Files
fips/docs/tutorials/ground-up-mesh.md
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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
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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
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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
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diagnostic, per-instance transport addressing, the app-owned UDP socket
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four.

There is no security section, because after the split every security entry
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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
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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
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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
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written, and the BLE branch widened the gap after it. Arjen's NixOS flake
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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

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Markdown

# Build a Mesh from the Ground Up
The earlier tutorials in this progression rode existing IP — your
daemon reached `test-us01` over the public internet through your
ISP, your ISP's upstream, and however many hops separate you from
the test node. That is the *overlay* deployment mode of FIPS:
useful, but not the new ground.
This tutorial is about the other mode. Two devices, a wire (or a
radio link) between them, no IP between them, and FIPS daemons on
each end. The two daemons discover each other over the raw link,
peer over Noise, and bring up an end-to-end mesh with addressing,
naming, and reachability — all from layer 2 up. There is no DHCP,
no router, no upstream. The mesh is the network.
This is the deployment mode FIPS was designed for. Overlay mode
exists because riding existing IP is a useful convenience; the
ground-up mode is what FIPS uniquely enables.
> **The two modes are not exclusive.** A node can carry overlay
> peers and ground-up peers at the same time — different transports
> on the same daemon. If you have already worked through
> [join-the-test-mesh](join-the-test-mesh.md), the static peer to
> `test-us01` you configured there can stay in place; the Ethernet
> peer you add in this tutorial sits alongside it. Traffic flows
> through whichever path is shortest by mesh metric, and a node on
> one side can reach a node on the other through your machine
> acting as a bridge between the two.
## What you'll build
```text
┌──────────────────────┐ raw Ethernet frames ┌──────────────────────┐
│ node A │ ─────────────────────── │ node B │
│ npub1aaa… │ EtherType 0x2121 │ npub1bbb… │
│ fips0 fd97:..:A │ no IP between them │ fips0 fd97:..:B │
└──────────────────────┘ └──────────────────────┘
│ │
│ a single Ethernet cable │
│ (or both NICs on the same │
│ unmanaged switch — no DHCP, │
│ no router, no IP at all) │
└─────────────────────────────────────────────────┘
```
Two machines, each running `fips`, joined by a physical Ethernet
link. After the worked example:
- The two daemons have discovered each other via L2 beacons on
the link, peered over Noise IK, and brought up an FMP link.
- Each `fips0` adapter has a routable mesh address; each can
ping the other by `<npub>.fips`.
- Nothing between the two machines speaks IP. The link carries
raw FIPS frames at EtherType `0x2121`.
The whole exercise should take about twenty minutes if you have
the hardware ready.
## Why ground-up
Most networking tutorials assume IP is already there: an address
arrived from DHCP, a default gateway routes you onward, DNS
resolves names. FIPS does not need any of that. Two devices and
a way to deliver bytes between them at layer 2 is enough — FIPS
supplies the rest:
- **Identity**: each daemon has an npub (the same kind you saw
in the overlay tutorials). Nothing in the ground-up case
depends on a network identity from a router; the npub is the
identity.
- **Addressing**: the `fips0` adapter takes an `fd97:...` ULA
derived from the npub. No DHCP. No SLAAC. The address is
cryptographically tied to the identity.
- **Neighbor detection**: each daemon broadcasts a small beacon on the
link advertising its npub; the other daemon's listener picks
it up and dials in over the same link.
- **Routing**: the FIPS mesh layer builds its own spanning tree
across whatever links it has. Add a third node (peered to
either A or B) and traffic reaches it transparently.
The point is not that ground-up replaces overlay. It's that
overlay is one of two modes the same daemon supports, and
ground-up is what unlocks the use cases overlay cannot —
ad-hoc local meshes, partitioned networks, situations where
no IP infrastructure exists or can be relied on.
## Prerequisites
Two devices (call them **node A** and **node B**) and a way to
join them at layer 2:
- Ethernet (the worked example): a direct cable between two
modern NICs (auto-MDI/MDIX handles crossover for you), or
both machines on a small unmanaged switch with no DHCP
server. USB-Ethernet dongles work; a typical "USB-to-RJ45"
adapter is fine on either end. The link does **not** need
to be the machine's primary network interface — a second
NIC dedicated to the mesh is the cleanest setup.
- WiFi (a one-line variation, covered later): both machines
associated to a common AP that has client (station)
isolation **off**.
- Bluetooth LE (a separate worked example via a how-to,
covered later): two BLE-capable Linux hosts within roughly
10 metres line of sight.
On both nodes:
- `fips` installed and running, per [getting-started](../getting-started.md).
- A persistent identity from
[persistent-identity](persistent-identity.md). Ephemeral
identities work, but on each restart the npub regenerates
and you'll have to re-check `fipsctl show peers` to see the
new identity. Persistent makes the lesson stick.
- The daemon running with `CAP_NET_RAW` (the shipped systemd
unit runs as root and gets this for free; running
interactively from a user account requires `setcap` —
noted at the relevant step below).
You do **not** need:
- An IP address on the chosen interface. The Ethernet
transport opens a raw socket directly; the kernel does not
need to assign an IP to the NIC.
- A default route. The mesh routes itself.
- DNS resolution between the machines via any external
service. The local `.fips` resolver supplies names from
the npubs the daemons exchange.
## Step 1: Identify the link interface on each node
On each node, list the network interfaces and pick the one that
sits on the link between the two machines. If it's a dedicated
NIC for the mesh, that NIC has no other purpose; if it's a
USB-Ethernet dongle, plug it in first so the kernel names it.
```sh
ip link show
```
Pick out the interface name. Common forms:
- `enp3s0`, `eno1` — built-in NICs under predictable naming.
- `eth0` — older or container-style naming.
- `enxAABBCCDDEEFF` — USB-Ethernet dongles often appear under
this MAC-derived form.
Bring the interface up if it isn't:
```sh
sudo ip link set dev <interface> up
```
Confirm:
```sh
ip -br link show <interface>
```
You want `UP` and `LOWER_UP` in the flags. The interface does
not need an IP address — `LOWER_UP` indicates the NIC sees
carrier (cable plugged into something at the other end), and
that is all the Ethernet transport needs.
For the rest of the tutorial we'll write the chosen interface
as `<eth>`. Substitute the actual name on each node when you
run the commands. Note that node A and node B may have
different interface names — that is normal.
> **No IP needed.** If your chosen interface has an address
> from a previous DHCP lease, leave it alone or remove it with
> `sudo ip addr flush dev <eth>` — the FIPS Ethernet transport
> uses raw `AF_PACKET` sockets that bypass the IP stack
> entirely. The interface needs to be `up` and `LOWER_UP`,
> nothing more.
## Step 2: Configure the Ethernet transport on each node
Edit `/etc/fips/fips.yaml` on **both** nodes. Under
`transports:`, add an `ethernet:` block. The key settings are
the four neighbor flags — both nodes must opt in to all four.
`listen` defaults on; the other three default to off:
```yaml
transports:
ethernet:
interface: "<eth>" # the name from Step 1
announce: true # broadcast our beacon on the link
listen: true # listen for beacons (default; shown for clarity)
auto_connect: true # dial peers we discover
accept_connections: true # accept dial-ins from peers we discover
```
Each flag does one thing:
- `announce: true` — emit a small beacon every
`beacon_interval_secs` (default 30s) carrying our npub.
- `listen: true` — listen for incoming beacons; populate a
candidate-peer list keyed by source MAC and observed npub.
- `auto_connect: true` — when we see a beacon from an npub
we have not yet peered with, initiate the outbound Noise
handshake.
- `accept_connections: true` — when a remote npub initiates
the handshake on this transport, complete it.
If only one node sets `announce`, the other won't see it; if
only one side sets `auto_connect` or `accept_connections`, the
roles are asymmetric and the link won't establish unless both
are configured. The cleanest pattern for a ground-up tutorial
is "all four flags on both ends."
> **Multiple Ethernet links.** If a node has more than one
> physical interface that participates in the mesh, configure
> each one as a *named instance* under `ethernet:`:
>
> ```yaml
> transports:
> ethernet:
> lan:
> interface: "eth0"
> announce: true
> listen: true
> auto_connect: true
> accept_connections: true
> dongle:
> interface: "enx00aabbccddee"
> announce: true
> # ...
> ```
>
> Each named instance runs its own socket and neighbor state.
> A single ground-up link only needs the flat form shown
> first; named instances become useful when the same node
> bridges multiple physical segments.
## Step 3: Grant the daemon permission to open raw sockets
The Ethernet transport opens an `AF_PACKET` `SOCK_DGRAM` socket
bound to the chosen interface. That requires `CAP_NET_RAW`.
If you installed FIPS via the Debian package and run via the
shipped systemd unit, the daemon runs as root and has
`CAP_NET_RAW` already — there is nothing to do here. Skip to
Step 4.
If you are running the daemon interactively as your user (a
from-source / development setup), grant the capability once on
the binary:
```sh
sudo setcap CAP_NET_RAW,CAP_NET_ADMIN+ep "$(which fips)"
```
`CAP_NET_ADMIN` is what the daemon needs for the `fips0` TUN
adapter regardless; `CAP_NET_RAW` is the ground-up addition.
The `setcap` invocation only needs to be repeated when the
binary is replaced.
## Step 4: Restart the daemon on each node
```sh
sudo systemctl restart fips
```
Or, if running interactively, restart your `fips` invocation
in whichever way you started it.
Watch the startup logs for the Ethernet transport coming up:
```sh
sudo journalctl -u fips -f --since="1 minute ago"
```
Look for landmarks like:
- A line indicating the Ethernet transport opened the chosen
interface and started its receive loop.
- Periodic outbound beacon messages (one per
`beacon_interval_secs` window).
- After the second beacon round on the *other* node, an
inbound beacon parsed and a candidate-peer entry created.
- Once each side dials, a Noise handshake completion log
message naming the remote npub.
Beacon interval defaults to 30s, so the first peering can take
up to a minute (one beacon window per side, plus handshake).
Lower the interval for the tutorial if you want faster
feedback:
```yaml
transports:
ethernet:
# ...
beacon_interval_secs: 10 # minimum allowed
```
## Step 5: Verify the link
On either node:
```sh
sudo fipsctl show peers
```
Expect one entry whose `npub` matches the **other** node and
whose `transport_type` reads `ethernet`. Your
existing overlay peers (if any from earlier tutorials) appear
alongside it. Each peer has its own row, and the link status
columns show whether the Noise session is up.
```sh
sudo fipsctl show transports
```
Confirms that the Ethernet transport is running and shows the
beacon counters incrementing. Both `beacons_sent` and
`beacons_recv` should be non-zero if the link is healthy.
## Step 6: Reach the other node by name
On node A, ping node B by `.fips` name. Get node B's npub
from its `fipsctl show status` output (it's the persistent
identity you established earlier), then:
```sh
ping6 npub1bbb…long-string….fips
```
Expect ICMPv6 echo replies. The path is:
1. The local `.fips` resolver translates the npub-form name
into an `fd97:...` mesh address (cryptographically derived
from the npub on both ends — the resolver does the
computation locally, with no network round trip).
2. The kernel routes the packet via `fips0`.
3. The FIPS daemon accepts it from the TUN, looks up the
mesh route, and hands it to the FMP link to node B.
4. The Ethernet transport on node A frames the FMP packet as
a raw EtherType `0x2121` Ethernet frame addressed to node
B's MAC, learned from B's beacons.
5. Node B's daemon receives the frame, peels off the
Ethernet/FIPS framing, and the packet emerges on node B's
`fips0`.
6. The kernel on node B sees an inbound ICMPv6 echo and
replies, and the same path runs in reverse.
If you have a hosts file with shortnames configured (see
[host-aliases](../how-to/host-aliases.md)), substitute the
shortname for the full npub form.
## Step 7: Try a forward composition
If node A also has the `test-us01` overlay peer from
[join-the-test-mesh](join-the-test-mesh.md), node B can
reach `test-us01` *through* node A — even though node B has
no direct internet path of its own:
On node B:
```sh
ping6 npub1qmc3cvfz0yu2hx96nq3gp55zdan2qclealn7xshgr448d3nh6lks7zel98.fips
```
The packet leaves B's `fips0`, traverses the Ethernet link to
A, gets forwarded by A across the overlay UDP transport to
`test-us01`, and the reply comes back the same way.
This is the composition the chapter intro flagged: the two
deployment modes coexist on a single daemon. Node A is
participating in the test mesh via the internet *and* in your
local Ethernet mesh. From node B's perspective, the test mesh
is reachable. From `test-us01`'s perspective, B is reachable.
The mesh handles the rest.
## Variations
### WiFi (AP mode), same shape as Ethernet
Replace `<eth>` with the WiFi interface name (typically
`wlan0` or `wlp3s0`) on each node. The WiFi NIC is presented
as an Ethernet-class interface to the kernel by the
`mac80211` abstraction; the FIPS Ethernet transport opens
the same `AF_PACKET` socket on it. No FIPS-side configuration
change beyond the interface name.
What you do need on the AP side:
- Both nodes associated to the same SSID.
- **Client (station) isolation must be OFF** on the AP.
Most consumer routers ship with it off; many guest
networks and "secure" enterprise APs ship with it on.
When client isolation is on, the AP refuses to forward
station-to-station frames — the broadcast beacons never
arrive at the other node, and neighbor detection fails silently.
If beacons aren't crossing, this is the first thing to
check.
There is no FIPS-specific configuration for WiFi versus
Ethernet on the daemon side; the choice is purely the
adapter name.
### Bluetooth LE (experimental but works)
BLE is a separate transport (`transports.ble.*`) with its own
neighbor-detection model — L2CAP advertisements rather than raw L2
broadcasts. The shape of the tutorial is the same (advertise +
scan + auto-connect + accept), but the prerequisites are
different: BlueZ, `bluetoothd`, an HCI adapter, and the
`bluetooth` group or capability set.
The full operator recipe is in
[../how-to/set-up-bluetooth-peer.md](../how-to/set-up-bluetooth-peer.md).
Mark this transport as experimental: it works in most
configurations but the BLE stack has more variability than
Ethernet — adapter quirks, BlueZ version differences, and the
shorter range all matter.
The BLE transport is **Linux-only** at present; macOS and
Windows builds skip it.
## What you've learned
- **Ground-up is the new ground.** FIPS does not need any IP
infrastructure between two devices to mesh them. A wire (or
a radio link), `CAP_NET_RAW`, and a few config flags on each
end are sufficient. The mesh supplies its own identity,
addressing, discovery, and routing.
- **Neighbor detection is a four-flag opt-in.** `announce`, `listen`,
`auto_connect`, and `accept_connections` each control one
thing; both ends must agree before a link will form.
- **The two modes coexist.** Overlay peers and ground-up peers
ride the same daemon — same FMP link layer, same FSP session
layer, same `fips0` adapter. A node can be a bridge between
the two without any extra plumbing.
- **No IP on the link.** The Ethernet transport bypasses the
kernel IP stack via `AF_PACKET`. Whether the interface has
an IP address is irrelevant; whether it has carrier is what
matters.
- **Names work the same way.** `<npub>.fips` resolves locally
via the cryptographically-derived ULA. The resolver does
not care whether the destination is reached over Ethernet,
UDP overlay, or some hop chain combining both.
## Troubleshooting
- **No beacons received.** On either node, `sudo fipsctl show
transports` should show `beacons_recv` incrementing
every `beacon_interval_secs` once the other node is also
running. If it stays at zero:
- Confirm the chosen interface is `LOWER_UP` (carrier
present).
- Confirm the other node is announcing (its `beacons_sent`
should be non-zero).
- On WiFi: confirm AP client isolation is off.
- On a switch: confirm the switch is unmanaged or that
EtherType `0x2121` is not being filtered. Most consumer
switches forward all EtherTypes; managed switches
sometimes don't.
- **Beacons received but no peer entry.** The handshake is
failing. Tail logs (`journalctl -u fips`) for Noise
handshake errors. Common causes: peer ACL active and not
including the remote npub (out of scope for this tutorial,
but check `/etc/fips/peers.allow` if you have set one);
daemon's clock drift large enough to fail freshness
checks (rare).
- **Daemon won't start with the Ethernet transport.** Likely
a permissions error. Check `journalctl -u fips` for an
`EPERM` or "operation not permitted" message; if running
interactively, confirm the binary has `CAP_NET_RAW`
(`getcap "$(which fips)"`).
- **Beacons in both directions, peers entries on both sides,
but ping6 times out.** The handshake completed but the FSP
session is not flowing data. Check `fipsctl show peers`'s
link status columns — if the FMP link is healthy but FSP
is not, the mesh-layer side is fine and the issue is one
layer up. The
[reach-mesh-services § Troubleshooting](reach-mesh-services.md#troubleshooting)
section covers symptoms at this level.
- **`AF_PACKET` socket bind fails on a kernel-protected
interface.** Some hardened kernels (`grsec`, certain
containers, certain VMs) restrict raw-socket access even
with `CAP_NET_RAW`. The daemon log will name the failing
syscall. The fix is host-side: relax the restriction or
pick a different interface.
## What's next
You now have the second deployment mode of FIPS in your
hands. From here:
- **Add a third node.** Bring up a third machine on the same
Ethernet segment, configure it identically, and watch all
three nodes form a mesh. The FIPS spanning tree picks a
root and routing converges within a few beacon intervals.
- **Mix transports.** Add an overlay peer (per
[join-the-test-mesh](join-the-test-mesh.md)) to one of
your ground-up nodes; the local mesh now reaches the test
mesh through that node, and vice versa.
- **Host services.** Anything you do on `fips0` with overlay
peers — bind an HTTP server (per
[host-a-service](host-a-service.md)), reach a service via
the daemon's IPv6 adapter (per
[reach-mesh-services](reach-mesh-services.md)) — works
identically on a ground-up mesh. The data plane is the
same.
For more depth on the link-layer machinery:
- [../reference/transports.md § Ethernet](../reference/transports.md)
— full Ethernet transport reference (counter inventory,
per-instance configuration, MTU model).
- [../reference/configuration.md § Ethernet](../reference/configuration.md#ethernet-transportsethernet)
— every configuration key and its default.
- [../how-to/set-up-bluetooth-peer.md](../how-to/set-up-bluetooth-peer.md)
— operator recipe for the BLE variant.
- [../design/fips-transport-layer.md](../design/fips-transport-layer.md)
— the design doc that describes the per-link MTU model and
why each transport is treated as link-layer rather than
network-layer.