gns3-server/docs/features/docker-exec-console.md
YueGuobin 89d7f866cb
docker: replace vendor SKIP_INIT exec volume bridge with create-time direct binds
The SKIP_INIT volume bridge replicated init.sh's seed + mount --bind script
via docker exec *after* the container started. That copied the mechanism but
not the invariant that makes init.sh safe — the entrypoint position, which
guarantees the volume is in place before the application runs. The exec runs
concurrently with the NOS boot, so whether the NOS loaded its persisted
config or the overlay's factory copy was a timing race:

- single node stop/start on an idle system won it (exec ~1s, SR Linux reads
  its startup config at ~2-4s) — the save/stop/start round-trip passed;
- a server restart + project reload lost it (concurrent node starts queue on
  the Docker API, delaying the exec by seconds) — SR Linux booted factory
  while the persisted config.json sat intact on the host;
- XRd was immune (systemd boots tens of seconds before XR touches
  /xr-storage), which is why the race was never observed on it.

Replace the bridge entirely:

- new DockerVM._prepare_volumes hook (no-op in the base class) runs in
  create() after the image is present, before the container is created;
  VendorDockerVM overrides it to seed each volume's host directory from the
  image (throwaway docker create container + docker cp -a, nothing
  executes). The .gns3_perms marker gates the seeding: a volume that ever
  started is never re-seeded, so saved configuration is never overwritten
  with factory content (also the upgrade path for existing nodes).
- VendorDockerVM._mount_binds now binds the volumes directly at their real
  in-container paths (/etc/opt/srlinux) instead of /gns3volumes aliases, so
  the persisted config is visible to the NOS from the very first process.
- _setup_skip_init_volumes and its start() call are gone; the container-side
  _fix_permissions targets the volume paths directly (the direct binds
  exist for the whole container lifetime, unlike the old bridge).

The volume-list computation (validation + overlap de-duplication) moves
into DockerVM._persistent_volume_list so create-time seeding and _mount_binds
cannot drift apart.
2026-08-22 00:09:13 +08:00

33 KiB
Raw Blame History

This documentation is organized by AI with reference to actual code. AI can make mistakes — please verify against the source code when in doubt.

Docker exec Console (Vendor NOS Containers)

Overview

GNS3 Docker nodes normally expose their console by attaching to the container's PID 1 stdio. That works for CLIs that run as PID 1 (e.g. FRR's vtysh), but it does not work for vendor NOS containers (Nokia SR Linux, Arista cEOS, Juniper cRPD, …) whose CLI is a separate, full-screen TUI process that is not on PID 1. For those, attaching to PID 1 only shows boot logs and never yields a CLI prompt.

The docker_exec console type solves this. It runs a chosen command inside the running container via the Docker exec API (with a pty) and bridges it to the GNS3 console, so the vendor's native TUI CLI renders in the Web UI (xterm.js) exactly as if you had run docker exec -it <container> <cli> in a real terminal.

Two companion environment knobs (GNS3_SKIP_INIT, GNS3_INTERFACE_NAMES) make the container itself boot and wire correctly for vendor NOS images. Together they let a vendor NOS run as a first-class GNS3 Docker router node.

Prototype status: the knobs are environment-driven and intentionally avoid schema changes, so existing Docker nodes (FRR, ipterm, …) are unaffected. console_type: "docker_exec" is added to the ConsoleType enum.

Environment knobs

All are read from the node's environment field. Entries prefixed with GNS3_ are not forwarded into the container (existing GNS3 behaviour), so they stay host-side configuration. The console-relevant ones (the full vendor set, incl. GNS3_SHM_SIZE / GNS3_DEVICES / GNS3_MASK_UDEV / GNS3_STOP_TIMEOUT, is documented in vendor-nos-xrd.md):

Variable Purpose
GNS3_SKIP_INIT=1 Do not prepend /gns3/init.sh to the entrypoint. Vendor NOS images must run their own entrypoint (e.g. SR Linux's sr_linux); GNS3's init script (busybox bootstrap, ifup, eth wait) interferes with them.
GNS3_INTERFACE_NAMES=mgmt0,e1-1,e1-2,e1-3 Rename the injected interfaces in adapter order instead of the default eth{N}. SR Linux expects mgmt0 + e1-N; without this it does not recognise its datapath.
GNS3_CONSOLE_CMD=/opt/srlinux/bin/sr_cli Command run by the docker_exec console inside the container.
GNS3_CONSOLE_RESIZE=0 Ignore client-driven console resizes (WS terminal-size control frames / telnet NAWS) and keep the tall no-paging PTY geometry. Set for CLIs that page on the PTY window size (IOS-XR) — see Terminal geometry.

Architecture: VendorDockerVM subclass

All vendor-specific logic lives in a VendorDockerVM(DockerVM) subclass in gns3server/compute/docker/vendor_docker_vm.pydocker_vm.py itself stays on its baseline behaviour and is never touched by this feature.

DockerVM exposes four small extension hooks (pure refactorings, zero behaviour change for existing nodes):

Hook Baseline behaviour VendorDockerVM override
_prepare_init_and_interface_env(params) prepend /gns3/init.sh, set GNS3_MAX_ETHERNET=eth{N-1} conditional init.sh (GNS3_SKIP_INIT), GNS3_MAX_ETHERNET follows the interface rename
_start_console_server() telnet/ssh/http console dispatch adds the docker_exec branch
_get_container_ifname(adapter_number) eth{N} GNS3_INTERFACE_NAMES lookup, fallback eth{N}
_cleanup_console_resources() no-op closes the docker-exec pty socket before restart/stop

Class selection

The Docker manager picks the class per node in Docker.create_node() (gns3server/compute/docker/__init__.py):

def _select_node_class(self, **kwargs):
    if kwargs.get("console_type") == "docker_exec":
        return VendorDockerVM
    return DockerVM

console_type == "docker_exec" is the only trigger — every other console type (telnet, vnc, ssh, http, …) keeps using the unmodified DockerVM. All vendor features are opt-in: without the GNS3_* environment variables a VendorDockerVM instance behaves identically to DockerVM (init.sh still runs, interfaces stay eth{N}, the exec command defaults to /bin/sh), so a regular container can use docker_exec too.

The docker_exec console type

Setting console_type: "docker_exec" makes the node's primary console port run _start_docker_exec_console() instead of the attach-to-PID-1 path.

Console architecture

graph LR
    A[Web UI xterm.js] -->|console WS: text frames| B[Controller forward]
    B -->|WS: text + binary| C[GNS3 Compute telnet server]
    C -->|binary pty stream| D[Docker exec API]
    D -->|Tty:true pty| E[sr_cli / vendor CLI]
    A -.->|binary control frame {"cols","rows"}| B
    B -.-> C
    C -.->|POST exec/.../resize| D

The console uses GNS3's existing shared/broadcast telnet model: a single exec instance (one CLI session) is broadcast to every console client, exactly like the primary console shares one PID 1. There is deliberately no per-client session isolation — this matches how every other GNS3 console behaves. The PTY geometry is likewise shared: the last client resize wins (see Terminal geometry).

Implementation

File: gns3server/compute/docker/vendor_docker_vm.py_start_docker_exec_console()

A small subclass _LazyExecTelnetServer(AsyncioTelnetServer) implements the console. Key points:

  1. Lazy exec creation. The exec is created on the first client connection (client_connected_hook), not when the node starts. This is essential: vendor CLIs (e.g. sr_cli via prompt_toolkit) send a cursor-position request (\e[6n, CPR) during startup and block waiting for the terminal's answer. If the exec starts at node-start time there is no xterm.js client to answer, the probe times out, and the TUI degrades (no status bar, "Terminal doesn't support CPR" warning). Creating the exec on first connect means the probe runs with a real xterm.js attached, which answers CPR → full TUI. After creation the exec is shared by all clients.

  2. Exec API with a pty. POST containers/{cid}/exec with Tty: true, User: "root" (vendor CLIs reject the image's default unprivileged user — SR Linux returns "User 'user' is not authorized to use CLI" otherwise), and Env: ["TERM=xterm"] (the TUI library needs a recognised terminal).

  3. No while-true wrapper. The command runs as sh -c "<cmd>" (no restart loop). When the CLI exits (quit, the NOS's own idle timeout, or a crash) the exec pty closes, the broadcast task ends, and the next client connection recreates the exec (see Reconnection). A while true wrapper would restart the CLI mid-session with no client attached to answer its startup CPR probe, producing a blank/degraded screen on reconnect.

Reconnection

The exec is created lazily and recreated on reconnect if it has died. client_connected_hook checks _upstream_alive() (exec id set, writer open, broadcast task not done) before each connect:

  • First connect / dead upstream → (re)create the exec. Because a client is now attached, the CLI's startup CPR probe is answered by xterm.js → full TUI. A half-dead writer is closed first to avoid a socket leak.
  • Live upstream → reuse the existing exec, just send Ctrl-L to redraw for the new client.

This is what makes the console survive quit, idle timeout, and CLI crashes: the death is detected (pty EOF ends the broadcast task) and the next connection spins up a fresh exec with a terminal present. The _LazyExecTelnetServer is extracted to module level specifically so this reconnect logic is unit-tested.

  1. Hijacked raw-HTTP start. The exec is started with POST exec/{eid}/start sent as a raw HTTP upgrade over the Docker unix socket (asyncio.open_unix_connection), the same approach docker-py uses. This is required because aiohttp's websocket client (ws_connect) is rejected by Docker's exec-start endpoint (HTTP 400), while a raw POST upgrade succeeds (101). With Tty:true the response body is a raw, non-multiplexed bidirectional pty byte stream — no frame demux needed.

  2. NAWS → exec resize. The telnet server runs with naws=True; the window_size_changed_callback (_on_naws, gated by GNS3_CONSOLE_RESIZE) calls POST exec/{eid}/resize?h=&w= so the TUI lays out for the client's window size. The internal _resize_exec path (creation-time default, restore-on-idle) is not gated. See Terminal geometry.

  3. Binary passthrough + redraw. binary=True so TUI escape sequences reach xterm.js intact; echo=False (the pty echoes). On every client (re)connect a Ctrl-L (\x0c) is sent to the pty so a TUI that already drew its screen for a previous client redraws for the new one (otherwise a reconnect shows a blank screen until the next output).

Terminal geometry and size forwarding

The exec PTY geometry is a shared resource with three consumers that want different things:

  • Browser clients (xterm.js) need the PTY to match their real window, or TUI CLIs misrender and over-render (below).
  • Non-NAWS clients (netmiko, bare telnet — no terminal-size negotiation) need the PTY tall: CLIs that page on the PTY window size (the IOS-XR pager ignores terminal length 0) park at --More-- on a 24-row PTY.
  • Concurrent sessions share one exec — one browser resize changes what every attached client sees.

Resolution:

  1. Tall default. The exec is created at 511×10000 (width 511 matches netmiko's terminal width 511 convention). Non-NAWS clients get no paging and no hard wrapping.
  2. WS terminal-size forwarding. Console WebSocket clients may send binary control frames — UTF-8 JSON {"cols": N, "rows": N} — alongside text frames carrying terminal data (xterm.js's AttachAddon only sends text, so binary is an unambiguous side channel; valid ranges are cols 25000, rows 2100000, anything else is silently ignored). The controller forwards binary frames (previously only text was forwarded — and a binary frame would have crashed the old receive_text loop), and the compute side turns them into a telnet NAWS subnegotiation for telnet-based consoles (docker_exec included) or an asyncssh change_terminal_size for SSH consoles (base_node.py start_websocket_console).
  3. Races. A size frame that arrives before/during the exec creation is remembered and applied right after creation — it is not overwritten by the tall default. When the last client disconnects the exec goes back to 511×10000, so a later non-NAWS client attaching to the still-live exec doesn't inherit a browser geometry and hit PTY-window paging.
  4. GNS3_CONSOLE_RESIZE=0 makes the console ignore client resizes entirely (the tall default is then permanent). Set it for paging CLIs where a browser resize would break concurrent netmiko sessions on the shared exec — XRd, which is line-oriented and doesn't need browser resizing at all.

Why the browser must send its size — the SR Linux flicker. sr_cli is a prompt_toolkit TUI that anchors its layout with cursor-position requests (CPR), which xterm.js answers. On a 10000-row PTY canvas the CPR-anchored model conflicts with the winsize model, and every incremental render re-emits the accumulated output: measured with a CPR-answering client, one info command produces ~145 KB instead of ~60 KB (~7× duplicated lines either way — the CLI re-renders its output region as a scroll-append stream; that part is inherent to sr_cli and identical outside GNS3, verified via manual docker exec). The inflation is driven by rows (24/32 → normal, 10000 → pathological, at any width) and is invisible without CPR answers — which is why plain-telnet probes and real xterm.js sessions behaved so differently. In the Web UI the excess renders as frequent full-screen clear/redraw — the "flicker". With the browser's real size forwarded (rows ≈ 30), output volume and rendering return to normal.

File: gns3server/compute/base_node.py — the console WebSocket guard now allows docker_exec (alongside telnet/ssh), since the WS bridge connects to the console TCP port exactly as it does for telnet. The same WS handler also intercepts binary control frames and propagates client terminal sizes (see Terminal geometry).

Why earlier approaches failed (context)

  • script + docker exec -it: the script pty had size 0 (no NAWS) → the TUI could not lay out → blank.
  • docker exec -i (no -t) + sr_cli -d (dumb mode): line-mode output was block-buffered and visually messy.
  • Direct pipe relay: telnet CRLF polluted line input.

The exec-API approach fixes all of these: a real pty (Tty:true), a real size (NAWS resize), and a real terminal emulator (xterm.js answering CPR).

Configuration

SR Linux node example

{
  "name": "srlinux-1",
  "node_type": "docker",
  "image": "ghcr.io/nokia/srlinux:latest",
  "adapters": 4,
  "console_type": "docker_exec",
  "start_command": "sudo -E bash -c 'touch /.dockerenv && /opt/srlinux/bin/sr_linux'",
  "environment": "GNS3_SKIP_INIT=1\nGNS3_INTERFACE_NAMES=mgmt0,e1-1,e1-2,e1-3\nGNS3_CONSOLE_CMD=/opt/srlinux/bin/sr_cli"
}
  • start_command is the SR Linux launch line (as used by containerlab).
  • Connect the node's ports as usual — links still use GNS3's UDP NIO datapath (container-agnostic); the rename only affects the in-container interface name.
  • For the Web UI port labels to match (display mgmt0/e1-1 instead of Ethernet0..3), set custom_adapters per port ({"adapter_number": 0, "port_name": "mgmt0"}, …). Port labels are a controller-side concept, independent of the compute-side interface rename.

Appliance (gns3a) packaging

A SR Linux appliance lives in gns3-registry/appliances/srlinux.gns3a (registry_version: 6). It sets the full chassis — 35 adapters (mgmt0 + e1-1..e1-34) — with matching GNS3_INTERFACE_NAMES and 35 custom_adapters entries (mgmt0, e1-1..e1-34) so the canvas labels, the kernel interface names and the ethernet-1/N CLI names all line up.

Three appliance-schema fixes are required for this appliance to load (all on the gns3-server side; the registry JSON schema is unchanged because its docker block allows additionalProperties):

  1. DockerConsoleType (schemas/controller/appliances.py) must include docker_exec, or the Pydantic appliance model rejects the file at import.
  2. ApplianceV1_6.custom_adapters must be declared on the top-level appliance model, or GET /appliances (response_model=schemas.Appliance) strips custom_adapters from the API response even though the file and the server-side template conversion handle it. (Node creation still worked because appliance_to_template._add_docker_config reads it from the raw dict; only the GET response was lossy.)
  3. extra_volumes rides inside the docker block (passed through by new_config.update(appliance_config["docker"])); no schema change needed.

Symbol theme caveat. An appliance symbol that starts with :/symbols/ is forcibly rewritten at load time (appliance_manager._load_appliances) to the current theme's default for the appliance category — so :/symbols/affinity/circle/blue/router_cloud.svg (or router2.svg) becomes :/symbols/affinity/circle/blue/router.svg, because the theme maps only the canonical name "router". This is intentional: it lets theme switching re-skin every node consistently. To use a non-default icon (e.g. router_cloud), install it as a custom symbol under the configured symbols_path and reference it by filename (no :/symbols/ prefix) — custom symbols do not participate in re-theming. The SR Linux appliance uses router.svg.

Persistent state

For SR Linux, persist /etc/opt/srlinux (config / AAA users / TLS certs) and /var/log/srlinux (logs, optional) by adding them to the node's extra_volumes. The image also declares its own VOLUME directories (e.g. /opt/srlinux/appmgr), which GNS3 persists automatically.

Volume persistence with GNS3_SKIP_INIT

This is the one place where skipping init.sh changes behaviour beyond boot: /gns3/init.sh normally performs the volume-persistence bridge, and without it nothing writes through to the host — the container writes to its overlay filesystem and the data is lost on stop.

init.sh (as the entrypoint) is safe because it runs before the application: for each volume it seeds the host directory with the image's original files on first start, then mount --bind /gns3volumes<path> <path> bridges persistent storage into place.

VendorDockerVM cannot use that position (the NOS must own its entrypoint), so the same persistence is established entirely outside the container and before it exists:

create() 之前:  host dir seeded from the image (docker create + docker cp, first time only)
create() 时:    host ──Docker bind mount──▶ /etc/opt/srlinux   (direct, at the real path)
启动:           NOS native entrypoint — the persisted config is visible from the first process
  1. _prepare_volumes() — host-side, at create() time (after the image is present, before the container is created). For each persistent volume whose host directory lacks the .gns3_perms marker, a throwaway docker create container (nothing executes) is used as a docker cp -a source to seed the host directory with the image's original content. The marker is written after the copy attempt — a volume that has it (every node that ever started, on any GNS3 version) is never re-seeded, so saved configuration is never overwritten with factory content.

  2. _mount_binds() override — the volume binds target the real in-container paths (/etc/opt/srlinux) instead of /gns3volumes<volume>. With the content seeded first, the image's files are never shadowed by an empty mount, and the NOS sees its persisted configuration from the very first process — no post-start mount pass that could race the NOS reading its startup config (see "History: the exec-bridge race" below).

  3. Container-side _fix_permissions() override — runs the same busybox record/chmod/chown script inside the container (as root) on the volume paths. Because the volumes are Docker bind mounts created with the container, the in-container paths resolve to the host files for the whole container lifetime. A stopped/exited container is not restarted (the base class would, just to chown; vendor NOS images are heavy to boot): the pass is skipped and the next start fixes ownership. It runs at start (so the controller can read project files while the node runs) and at stop (for files written during runtime).

The fix must run container-side: files written by the container are host-side root-owned, and an unprivileged GNS3 process cannot chown them from the host. Container-side root (with GNS3's UsernsMode: host) can.

With GNS3_SKIP_INIT, GNS3's hardcoded /etc/network volume (see docker_vm.py _mount_binds()) is dropped entirely by VendorDockerVM._mount_binds(): it holds GNS3's own network config for init.sh's ifup, which never runs for SKIP_INIT containers — the NOS manages its own interfaces. The override removes the bind, filters the volume out of self._volumes, and deletes the host-side skeleton directory the base class just created. Without GNS3_SKIP_INIT the mount is kept (behaviour matches the base class).

Lifecycle summary

Phase Normal Docker node VendorDockerVM + GNS3_SKIP_INIT
create _prepare_volumes() seeds host dirs from the image (first create only); volumes bound directly at their real paths
start init.sh seeds + bind-mounts + restores perms (in-container, before the app starts) container-side _fix_permissions on the volume paths (skips dead containers, no restart)
stop container-side _fix_permissions on in-container paths (restarts an exited container) container-side _fix_permissions on the volume paths (skips dead containers, no restart)
volume config _mount_binds: host → /gns3volumes<path> _mount_binds override: host → <path> directly

Runtime ownership safety

The start-time fix pass chowns the volume files to the host user while the container is running — a deliberate deviation from the standard model, where init.sh restores container-native ownership at start and the container never sees host-owned files during runtime. Verified harmless for SR Linux:

  1. Most processes run as root (sr_linux, appmgr) — root ignores file ownership entirely.
  2. Self-healing daemons. SR Linux's aaamgr rewrites its managed files with its own ownership at boot: after the start-time pass chowned etc/opt/srlinux/aaamgr_local_user.json to the host user, the daemon re-created it as srlinux:srlinux (uid 1002, mode 700) within seconds.
  3. ACL-based access. The directory carries a default ACL (default:group:srlinux:rwx, default:other::rwx), so named group ACL entries grant access independently of the owner uid; the observed file ACL (group:srlinux:rwx, owner srlinux) survives chown.

Caveat: a NOS that strictly validates ownership of its files (e.g. "SSH keys must be root:root 600 or refuse to start") would not tolerate this. If that ever matters, drop the start-time pass and keep only the stop-time one (standard behaviour — the trade-off is mid-run Permission denied in the file browser, identical to regular Docker nodes).

History: the exec-bridge race (fixed)

The first SKIP_INIT implementation replicated init.sh's script via docker exec after the container started instead of binding directly at create time. That copied the mechanism but not the invariant that makes init.sh safe — the entrypoint position, which guarantees the volume is in place before the application runs. An exec-based bind runs concurrently with the NOS boot, so whether the NOS reads its persisted config or the overlay's factory copy was a timing race:

  • a single node stop/start on an idle system won it (the exec landed ~1 s in, SR Linux reads its startup config at ~24 s) — which is why the round-trip "save → stop → start → config still there" passed;
  • a server restart + project reload lost it (all nodes start concurrently, the Docker API queue delays the execs by several seconds) — SR Linux booted factory while the persisted config.json sat intact on the host;
  • XRd was immune either way (systemd boots for tens of seconds before any XR process touches /xr-storage), which is why the race was never seen on it.

The direct-bind-at-create design removes the window entirely; there is no ordering requirement left to verify when adopting a new NOS image.

Troubleshooting

1. Console shows only boot logs, no CLI

  • You are on the primary attach console. Set console_type: "docker_exec" and use GNS3_CONSOLE_CMD to point at the vendor CLI.

2. User '...' is not authorized to use CLI

  • The exec must run as root. The implementation sets User: "root"; if you fork it, keep that.

3. Terminal doesn't support cursor position requests (CPR)

  • This means the exec was started without an xterm.js client connected (the startup probe had no one to answer). The lazy-start design avoids this; if you see it, ensure the exec is created on first connect, not at node start.

4. Reconnecting the Web console shows a blank screen

  • A Ctrl-L is sent on each connect to force a TUI redraw. If the TUI does not redraw, verify the client_connected_hook still writes \x0c to the pty.

5. aiohttp WSServerHandshakeError: 400 on exec start

  • Do not use the websocket client to start an exec. Use the hijacked raw HTTP upgrade over the unix socket (see Implementation).

6. SR Linux data interfaces stay down

  • SR Linux defaults its data ports to admin-state disable; enable them in the CLI (interface ethernet-1/1 admin-state enable) and bind the interface to a network-instance before ping works. This is SR Linux behaviour, not a GNS3 issue.

7. "Session has been idle, will logout in 300 seconds" → Connection closed

  • SR Linux's own CLI idle timeout logs the CLI out, the exec pty closes, and the console disconnects. Reopening the console recreates the exec (see Reconnection) and gives a fresh login. To keep a permanent session, disable the timeout in the CLI: enter candidate/system cli idle-timeout disablecommit now.

8. Controller logs Permission denied reading files under the node's project directory while the node runs

  • Root-written files inside a persistent volume. The container-side _fix_permissions pass runs at start (fixes the seeded files) and at stop; files created by the container during runtime become readable after the next stop.
  • Concrete example: SR Linux's aaamgr daemon rewrites etc/opt/srlinux/aaamgr_local_user.json during boot, after the start-time pass, as the image's srlinux user (uid 1002, mode 700) — so the host-side file stays 1002:1002 until the stop-time pass chowns it.
  • The log line comes from the file-browser API chain: Web UI Show in file managerGET /v3/projects/{pid}/nodes/{nid}/files (controller/nodes.py:538) → project.list_node_files (compute/project.py:510), where magic.from_file() cannot read the file and the file_type field is left empty for that entry. The MCP list_node_files tool uses the same code path. Size/modified-at fields and everything else keep working; only the type sniff and one warning line are affected — same behaviour as any regular Docker node writing root-owned files at runtime.

9. Persistent volume empty on the host after save + stop

  • Ensure GNS3_SKIP_INIT=1 is set (so the direct-bind path is taken) and the volume path is in extra_volumes; check that the host directory carries the .gns3_perms marker (written at create-time seeding) and the compute log for Seeded persistent volume.

10. Persisted config present on the host but not applied after restart

  • On builds since the direct-bind rework this should not happen: the volume is in place before the first process. If you see it, confirm the server build includes the rework (older builds established the bind via a post-start docker exec that could lose the race against the NOS reading its startup config — see History: the exec-bridge race).

11. Web console flickers (full-screen clear/redraw) on every command

  • The PTY is stuck at the tall 511×10000 default while a CPR-answering client is attached — see Terminal geometry. Check that the Web UI actually sends the binary size control frames on connect/resize (F12 → the console WS should show outgoing binary frames), and that the server is new enough to forward them (the controller used to forward text frames only). A client that never negotiates/forwards size (old Web UI, bare telnet without NAWS) cannot trigger the fix — but also never answers CPR, so it doesn't flicker either.
  • The much milder per-keystroke/5 s cursor toggles (\e[?25l…\e[?25h) from the TUI are normal and not this bug.

Limitations

  1. Shared session (broadcast). All console clients share one CLI session and can see each other's input — identical to GNS3's existing primary console model. There is no per-client independent session. The PTY geometry is shared too (last resize wins): two browsers of different sizes disagree harmlessly, but a browser on a paging CLI needs GNS3_CONSOLE_RESIZE=0 to stop resizing on behalf of concurrent netmiko sessions (see Terminal geometry).
  2. reset_console not wired. The console-reset action only handles telnet/ssh; it is a no-op for docker_exec (non-blocking; reconnect works fine).
  3. Prototype knobs. GNS3_SKIP_INIT / GNS3_INTERFACE_NAMES / GNS3_CONSOLE_CMD / GNS3_CONSOLE_RESIZE are environment-driven; they are not yet first-class node schema fields and are not declared in the appliance (gns3a) schema.
  4. Rootful-Docker assumption (UsernsMode: host, set for all GNS3 Docker nodes) so the container-side chown acts on the host files' real uid/gid (see the volume-persistence section).
  5. Docker CLI dependency. Volume seeding shells out to the docker binary (docker create + docker cp + docker rm) at create time — the same dependency the permission passes already have.

References

  • gns3server/compute/docker/vendor_docker_vm.pyVendorDockerVM: _start_docker_exec_console, _LazyExecTelnetServer, _prepare_volumes (host-side seeding), direct volume binds in _mount_binds, container-side _fix_permissions, start().
  • gns3server/compute/docker/docker_vm.pyDockerVM extension hooks (_prepare_init_and_interface_env, _start_console_server, _get_container_ifname, _cleanup_console_resources).
  • gns3server/compute/docker/__init__.pyDocker._select_node_class / create_node factory.
  • gns3server/compute/base_node.py — console WebSocket guard; binary terminal-size control frames → NAWS / asyncssh resize (start_websocket_console).
  • gns3server/api/routes/controller/nodes.py — console WS forwarding (text and binary frames).
  • gns3server/schemas/common.pyConsoleType.docker_exec.
  • containerlab nodes/srl/srl.go — reference for SR Linux launch command and interface naming.

Version History

Version Date Changes
1.7 2026-08-22 SKIP_INIT volume persistence rebuilt: host-side seeding at create time (docker create + docker cp -a, marker-gated so saved config is never overwritten) and direct bind mounts at the real in-container paths replace the post-start docker exec bridge. Root cause: the exec bridge raced the NOS reading its startup config — SR Linux read config.json at ~24 s and booted factory whenever concurrent node starts (server restart + project reload) delayed the exec past that point, while single-node stop/start and XRd (systemd touches /xr-storage tens of seconds in) never lost the race. New _prepare_volumes hook on DockerVM; _fix_permissions now targets the volume paths directly.
1.6 2026-08-20 Terminal geometry and size forwarding: WS binary control frames {"cols","rows"} → NAWS / asyncssh resize (controller now forwards binary frames; compute intercepts them); tall 511×10000 default kept for non-NAWS clients, applied post-creation and restored on last disconnect (client size racing exec creation wins over the default); new GNS3_CONSOLE_RESIZE=0 knob for paging CLIs (XRd) where a browser resize would break concurrent netmiko sessions on the shared exec; documented the SR Linux flicker root cause (tall rows × CPR-answering client → ~2.4× re-emitted output; rows-driven, width-independent).
1.5 2026-08-13 Add appliance (gns3a) packaging section: 35-adapter full-chassis design, the three server-side schema fixes (DockerConsoleType, ApplianceV1_6.custom_adapters, extra_volumes passthrough), and the symbol-theme caveat (any :/symbols/ symbol is rewritten to the category default at load).
1.4 2026-08-13 Reconnect fix: drop the while-true wrapper (it restarted the CLI with no client to answer CPR → blank screen on reconnect); the exec is now recreated on connect when the upstream has died. _LazyExecTelnetServer extracted to module level and unit-tested.
1.3 2026-08-12 Document runtime ownership safety (root processes, self-healing daemons, ACL evidence for SR Linux), the boot-ordering caveat (bridge after boot → verify save/stop/start closed loop), and troubleshooting #10.
1.2 2026-08-12 _fix_permissions rewritten: container-side (as root) on the /gns3volumes bind-mount targets instead of host-side — host-side chown cannot touch root-owned files when GNS3 is unprivileged. Dead containers are skipped instead of restarted.
1.1 2026-08-12 Refactor: vendor logic extracted from DockerVM into VendorDockerVM subclass with 4 hook points + class-selection factory. Add SKIP_INIT volume persistence (_setup_skip_init_volumes + _fix_permissions) and lifecycle comparison. Add troubleshooting entries for idle timeout and permission-denied files.
1.0 2026-08-12 Initial documentation of the docker_exec console and vendor NOS knobs.