erplibre/script/vpn/README.md
Mathieu Benoit 197d19d61e [ADD] vpn : cinq pilotes, secrets en coffre, diagnostic étagé
Le dépôt n'avait aucun moyen de monter un tunnel VPN ni de dire pourquoi il
refuse de monter. Cinq technologies libres, un pilote chacune, derrière un
`vpn.py` qui monte, démonte et diagnostique.

Ce qui n'est pas secret — hôte, utilisateur, routes, MTU — vit dans une
configuration JSON lisible ; clés pré-partagées et mots de passe vivent dans
un coffre KeePassXC. Un profil se montre et se partage sans donner de quoi
monter le tunnel. Les secrets s'écrivent en tmpfs sous 0700, jamais sur un
disque persistant. Le diagnostic part du noyau et remonte, pour que la
première ligne fausse soit la cause et non une conséquence.
Vérifié : 138 tests, dont le rendu de chaque fichier généré.

--- EN ---

The repository had no way to raise a VPN tunnel, nor to say why one refuses
to come up. Five free technologies, one driver each, behind a `vpn.py` that
raises, tears down and diagnoses.

What is not secret — host, user, routes, MTU — lives in readable JSON
configuration; pre-shared keys and passwords live in a KeePassXC vault. A
profile can be shown and shared without handing over the means to raise the
tunnel. Secrets are written to tmpfs at 0700, never to a persistent disk.
Diagnosis starts at the kernel and climbs, so the first false line is the
cause and not a consequence.
Checked: 138 tests, including the rendering of every generated file.

Assisted-by: Claude Opus 5
2026-09-04 03:42:49 +00:00

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# VPN — five open tunnels, secrets in a KeePassXC vault
`vpn.py` brings up, tears down and diagnoses a VPN tunnel. One driver per
technology, five of them, all free software.
The split is the whole design: what is *not* secret (host, user, routes, MTU)
lives in readable JSON configuration; the pre-shared keys and the passwords
live in a KeePassXC `.kdbx` vault. A profile can therefore be shown, compared
and shared without handing over the means to bring the tunnel up.
## Which one to pick
| Driver | Pick it when | Secrets in the vault |
|--------|--------------|----------------------|
| `l2tp_ipsec` | the far side imposes it: a router, a firewall, Windows RRAS | PSK + PPP password |
| `wireguard` | you control both ends — fastest, simplest | private key (+ optional PSK) |
| `openvpn` | the site handed you a `.ovpn` file | password, if the file needs one |
| `openconnect` | Cisco AnyConnect, Pulse, GlobalProtect, Fortinet appliances | password |
| `sshuttle` | all you have is SSH access — nothing to install on the far side | none: SSH keys do the work |
## Commands
```bash
./script/vpn/vpn.py check # ce que la machine sait faire
sudo bash script/install/install_vpn.sh wireguard # ou : tous, sans argument
./script/vpn/vpn.py list
./script/vpn/vpn.py up --profile acme --dry-run
./script/vpn/vpn.py up --profile acme
./script/vpn/vpn.py status --profile acme
./script/vpn/vpn.py diagnose --profile acme
./script/vpn/vpn.py down --profile acme
```
Everything is also reachable from the CLI: **TODO › Execute › Deployment ›
VPN**, and from **TODO › Execute › Network › VPN** — a tunnel gets looked for
in both places. The menu is where profiles are created and secrets are typed
in; `vpn.py` is what the menu runs. Connecting from the menu shows the plan
first and asks before running it.
Run it as **yourself, not under sudo**: the vault lives in your home and its
master password is yours to type. Each privileged step calls `sudo` on its
own, and `--dry-run` shows every one of them without running any.
## Where things live
| Path | Content |
|------|---------|
| `private/todo/todo_override_private.json` | your profiles — gitignored, 0600 |
| `script/todo/todo.json` | the `vpn` section, empty: profiles shared by a team can go here |
| your `.kdbx` vault | one entry per profile, `ERPLibre VPN / <profile>` |
| `/dev/shm/erplibre-vpn/<profile>/` | 0700 root — **the secrets**, in tmpfs, erased on `down` |
| `/run/erplibre-vpn/<profile>.*` | non-secret state (chosen interface, pid, log), readable without sudo |
| `/etc/ipsec.conf`, `/etc/ipsec.secrets` | L2TP only: a marked block, removed on `down` |
## The three security rules
1. **No secret in an argument.** `/proc/<pid>/cmdline` is readable by every
user of the machine. Secrets travel on standard input only; a single place
(`runner.py`) holds that rule, and a unit test replays the plan of **every**
driver and fails if a secret ever reaches a command line.
2. **No secret on persistent storage.** The files a technology insists on are
written 0600 into tmpfs and erased on `down`. Two drivers need none at all:
OpenConnect passes the password on standard input (`--passwd-on-stdin`), and
sshuttle has no secret to begin with. One residual, stated rather than
hidden: while an L2TP tunnel is up, root can read the pppd options file.
pppd takes a password from a file or nothing.
3. **The master password is written nowhere.** Leave `kdbx.password` empty; it
is asked once per session. Only the vault *path* is stored, in the single
gitignored file. The CLI says so when it finds a master password in the
configuration.
The L2TP PSK reaches strongSwan **hex-encoded** (`PSK 0x…`): same bytes, and
no question of escaping a `"` or a `\` inside a pre-shared key.
## What each driver settles for you
**L2TP/IPsec** — three stages, and all three are needed for an interface:
IPsec in **transport** mode protects UDP 1701, L2TP opens a session inside it,
PPP authenticates. Six pitfalls are handled here, all six found by connecting
to a real concentrator:
- `charon { install_routes = no }`, otherwise charon installs a route that
captures the L2TP traffic — the classic *"the SA is established, ppp0 never
appears"*.
- An **AppArmor** rule. AppArmor confines charon by path and `/dev/shm` is not
in its profile, so charon is denied the secrets file by the kernel and fails
three stages later on *"no shared key found"* — with the PSK sitting there,
correct. Only `journalctl -k | grep DENIED` says so. The rule goes in the
`local/` file Debian and Ubuntu provide for exactly this.
- **`rightid=%any`**. A gateway announces itself by its IP even when `right`
is a name; without this, strongSwan refuses: *"IDir '203.0.113.5' does not
match to 'vpn.example.com'"*.
- **A wait for the connection to load.** `ipsec start` returns before the
starter has pushed the connections; an immediate `ipsec up` fails on *"no
match"* — on a perfectly valid configuration, the most misleading error of
the sequence.
- **The direction of authentication.** `require chap` / `require
authentication` (xl2tpd) and `require-mschap-v2` (pppd) all mean *require
the PEER to authenticate to us*. A client must not: the server refuses, and
pppd tears the link down with *"LCP terminated by peer (peer refused to
authenticate)"*. What a client wants is `refuse-pap` and `refuse-eap` —
which speak about **us**.
- A `/32` survival route to the server (in all-traffic mode the ESP packets
would enter the tunnel they carry), and `resolvectl`, because
systemd-resolved ignores `/etc/ppp/resolv.conf`.
One packaging note that costs an hour if missed: without the **openssl**
plugin (`libstrongswan-standard-plugins`), charon advertises 3DES, the
concentrator picks it — often the only cipher it knows — and the negotiation
dies on *"ENCRYPTION_ALGORITHM 3DES_CBC not supported!"*. The installer ships
it.
**WireGuard** — it has no session, so `wg-quick up` succeeds even with a wrong
peer key or an unreachable endpoint. Nothing says no, because nobody is there
to say it. This driver therefore **waits for a handshake** before calling the
tunnel up. Routes come from `AllowedIPs` and belong to `wg-quick`; the driver
does not double its work. No `DNS =` line either: wg-quick hands that to
`resolvconf`, missing from many systemd-resolved installs, and the whole
configuration fails when it is.
**OpenVPN** — it starts from the `.ovpn` the site gave you; this driver does
not invent one. Two things that are not obvious: `--cd`, because a `.ovpn`
references its neighbours relatively; and option order, because what follows
`--config` overrides the file — a bare `auth-user-pass` inside would otherwise
wait for a keystroke that never comes, the daemon being detached. Split tunnel
is asked for with `--route-nopull`, which also drops the pushed DNS; the driver
says so when it takes it.
**OpenConnect** — `--non-inter` is deliberate in password mode. Without it an
unknown server certificate raises a question, and openconnect would read the
answer from the standard input the password arrives on. With it, openconnect
refuses at once **and** prints the `--servercert sha256:…` line to paste into
the profile's `oc_servercert`. Routes belong to the server, through
`vpnc-script`; the profile can add to them, not replace them.
Set **`oc_sso`** when the concentrator authenticates through a **web form**
(SAML / SSO — Azure AD, Okta, Duo). There is then no password to send, and
Cisco's own client needs a screen for its embedded WebKit browser — often
with `WEBKIT_DISABLE_DMABUF_RENDERER=1` for it to render at all; its CLI
cannot do this flow. openconnect can, with no screen on the client machine:
measured in its library, it listens on **local port 29786** and waits for the
browser's redirect after launching `--external-browser` with the login URL.
On a server that "browser" is a plain `echo`, so the URL is printed for you to
open in **your own** browser — bring the redirect back with
```bash
ssh -L 29786:localhost:29786 <the client machine>
```
before opening it. The password never leaves your own workstation. Both
timeouts differ on purpose: two minutes for a password, five for a human
walking through an identity provider.
**sshuttle** — no interface at all: it redirects through the firewall. Every
interface and routing check is therefore silent for it, and the **witness
address** is the only judge — this driver is the reason the `probe` field
exists. It also insists on being run by *you*: it calls sudo itself, for the
firewall only. Running it under sudo would open the SSH session as root, with
root's keys.
## Diagnosing
`diagnose` chains the checks and names the failing stage, lowest first, so
that the first false line is the cause and not a consequence: what the
**kernel** exposes · packages present · the technology's own check (IPsec SA,
WireGuard handshake, daemon alive, OpenVPN initialisation) · interface and
addresses · each declared route · the witness address that only answers
through the tunnel · the last lines of the relevant journal. Set `probe` in
the profile to an address reachable only through the tunnel — without it,
*"it works"* stays an impression, and for sshuttle there is nothing else to
go on.
The kernel stage catches a failure no configuration can fix. Upgrading the
kernel package replaces `/lib/modules/<version>` with the new version's:
the running kernel keeps the modules already loaded and can load no other.
IPsec then becomes unavailable on a kernel that supports it, charon aborts
at initialisation on a missing `kernel-ipsec`, and the symptom surfaces three
stages higher as a connection never loaded. `diagnose` and `up` name the
version whose modules are gone and offer the only remedy — a reboot. It is
offered, never done: nothing is applied on a dry run, nor without a terminal
to answer.
## Adding a driver
`drivers/base.py` states the contract *and* carries everything true of all
technologies: directory layout, state kept between processes, routes,
systemd-resolved, the standard status checks. A new driver declares what is
its own — packages, secrets, profile fields, the form the menu unrolls, the
sequence up and down — and executes nothing: it asks a `Runner`, which either
runs or merely shows. Registering it is one line in `drivers/__init__.py`, and
`test_vpn_drivers.py` picks it up from the registry: the no-secret-on-a-command
-line rule applies to it whether or not anyone thought about it.