
packaged platform (x86_64 only), OpenWrt setup helpers for an 802.11s
mesh between routers (`fips-mesh-setup`) and for the open `!FIPS` client
SSID (`fips-ap-setup`), and an Android embedding interface for apps that own
their own TUN.
Node health is now determined at start completion and published as
`Degraded` or `Failed`, a node with **no transport up is a fatal
start** rather than a silent one, and shutdown runs a bounded drain
window (`node.drain_timeout_secs`, default 2 seconds) so live traffic
is not cut mid-flight. The `node.discovery.*` configuration table
splits into `node.lookup.*` and `node.rendezvous.*`; a deployed
`node.discovery:` block still loads, folded in with a one-time
deprecation warning. New wire-format work continues to be staged on the
`next` branch for the subsequent release line.
### What works today
- Spanning-tree construction with greedy coordinate routing.
- Bloom-filter-guided destination discovery (no flooding,
single-path with retry).
- Two-layer Noise encryption (IK at the link, XK at the session)
with periodic hitless rekey for forward secrecy at both layers.
- Persistent or ephemeral node identity with key-file management.
- IPv6 TUN adapter with built-in `.fips` DNS resolver and
multi-backend auto-configuration (systemd dns-delegate,
systemd-resolved, dnsmasq, NetworkManager).
- Native datagram API for FIPS-aware applications (npub:port
addressing without the IPv6-shim path): off by default, with a
surface that may still change.
- Static hostname mapping (`/etc/fips/hosts`) with auto-reload.
- Per-link metrics (RTT, loss, jitter, goodput) and mesh size
estimation.
- ECN congestion signaling (hop-by-hop CE relay, IPv6 CE marking,
kernel-drop detection).
- UDP, TCP, Ethernet, Tor, Nym (mixnet), and BLE transports (BLE
via L2CAP CoC with per-link MTU negotiation).
- Nostr-mediated overlay endpoint discovery and UDP hole punching
for NAT traversal, plus mDNS LAN discovery for local peers.
- LAN gateway (`fips-gateway`) with both outbound (LAN-to-mesh)
and inbound (mesh-to-LAN port-forwarding) modes.
- Peer ACL: per-npub allow / deny admission control at the link
layer; opt-in mesh-firewall baseline at `fips0` ingress.
- Runtime inspection and peer management via `fipsctl` (including
`fipsctl probe` for reachability diagnosis and `fipsctl address`
for mesh-address derivation) and `fipstop`.
- Reproducible builds with toolchain pinning and
`SOURCE_DATE_EPOCH`.
- Node lifecycle and health reporting (`Starting`, `Running`,
`Degraded`, `Failed`, `Draining`) with a fatal start when no
transport comes up and a bounded shutdown drain window.
- OpenWrt setup helpers for an 802.11s mesh between routers
(`fips-mesh-setup`) and for the open `!FIPS` client SSID
(`fips-ap-setup`).
- Linux (Debian, systemd tarball, OpenWrt `.ipk` and `.apk`, AUR),
macOS (`.pkg`), FreeBSD (`.pkg`, x86_64 only), and Windows (ZIP,
service) packaging.
- Docker-based integration and chaos testing.
### Near-term priorities
- Security audit of the cryptographic protocols.
### Longer-term
- Packaged mobile applications: an Android host app, and iOS. The
Android embedding interface ships today (see
[Building from source](#building-from-source)); what is absent is a
packaged app on either platform.
- Bandwidth-aware routing and QoS.
- Protocol stability and a versioned wire format.
- Published crate.
## License
MIT — see [LICENSE](LICENSE).