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# ai-app — plan
A phone interface to AI coding sessions — Codex, Claude Code and llama.cpp — built
to replace the Claude app for day-to-day use. Two motivations: local models
need a front end at all, and owning the client means fixing what the official
app gets wrong (it won't deliver a typed message until the turn fully
finishes, where the TUI injects it at the next tool boundary).
Same shape as `../dev-updater`: a Rust (Axum) backend on the desktop, a
Kotlin/Compose Android app, pinned self-signed TLS between them.
This file records decisions with their date, their rationale, and what was
rejected. Update it in place when one changes; `AGENTS.md` is the working
notes layer and must not become a second version of it.
## The one idea everything hangs off
**A session is a child process, translated into one common event model.**
The backend spawns it, translates its dialect into a common event stream,
and keeps an append-only transcript. A new session type is a new driver —
never a session-type branch in shared code (routes, transcript, app
screens). SSH falls out of the same shape: a remote session is the identical
command wrapped in `ssh host …`, and the driver never learns which it got.
```
Android app (Compose)
│ HTTPS (pinned CA) — REST for actions, SSE for live events
backend (Rust/Axum, desktop)
├─ SessionManager ── Session ── Driver (trait)
│ ├─ ClaudeDriver (claude stream-json over stdio)
│ ├─ CodexDriver (persistent codex app-server JSONL)
│ ├─ LlamaDriver (llama-server over HTTP)
│ └─ EchoDriver (the test rig)
│ each driver's process is spawned through a Transport,
│ locally or as `ssh host …`, decided by the setup it names
├─ usage.rs (provider usage meters, per machine)
├─ models.rs (HuggingFace browsing and GGUF downloads)
├─ files.rs (the file explorer's half of the backend)
└─ config.ron + per-session transcript files
```
## Architecture
### Setups and providers (2026-08-28)
**A setup is a machine, and it carries the providers that machine has.**
Optional ssh details, plus the list of what can be run there. Spawning is
two choices in order: pick a setup, then pick one of its providers.
This replaced an independent providers × hosts cross-product, because the
two axes are not independent: a provider is only real on a machine where
that CLI is installed, so the cross-product offered combinations that cannot
work — `claude-cli` on a machine with no `claude`, and every provider paired
with a host the driver ignores (`EchoDriver` takes no host, so "Run on" was
a control that silently did nothing).
- **Echo is seeded, not implicit.** It lives in the setup with no ssh,
because it runs in-process and has no transport to cross. It is written
into `config.ron` on first run rather than conjured at read time — a
provider nobody can see in the file is one nobody can edit from the phone.
- **Providers are discovered by asking the machine**, never typed, so an
enrolled token cannot introduce a command. The escape hatch for a binary
somewhere unusual is editing `config.ron`, deliberately the one authority
the phone does not have.
- **Migration code is deleted once the update carrying it is received.** The
providers/hosts migration ran on the one host there is and is gone. A file
in the old shape now fails to parse, which is correct because no such file
exists.
### Backend layout (`server/`)
axum 0.8, axum-server + rustls, tokio, serde, clap, tracing. Rust edition
2024, warning-clean, clippy clean.
- `main.rs` — bootstrap, TLS listener, auth layer, enrollment, wg0 binding.
- `routes.rs` — the whole HTTP table in its module doc comment. **That
comment is the surface's source of truth**; this file does not repeat it.
- `auth.rs` — the bearer-token middleware.
- `config.rs` — the persisted schema.
- `setups.rs` — machines and provider discovery.
- `files.rs` — the file explorer (`EXPLORER.md`).
- `usage.rs` — provider usage polling, per machine.
- `models.rs` — HuggingFace browsing and GGUF downloads.
- `media.rs` — the image media-type/extension table, shared by the four
places that must agree: storing an upload, serving it back, handing one to
a driver, and saving one a tool produced.
- `session/mod.rs``SessionManager`, the live registry; every mutation
funnels through it so in-memory and on-disk state cannot come apart.
- `session/driver.rs` — the `Driver` trait and the common event model.
- `session/claude.rs`, `session/codex.rs`, `session/llama.rs`,
`session/echo.rs` — the drivers.
- `session/transcript.rs` — the append-only JSONL event log per session,
with monotonically increasing sequence numbers (the phone's resume cursor).
- `session/transport.rs`, `ssh.rs` — running a driver's command locally or
over ssh.
- `session/process.rs` — the pid + start-time record that lets a process
outlive the backend.
- `session/import.rs` — continuing a Claude Code session the machine has.
- `session/pending.rs` — operations in flight on importable sessions.
The certificates, enrollment, wg0 binding, owner-only file modes and RON
house rules live in the `wg-app-link` submodule, shared with dev-updater.
### The common event model
Driver output, whatever the dialect, is normalized into one enum before it
touches the transcript or the phone. Every event is appended to the session's
transcript with a sequence number, then fanned out to SSE subscribers. The
phone renders purely from this stream: reconnecting is "give me events after
seq N", so there is no separate history path to drift from the live one.
- `UserMessage { text }` — echoed into the transcript **by the manager, not
by drivers**, so every device renders the conversation from one stream.
- `AssistantText { delta }` — streaming text, rendered as markdown.
- `ToolStart / ToolUpdate / ToolEnd { tool, input, output }`.
- `Image { ref }` — saved under the session dir, fetched by URL.
- `Question { id, prompt, options }` — anything needing a human. Claude's
AskUserQuestion and permission requests (canUseTool) are the same shape;
a permission is a question with two bare options, not a different kind.
- `Answered { id, answer }` — so a question card resolves on every connected
device, not just the one that answered.
- `Status { state }` — idle / running / awaiting-input / compacting /
**waiting** / exited / unknown. `waiting` (2026-09-06) is the session's own
turn being over while work it started is not: a backgrounded subagent, or a
command left running. Its own state because `idle` and it differ in *kind*
`idle` means the session is waiting for a person, and this means it is
waiting for itself and will speak again with nobody having typed anything.
Reporting it as idle sent a "finished" notification at the one moment that
was untrue.
- `UsageDelta { tokens, context }` — what a turn cost and how much the model
was holding when it ended. `context` is prompt plus both cache figures,
taken from the **last assistant message** rather than the turn's `result`:
measured 2026-08-30 against CLI 2.1.237, the result adds a turn's messages
up, so its cache read of 40,211 was the same conversation counted twice.
It is carried rather than summed, because it goes *down* — a compaction
replaces it and a clear leaves it unmeasured. `driver::context_after` is
that rule and the phone folds with the same one. A session the server has
no measurement of asks the CLI's own file instead of waiting for a turn
(`import::context_of`).
- `MessageQueued` / `MessageDropped` — see "Taking a queued message back".
- `PeerMessage` — see "A message from another agent".
- `Error { message }`.
Inbound, the `Driver` trait is small: send a message, answer a question,
interrupt, set the model, compact, unqueue, and two ways out — `detach` (the
server is going away and means to come back) and `stop` (the session is being
deleted, so the process must not survive). Every driver owes exactly one of
the two.
`send_user_message` during a run is the point of the whole app: a dialect with
a live input channel injects it at the next tool boundary. A turn-at-a-time
dialect persists it and starts the next turn as soon as the current process
ends.
### Claude driver specifics
Spawn: `claude -p --verbose --input-format stream-json --output-format
stream-json --permission-mode <mode>` in the chosen working directory, plus
`--model` and, where one has been chosen, `--effort`. Wire-format notes are
pinned against CLI 2.1.237 in `session/claude.rs`'s module doc: permissions
need the hidden `--permission-prompt-tool stdio` flag, AskUserQuestion answers
ride `updatedInput.answers` keyed by question text, and `set_model`/`interrupt`
are control requests.
**The thinking level is settled at launch** (added 2026-09-04, because it is
the largest saving available on a long session: output is about an eighth of
what a session costs and thinking is the bulk of output, against the ~1.5% that
is prose). The CLI's only two setting control requests are `set_model` and
`set_permission_mode` -- checked against the 2.1.258 binary -- so there is no
way to ask a running process to think differently. `set_session_effort` is
therefore shaped like `set_session_cwd` rather than like `set_session_model`:
it records the level and **stops the process**, and the next message or Start
launches one that has it. It lives in the session settings dialog beside the
working directory for that reason, not on the session bar beside the model and
the mode, which do take effect mid-turn. `None` is a level in its own right --
the CLI's own default -- so the picker can return to it; a level this app named
as the default instead would be this app choosing one.
**What a new session starts at is `Config::default_effort`**, applied in
`spawn_session` rather than filled in by the spawn screen, so it holds for an
import and a bare API call as well. It is set by the spawn screen's own
picker, whose label says so: one control, where new sessions are made, rather
than a settings page for a single value. It is not on a provider, because
providers are discovered and the next rediscovery would erase it, and not on
the phone, because a second device would then spawn at a level nobody there
chose. `GET`/`POST /defaults` carry it, as a struct rather than a bare value
so the permission mode -- still hardcoded to `auto` on the spawn screen -- can
move there without a second route.
**`--resume` only ever runs when nothing else has that session open.** That
is the rule behind the import refusal, the single `ClaudeDriver::launch`
entry point, and the `Exited` correction below; two CLIs on one session file
duplicate the conversation into it and bill the second for re-reading it all.
### Codex driver specifics (2026-09-09)
Codex uses one persistent `codex app-server --stdio` per session. The original
2026-09-07 implementation used one `codex exec --json` process per turn, but
that surface cannot steer: a message typed during work was held until the turn
ended, and Pause killed the whole process before starting another resume. The
app-server protocol provides the operations the interface actually promises:
`turn/steer` injects a message into the active turn and `turn/interrupt` stops
that turn while leaving the conversation process alive.
The process's stdin is a fifo and its output is a detached log, with protocol
state persisted beside the thread id. It therefore survives and is adopted
across a backend restart like the Claude CLI. A steer is sent immediately and
is announced where Codex emits its user-message item; if Codex says the active
turn is not steerable, the message remains queued and starts the next turn
instead of being lost. An interrupt requested while a turn is still starting
is applied once Codex supplies that turn's id, so it cannot leak forward and
hide a later failure.
Codex subscription limits come from the CLI's `account/rateLimits/read`
app-server request on the machine whose setup runs Codex. This keeps login and
token refresh inside the CLI. Its primary and secondary windows are normalized
into the existing usage snapshot shape, under provider name `codex`, so the
phone and auto-resume need no Codex branch. This is the CLI's local protocol
and is treated defensively for the same reason as Claude's undocumented usage
endpoint: missing fields or a refusal degrade to an unavailable snapshot.
The model picker asks the selected setup's Codex app-server for `model/list`
when it is opened. The catalog is account- and CLI-version-specific, so it is
never copied into the app or inferred from another setup; a lookup failure is
shown as unavailable while the free-text escape remains. Permission choices
are likewise reported per provider: Codex offers its read-only,
workspace-write and full-access modes, while Claude keeps its own modes.
### The llama driver
One `llama-server` per session, started through the same `Transport` as any
other process and then reached over HTTP on a loopback port. Two things are
deliberate and easy to undo by accident:
- **The conversation is rebuilt from the transcript**, not kept in the
driver. A copy in driver memory is invisible to a second device and gone
when the process restarts. That leaves the Claude driver as the odd one
out rather than this one — the CLI's memory is a cache in front of the same
transcript. Resolve any inconsistency in this direction.
- **A llama session runs on whatever machine its setup names** (2026-09-04,
the last of phase 5). A transport is "run this" plus "reach this port", and
the second half is `Transport::reserve_port` — the port the server binds
*there* and the port that reaches it *here*, the same number locally —
carried by `Launch::reaching` onto the connection that already runs the
command. `llama-server` binds loopback on the far machine, so nothing is
served to its network. The far port is a guess from a range below the
ephemeral one, because no portable way to ask a machine for a free port
avoids racing the bind anyway; a collision is not silent, since the server
fails to bind and the readiness poll reports what its log said.
- **The model file lives on the machine that serves it** (2026-09-04). Each
setup names its own models directory (`SshConfig::models_dir`, default
`~/.local/share/ai-app/models` expanded *there*), and a spawn resolves the
key on that machine — one round trip answering "at /abs/path" or "missing",
so a model that is not there is refused at the spawn rather than becoming a
server that never becomes ready. The spawn screen offers
`GET /setups/{id}/models`, that machine's list, rather than `GET /models`,
which is this backend's downloads. Downloading *to* another machine is
deliberately not built: a multi-gigabyte transfer with no progress
anywhere, and the file gets there however anything else on that machine
did.
- **The readiness poll watches the process, not only the port.** A model that
will not load, a port already taken, a flag an older build does not know:
all exit within a second and none will ever answer `/health`, so waiting
out the 300s timeout turned the server's own account of the problem into
"gave up". The failure carries the tail of `llama-server.log`, which on a
remote session is the only copy anybody reading the phone can see.
### Models (2026-08-28)
- **A download belongs to the model, not to the request.** Keyed by
`owner/repo/file.gguf` and owned by the server, so a second device can
watch one it did not start and an hour-long fetch survives a locked screen.
Every run has an id and its outcome outlives it, because "not downloading"
otherwise means finished, never started, or someone else's run ended while
you were away.
- **Progress is measured**, never estimated: `total` is Content-Length, or
Content-Range's last field on a resume, and absent when the server says
nothing.
- **Resume is guarded by identity, not by hope.** A partial carries the ETag
it was written against and a mismatch discards it. `If-Range` would be the
tidy mechanism but HuggingFace's CDN ignores it (probed 2026-08-28). The
published sha256 is checked before the file is renamed.
- Sampling parameters reach a driver as an untyped `params` map, so the
shared schema does not grow llama.cpp's vocabulary.
### Transport (ssh)
- A remote session is a local one with the command wrapped in `ssh -T host …`,
every argument shell-quoted, run with `exec` so dropping the connection
takes the CLI down rather than orphaning it. Key-based auth only, through
the system `ssh` client, which inherits `~/.ssh/config`, agents and jump
hosts for free.
- **The transport wraps the driver, not the other way round** (2026-08-28).
A driver says what to run; something above it turns that into a process.
Otherwise transport knowledge sits inside a translator whose job is a wire
format, and every future driver has to remember to do the same.
- **A forwarded launch gets a pty and every other one does not** (measured
2026-09-04). Killing the ssh client ends a CLI because it closes the stdin
that CLI is reading; `llama-server` never reads its stdin, so the same kill
left it running on the far machine with the model loaded — one orphan per
stopped session. With `-tt` the far side takes SIGHUP when the connection
goes. Its log then arrives through a line discipline, which nothing parses.
`-T` stays everywhere else, where a pty would rewrite the JSONL.
- **`command -v` follows ssh's non-login PATH**, which is narrower than an
interactive shell's, so a binary somewhere unusual is invisible to
discovery. Point `command` at an absolute path.
- **Images need no file transfer.** `attachment_block` base64s an upload into
the stream-json message, and produced images come back the same way.
- **Any other file is told to the session by path** (2026-09-03): a trace, a
log, a zip — things a model cannot be shown and the CLI can read. The
upload is streamed to disk under the session's attachments on this machine,
and the message ends with `Attached file: /abs/path`. For a session on
another machine the upload also copies the file there in the same request,
over one `ssh` invocation, landing in the setup's `attachmentsDir` if set,
else the session's cwd, else the login home. The resolved remote path is
recorded beside the file (`<name>.remote`) and is what the driver names. A
copy that fails fails the upload, so no message ever names a file that is
not there.
### Moving a session to another directory (2026-08-31)
`POST /sessions/{id}/cwd`, from the session settings dialog. A working
directory is settled when the process is spawned, so this records the new one
and **ends** the process in the old one. It does not start a replacement: a
session with no process starts on the next thing said to it or on Start,
which is this app's rule everywhere else.
The path is checked against the session's own machine and **refused** if it
is not there, rather than corrected. The spawn path corrects instead, because
it is resuming a directory the *machine* recorded, which can be gone through
nobody's fault; a path somebody has just typed is different, and a mistyped
one accepted here surfaces much later as a session that will not start.
**Nothing of Claude Code's own is moved.** Measured against CLI 2.1.237:
`claude --resume <id>` finds a session from any working directory. Relocating
the file would mean reproducing a rule this app cannot see the whole of — the
project directory is the path with every non-alphanumeric character replaced
by `-`, truncated at 200 characters with a hash appended, and overridable.
### A message from another agent (measured 2026-08-31)
Measured by sending a real cross-session message to a real stream-json
session on CLI 2.1.237: the CLI emits **no `user` record** for it, and
nothing in the partial-message stream mentions it. The whole of it arrives as
an `origin` object on the turn's `result`, in the same shape the session file
records — so `import::peer_message` reads both and there is one function for
one wire format. Only peer-caused turns carry it.
**The cost is the position, and it is paid on the wire rather than on
screen.** The event cannot be recorded in place: at no earlier point does the
CLI say why the turn started, and the transcript is append-only, so by the
time anyone knows, everything the message caused is already written above it.
Tailing the CLI's own session file instead was rejected and stays rejected —
two sources of truth for one conversation and a poll per live session.
So `PeerMessage` carries a `turnStart`: the seq of the `Status` that opened
the turn, stamped by the pump, which is the only thing that knows a seq and
sees every driver's turns. The phone draws the note at that seq. A status
draws no row, so there is nothing to collide with and the list stays sorted,
which is what the scroll anchor and paging depend on. `turnStart` is absent
where there is nothing to correct — a message replayed by `import` is already
in the right place. The echo driver models both shapes: `/peer` and
`/peer-turn`.
### Taking a queued message back (2026-08-31)
`POST /sessions/{id}/unqueue`, answered by `Driver::unqueue` and recorded as
`Event::MessageDropped` so every device loses the bubble and a reconnect does
not replay it.
The answer has **three** states rather than a yes/no, and that is the whole
design: `Dropped`, `AlreadySent`, and `Unknown`. The Claude driver can only
ever give the middle one — it writes a steer into stdin the instant it
arrives, which is what makes a steer reach the model at the next tool
boundary instead of the end of the turn. What waits in `awaiting` is the
*announcement*, not the message. Holding the write until a boundary would
make the drop real everywhere but costs a steer one model call, which is the
latency the immediate write removed. So the refusal is the honest answer, and
it is reported on the bubble the reader pressed rather than in the screen's
error row a screen away.
`Unknown` is not "we could not find out": a driver that is gone reported
everything it was holding when it closed.
### Session processes outlive the backend (2026-08-29)
A session's process is **left running when the backend stops and adopted
again when it starts.** A rebuild, a service restart or a crash must not end
a turn somebody is waiting on, and a turn can be minutes long. What this
replaced leaked processes either way: `shutdown_all` asked every driver to
stop and then exited immediately, with the SIGKILL escape hatch on a timer
inside the dying runtime, and whatever survived was orphaned with nothing
written down to find it by.
Inside the session directory, beside the transcript:
- `process.json` — the pid, the kernel's **start time** for that pid, and how
much of the output log has been read. The start time is what makes the pid
an identity: pids are reused, and adopting a stranger's would mean never
resuming the real conversation and signalling something unrelated.
- `stdin.fifo` — opened **read-write** and inherited by the process, so it is
its own last writer and never reads EOF when the server goes away. Closing
stdin therefore stops being the graceful-exit signal; ending a process is a
signal, and only `Driver::stop` sends one.
- `stdout.log` / `stderr.log` — plain appended files, read from a byte
offset. A fifo would fill its 64 KB buffer and block the process while
nothing drained it, stalling the very turn this exists to protect.
**Remote sessions are adopted too, and the recorded pid is the `ssh`
client's** — the process the backend owns, which lives exactly as long as the
remote command does. The far `claude` always has an sshd pipe on stdin
whichever version started it, since the fifo is on the backend's side, so a
remote session's stdin says nothing about which server started it.
**A zombie is dead.** `/proc/<pid>/stat` keeps the entry, with the same pid
and start time, until the exit status is collected — so a finished process
answered "still there" for as long as nothing reaped it, and `Alive` is the
word that makes `Exited` unsayable. `process::stat_of` reads the state field
alongside the start time.
### Stopping and starting a session's process (2026-08-30)
`POST /sessions/{id}/stop` and `/start`: end the process without ending the
session, and start it again on the same conversation. Three decisions worth
not undoing:
- **Stop signals the recorded process and says nothing else.** It does not go
through the driver and does not announce `Exited`. The record is the
session's rather than any dialect's, so this works for a session whose
driver is in no state to be asked, and the driver's own reader already
reports the death correctly. Announcing it here would be a guess arriving
ahead of the measurement, and wrong for the grace period.
- **Start replaces the driver and nothing else.** The transcript, the event
pump and every open SSE stream stay where they were, so starting again is
not a reconnect for anybody watching, and there is still exactly one writer
of the transcript. `LiveSession` and `Commands` share one
`Mutex<Arc<dyn Driver>>` rather than each holding a copy.
- **Start is refused unless the session is *known* to have exited.**
`Unknown` means nobody could find out, and starting on that is exactly the
two-CLIs-on-one-conversation fault `session::process` exists to prevent.
**`Exited` is a claim about a process, and the record is what settles it.**
It is the one status that draws the phone's Start button and lets
`start_session` build a driver, so it is checked against `session::process`
before it is believed (`corrected`, called in `launch` and `start_session`).
A record not known to be dead makes it false and the session reports
`Unknown` instead. Every other status is left alone — those are the pump's,
written from what the process itself said. Without this, a session adopted at
a backend start kept the transcript's `Exited` while its CLI ran, Start was
accepted every press, and each press attached *another* reader to one
process: one reply drawn interleaved several times over
(`GotGotGot it — it — it —`). **A driver that `start_session` replaces gets
`Driver::detach`**, because swapping the `Arc` does not end the tasks the old
one is running.
**Who says so matters as much as what is said.** A status written into the
manager's view alone is two screens disagreeing — the list reads the
manager's status and the session screen replays the transcript, which showed
up as a stop button turning into a play button a moment after the screen
opened. So **a driver announces the state it starts in, through the event
sink.** It says `Idle` only when it *started* a process; adopting says
nothing, because a process already running may be mid-turn and the
transcript's last word is the better answer until its output says otherwise.
**A message or a command starts the process if there isn't one.** Refusing
was work handed back: read the status word, find the other button, press it,
type the thing again. `--resume` puts the new process on the same
conversation, so nothing about what was typed changes. A rename is included
for a sharper reason: Claude Code keeps its own copy of the name, that copy
is what its session picker and other agents' session lists show, and a
session is only ever *given* a name at birth since every later start is a
`--resume` — so a rename reaching no process would leave the two lists
disagreeing permanently. Its save happens before the telling, so a failure
there says the telling failed rather than the rename.
`start_if_exited` is one function under one write lock, which is what stops
two requests arriving together from starting two CLIs. Its callers want
opposite answers: "there is already a process" is a refusal worth showing to
somebody who pressed Start, and nothing at all to a message. Only `Exited`
starts anything — `Unknown` has a process that may well be reading its fifo.
`run_command` judges against what `start_if_exited` returned rather than
re-reading a status the pump may not have caught up with.
On the phone this is one button in the composer, left of Send, whose mark and
colour say what pressing it would do now: an orange pause while a turn runs
(interrupt — the process stays), a red stop when it is not (end the process),
a green play when it has exited. One button rather than three that come and
go, so its presence is never the signal. It is disabled while its own request
is in flight, as a courtesy; the server refuses the second request either way.
### A backend start adopts, and starts nothing (2026-08-30)
`SessionManager::new` takes charge of the processes still running and
**leaves every other session exactly as it found it** — listed, with its
transcript, its pump and its SSE stream, and no driver until somebody asks
for one. It used to launch a driver for every session in the config, and
`ClaudeDriver::launch` starts a process when there is none to adopt, so a
session somebody had deliberately stopped came back at the next rebuild, and
the `Idle` the new driver announced stamped it as active at the moment of the
restart. On the phone that read as *every* session idle and "just now", with
the list sorted by that time in an order that meant nothing.
- **`Launching` is the parameter that says which it is**, and an import's
seed rides on the asked-for variant, because a restart re-seeding a
transcript would write the imported conversation into it twice.
- **A session with no process has no driver.** `DriverCell` is an option
rather than a driver whose requests go nowhere, so "nothing is running
this" is a state the code can be asked about instead of one it discovers by
sending into a dead fifo. `LiveSession::ask` answers it with an
`Event::Error` naming what could not happen — a request nobody can carry
out is reported, never swallowed.
- **A launch never moves a session's clock.** A status a launch has to
correct is written at the time of the last thing the session actually did,
not at `now()`. Taking charge of nothing, every word but `Exited` is
disproved at once — a backend killed mid-turn leaves a transcript saying
`Running`, which draws a stop button for a turn that ended hours ago — but
stamping the correction with `now` is the same lie in the same field that
`Transcript::last_activity` exists to prevent.
- **A session that has never done anything reports when it was created.** Its
transcript is empty, since a driver announcing the state it starts in is
not news, so it is the one session with no line to read a time off. Not the
file's mtime, which is a worse answer for a checkout that can be copied;
`SessionConfig::created` is recorded rather than inferred.
### Sessions spawned while testing clean themselves up (2026-08-30)
`--throwaway-sessions`, **on by default in a debug build**. Every session
such a server spawns is marked `throwaway` in the config, and a marked
session's process is stopped when the server exits or is signalled.
Leaving processes running is right for the sessions somebody is using and
exactly wrong for the ones a test made: those leave a `claude` behind that
every later server adopts, they cost tokens if anything speaks to them, and
nothing says they are there — twelve accumulated on this machine in a day.
- **The flag marks; the mark decides.** What a server was told at startup
governs only the sessions it spawns, and the mark is written into the
session, so it outlives that server. A session spawned deliberately keeps
running whichever server is up when one exits, and a throwaway one is
cleaned away even by a server started without the flag. The alternative —
the exiting server stopping whatever it has marked in memory — makes
cleanup depend on which process is up.
- **Stopping is not asking.** `process::stop` leaves its SIGKILL on a tokio
timer, which a shutting-down runtime never runs; that is precisely how the
original `shutdown_all` leaked. The exit path waits with
`process::wait_gone` — one deadline for all of them, since they were
signalled together — and kills whatever is left.
### Importing refuses a session that is already open (2026-08-29)
Claude Code keeps a descriptor per live session at
`~/.claude/sessions/<pid>.json` carrying the `sessionId` and a `procStart`
the same pid-plus-start-time identity used above. So "is this session open
right now" is a **measurement**, and the import list reports it as `no` /
`yes` / `unknown`. Three answers because a machine that keeps no such record
cannot answer, and "could not check" is not "nobody is using it".
`yes` is refused. On 2026-08-29 an agent imported the session it was itself
running in: two `claude --resume` processes on one file, the whole 65 MB
conversation with 154 embedded screenshots duplicated into it under a new
prompt id, and the adopted copy billed for re-reading all of it. It ended at
the account's session limit.
**Importing and deleting run on the server, and a batch is handed over in one
call.** `POST /setups/{id}/importable/{delete,import}` each take a list of
ids, answer 202, and do the work in spawned tasks — the phone that asked is
free to leave, and used to cancel its own batch by doing so. A list rather
than a route per session because one request per row made a handover only as
atomic as the network, and a row nobody asked for looks exactly like a row
nobody picked. Only the *registering* is atomic; the work settles per row,
since six deletes that all roll back together is not something a filesystem
offers.
What replaces the reply is `session::pending`: every row carries `pending`
and `error`, and `/importable/events` streams the changes. **Both, not
either** — the stream is a broadcast with no memory, so an operation that
starts and finishes while it is still connecting is one nothing will ever be
said about, which left a row marked "waiting" for ever. A single tap still
waits, because "continue this and take me to it" needs the session it made
and 202 does not carry one; the batch and the tap share `spawn` so the two
cannot drift about what importing means.
An imported session **keeps itself level with the CLI's file**, so work done
at a terminal appears without anyone pressing anything. Which lines came from
*here* is answered by counting the events this session has recorded, **not**
by looking at its status — a turn that starts and finishes between two polls
reads as idle at both, and its own output gets replayed on top of itself.
That bug was visible on screen as `donedone`.
### Usage limits (Claude)
Poll `https://api.anthropic.com/api/oauth/usage` — the endpoint behind Claude
Code's `/usage` — with the OAuth token from `~/.claude/.credentials.json`,
headers `anthropic-beta: oauth-2025-04-20` and `User-Agent:
claude-code/<version>` (without the User-Agent it lands in an aggressively
rate-limited bucket). Poll at ≥180 s, only while a Claude session exists or
the usage screen is open, and cache the last answer. It is undocumented, so
`usage.rs` treats every field as optional and degrades rather than erroring.
**Per provider, not per machine (2026-09-04).** A machine is not what is
metered; the provider a session runs is. One machine offers echo, the Claude
CLI and a local model side by side, and only the second spends anything — so
pairing a session with a snapshot by machine alone drew the CLI's five-hour
window under every echo session on it, a quota that session cannot spend. A
session now names its meter (`usageProvider`, from
`DriverKind::usage_provider`, which `usage::providers_for` reads too, so the
two lists cannot disagree) and `GET /usage` is matched on machine *and*
provider. `None` is a session that meters nothing, and the phone draws
nothing at all for it — not a zero, and not "unknown".
The session's usage dialog applies the same machine-and-provider match and
shows every billing pool for that provider; it does not turn opening one
session into a comparison with the other providers on that machine.
For a provider with several pools, the compact bar selects the pool named by
the session's model (including Luna's `gpt-reserve` name), falling back to the
provider's generic pool, and shows the shortest cycle that pool actually
reports. A weekly-only pool therefore gets a weekly bar; it is never relabeled
as five-hour merely because the provider called it `primary`.
`DriverKind::Echo` names a meter of its own that exists only when a test has
asked for one: `/usage` in an echo session sets an invented answer
(`usage::Fixture`), and with none set there is no snapshot and no bar. That
is what makes those screens' states reachable — a number near the top, a
window between blocks with no reset time, a machine nobody logged into, one
that could not be reached — without spending real quota to arrange them,
which is why none of them had ever been looked at.
**Per machine, not per backend (2026-08-29).** The credential store that
matters is the one on the machine the session runs on, because that is the
account being billed — and in the layout this aims at, `ai-server` is on the
host, the host has no `claude`, and the CLI machine is a remote. So
credentials are read through the session `Transport` (`$HOME` expanded by the
far shell, because a path built locally is the wrong home), one snapshot per
setup that offers Claude. The HTTP call stays on the backend, so the far end
needs nothing but a shell.
The snapshot says which of four things happened rather than carrying a flag
and a message: `ok`, `notLoggedIn`, `unreachable`, `failed`. `notLoggedIn` is
the one that matters — a machine nobody put an account on is working as
configured, and collapsing it into an error string made a healthy setup read
as broken. A machine with no Claude provider is not asked at all.
**The five-hour window has no reset time between blocks, and that is not a
missing value.** Measured 2026-08-31: the API anchors the window to the block
it started in, and when no block is running there is nothing to reset, so
`resets_at` is `null`. The weekly windows always have one because a week is
always running. So absent means **not running**, and only a timestamp that
arrives and cannot be parsed is unknown. `WindowEnd` in `ResetCountdown.kt`
is the one rule both readers go through.
### Auto-resume (2026-09-05)
**A session may pick itself back up when the account's usage limit lifts.**
Off unless somebody switched that session to it, because it spends quota the
moment quota exists and does so with nobody looking — that is not a thing a
default may decide. It sends one message, `continue` unless another was
typed, and then it is done; there is no retry loop around the conversation
itself.
**Running out of quota is a state, not an error.** `Event::LimitReached`
carries the dialect's reset time where it gave one, and recognising it
belongs to the driver — the Claude CLI ends the turn with `is_error` and
`Claude AI usage limit reached|1788546972`, and nothing above the driver
matches on a string. **Two detectors, since 2026-09-06**: that sentence, and
the CLI's own `rate_limit_event` lines, whose `rate_limit_info.status` says
where the account stands and whose `resetsAt` is the same hint. One detector
was a single point of failure for a feature whose whole job runs unattended
— if the wording or the shape of a failed turn ever changes, nothing is
scheduled and the session simply never comes back, with nothing on screen
saying why. Only the change *into* being refused is reported, and only a
status that is not an `allowed…` word counts as refused: an unfamiliar word
is read as out of quota and logged, because the cost of being wrong that way
is one extra question to the meter, and the cost the other way is the
feature silently not existing. The transcript draws it as a divider, like a clear or a
compaction: what a reader scrolling back wants from it is why the
conversation stops at that line.
**The schedule is a plan to ask, never a plan to send.** Every reset time
available here is untrustworthy in the direction that matters: the dialect's
is written when the turn fails, and the endpoint's moves when the window
does. So the wait ends in a question to `usage.rs`, and only `ok` with no
window at 100% sends anything. A window still spent reschedules to *its own*
reset time — which is what makes a limit that lifts later than promised wait
longer, and one that lifts sooner resume sooner. A meter that cannot be
asked at all is a longer wait too, never a send: "we could not find out"
must not be able to produce the same action as "there is room".
Bounded, because something has to be: a day after the limit was hit the wait
stops and says so in the session's own transcript. A machine that can never
be asked would otherwise be retried for ever with nothing on screen saying
so.
The schedule is persisted on the session (`resume: Some(ScheduledResume)`),
not held in memory: a five-hour window routinely outlasts a backend restart,
and a wait forgotten across one is a session that silently never comes back.
`resume.rs` is the top layer — it holds the manager and the monitor and
neither holds it — which is what lets the decision be a pure function of a
snapshot and a clock. The pump reports limits downward on a broadcast, for
the reason `Shared` exists: the pump runs underneath the manager.
**Exercised with echo, never with a real account.** `/limit [minutes]` in an
echo session reports the same event a real driver does, and `/usage` sets
what the meter answers — deliberately two commands, because the two
disagreeing is the state the whole design is about. The loop was driven end
to end that way on 2026-09-05: the wait moved from the dialect's two minutes
to the meter's seven when the meter changed its mind, and the message went
out on the first check after the meter came back under the limit.
### Two turns must never be drawn as one (2026-09-06)
A turn can start with nothing recorded in front of it — a subagent reporting
back, a peer message the CLI only owns up to at the end, a conversation the CLI
picks up by itself. The phone's fold grew the last reply rather than starting a
new one, so two answers were drawn as one paragraph, running together
mid-sentence with not even a space between them.
**The fold refuses to grow a *settled* reply**, so a turn boundary is always a
message boundary whatever caused it; `joinPages` carries the same rule across a
page boundary. Where two replies then abut, the fold puts a `TurnBreak` between
them: a hairline rule, no words, no colour. It is made by the fold rather than
sent by the server because it is not something that happened — it is the
boundary between two things that did.
**Nothing else about a background task gets a row of its own.** That was tried
and was wrong: a row per finished subagent is a screenful of dividers about work
the reader was not asking after, and one of them turned out to be a whole shell
command drawn as centred prose, because its words came from somewhere with no
reason to keep them short. The parent's transcript gets a row for a message a
subagent genuinely *sends* it, which arrives by the peer path and already has
one.
**The report goes to whichever record is the only one of it**, and the two cases
are different places. A subagent has a transcript of its own, and its closing
words are that transcript's last line. A backgrounded *command* has none: its
own tool card is the only record of it anywhere, and until the notification
arrives that card is showing the launch result, which says the command is
running. So the card is updated (`Event::ToolUpdate` against the call's own id)
rather than left making a claim nothing will ever correct — including for the
endings that carry no summary, which are exactly the ones that went wrong and
the ones a stale "running in background" reads worst on.
What the notification is still used for is the status: it is what closes a task
in `Status::Waiting`'s bookkeeping. Handled once, however many of the two
lifecycle shapes (`task_notification`, `task_updated`) arrive — whichever gets
there first is the one that finds the task open, in the translator's own
`open_tasks` or, failing that, in the registry. That second lookup is what makes
an **adopted** session work: a backend restart picks a session's stdout back up
from a recorded offset, so the `task_started` lines for anything already running
are behind it and the translator never sees them. `Subagents::any_open` covers
those, and `open_tasks` covers the backgrounded command, which has no subagent
to be found in the registry at all. Both are needed and neither subsumes the
other.
### A transcript outlives this enum (2026-09-06)
**The set of event kinds a transcript can hold only ever grows.** It is
append-only and permanent, so what this build *writes* is not what it may have
to *read*: a line can come from a newer server, or from an older one that wrote
a kind since dropped.
That was learned the expensive way. `Event::TaskNote` was added and removed
again within hours, and every transcript that had recorded one became
unreadable — `Transcript::open` parses every line, so `launch` failed for those
sessions and `SessionManager::new` skipped them. On the phone that is a session
with no status, no history and nothing sendable: one unfamiliar word took down
every live conversation it appeared in.
Two rules now. `Indexed::parse_at` degrades a line it cannot make sense of to
`Event::Unreadable { kind }` rather than failing the file, keeping its seq —
which is what the cursors, the bisection and the next-seq counter are all
addressed by — and carrying the word the line called itself, so the reader is
told what they are missing rather than that something is. The seq is still
required: a line that cannot say where it sits is not one this file can hold,
and dropping it silently would hand out a seq the file already contains.
And a variant is **retired, not deleted**: kept deserializable, never
constructed, with the date and the reason on it. `Event::TaskNote` is the
example, and the phone folds it to no row — which is the point, since an
unreadable line correctly draws a placeholder and one per background task is
the wall the row was removed for.
### A limit a subagent hits is the session's (2026-09-06)
A background Task runs on long after its parent's turn ended, so **the account
running out while the main agent is idle is the ordinary shape of the problem
rather than an edge of it.** `translate_child` used to record everything a
subagent produced into the subagent's own transcript and return nothing, which
meant `Event::LimitReached` never reached the session — and the session is the
only thing `resume.rs` can schedule against. That session then waited for a
person for ever, with nothing anywhere saying so. The limit is hoisted now: it
goes into the subagent's transcript, where it happened, *and* out to the
session, which is what auto-resume needs.
### Subagents (2026-09-05)
**A subagent is a second transcript owned by a session, in the same event
model, with no process and no controls of its own.** Full design and wire
shape in `SUBAGENTS.md`, kept separate because the app half is being built
against it in parallel and it is the shared contract between the two. The
one-paragraph reason: a session's Task-tool helpers already speak the common
event model on the parent's own stdout (each line carrying
`parent_tool_use_id`), so giving each one its own small transcript — same
file format, same paging routes, same SSE stream, reused by addressing rather
than by copying — costs a routing step in the translator and a registry
(`session/subagent.rs`) rather than a second session type with a driver, a
process and a config entry it does not need.
### HTTP surface
**`routes.rs`'s module doc comment is the table.** REST for actions, one SSE
stream per open session screen for events, all over the pinned TLS listener.
SSE rather than WebSocket because resume-by-cursor (`Last-Event-ID` =
transcript seq) is native to it and the inbound direction is plain POSTs.
Sessions live in `config.ron` (`$XDG_CONFIG_HOME/ai-app/`) plus a per-session
directory under `$XDG_DATA_HOME/ai-app/sessions/` (transcript, attachments,
produced images, process record), owner-only. Deleting a session is the
complete path out of everything spawning one created.
Claude Code and Codex also keep their own durable transcript. The delete
dialog names that owner and can remove its copy too: Claude files are resolved
under `~/.claude/projects`, while a Codex thread id resolves only the matching
rollout under `~/.codex/sessions`. The provider-owned copy is deleted first, so
a remote-machine failure leaves the app session intact rather than reporting a
half-delete as success.
**Every request body refuses fields it does not know**
(`serde(deny_unknown_fields)`). A caller that misspells `permissionMode` got
a 200 and a session in the default mode, which is indistinguishable from
success at the place they are looking. Query strings are deliberately
permissive.
**A phone that falls behind is answered with `reset`.** Past
`CATCH_UP_LIMIT` the stream sends a `reset` frame and the newest window, and
the client rebuilds from it exactly as it does when the screen opens. Not
optional: without it the window is spliced onto rows no longer adjacent to
it, which reads as ordinary output. The stream used to replay everything
after the client's cursor, unbounded, while *opening* a session was bounded
to a page — so a long disconnect delivered thousands of events one frame at a
time.
### The file explorer (2026-09-03)
**`EXPLORER.md` holds this design.** The one-line version: a machine's
filesystem, seen from the phone through the backend, keyed on the **setup**
rather than on a session (a session only says where to start), with every
operation one fixed shell script run through `Transport` so the local and the
ssh case are one implementation.
### Security
- **TLS with a self-signed CA, pinned in the app.** Generated in process on
first start into `$XDG_CONFIG_HOME/ai-app/certs`, so one place decides the
extensions, the file modes and which addresses the leaf covers — every
local IPv4 plus loopback and the emulator's host alias, so nobody maintains
a hardcoded IP. The CA is created once and left alone; the leaf is reissued
every start, so covering a new address is a restart. **Regenerating the CA
strands the installed app** — the one-way door.
- Unlike dev-updater, the pinned CA is **not a constant in the source**:
the build reads `$XDG_CONFIG_HOME/ai-app/certs/ca.pem` from the machine
doing the build and generates the constant (`generatePinnedCert` in
`app/androidApp/build.gradle.kts`; `AI_APP_CA` overrides). That does
three things at once — the trust anchor follows the build machine, so an
APK built in the dev VM is only good for its emulator; there is no second
anchor to add for development and forget to remove; and regenerating a CA
needs a rebuild rather than a paste, so a stale constant cannot quietly
disagree with the server.
- **The dev VM is untrusted** (2026-08-25): not malicious, but it could
become so. The repo is a read-write mount shared between the VM and the
backend host, so everything in it — source, binaries, and the shell scripts
the host runs — is attacker-writable.
- **Nothing secret lives in the repo.** A CA private key the VM could read
would let it mint a leaf the pinned app accepts, which is precisely the
attack pinning exists to stop. Transcripts move for a plainer reason:
they are whole conversations.
- **The host should not execute what the VM can write** — build and run the
backend from a host-only checkout rather than the shared mount. Moving
the keys closes the smaller door; this is the larger one.
- Accepted: a compromised VM can return anything it likes from the sessions
it runs, since running an agent there is the point. The blast radius is
that session's content, not the backend.
- **This server's API *is* remote code execution** (spawn a
bypass-permissions Claude on any ssh host). Pinning authenticates the
server to the phone but not the phone to the server, so a bearer token adds
the other direction. The token gates LAN-reachable RCE; it cannot defend a
compromised backend host or phone — those are inside the trust boundary,
and a compromised phone is handled by rotation.
- **No route accepts a command.** Listing, reading and writing files are
fixed scripts in `files.rs`; the phone chooses only the path and the
bytes. Provider discovery asks the machine rather than taking a command.
- **The explorer's routes take a path, and that is deliberate**
(EXPLORER.md's decision 3). Elsewhere the phone picks an **id** and the
server resolves which file it names, so an enrolled token cannot become
"read me an arbitrary file" — the import listing is written that way. The
explorer is different because the path is the whole feature, and it
grants nothing new: the same token already spawns a bypass-permissions
agent in any directory on any machine a setup names. The import rule
stands where it is, because there a path was unnecessary.
- **Generation**: 256 bits from the OS CSPRNG, base64url. A machine
credential, never typed twice, so at this entropy no stretching is needed.
- **Enrollment**: printed once as a terminal QR code encoding
`aiapp://enroll?host=…&port=…&token=…`. The CA is embedded in the APK, so
the QR carries no trust material — photographing the terminal leaks only
the token, never a way to weaken pinning. The app registers an intent
filter for the scheme, and the Settings screen also scans in-app via
`zxing-android-embedded`, because not every phone's stock camera
redirects a scanned URI to an app reliably.
- **Storage**: the server keeps only the SHA-256 in `config.ron`; a plain
hash is enough for high-entropy random input. No "show token again" —
lost means rotate. The phone seals it with an Android Keystore AES-GCM
key (`ServerConfig.kt`; Jetpack's EncryptedSharedPreferences is deprecated
with no drop-in successor and Google's guidance is now "use Keystore
directly").
- **Transport**: `Authorization: Bearer` on every request including the SSE
GET, never a query parameter, since URLs leak into logs. The tracing layer
must not log the header — covered by a test, so a logging change cannot
silently start leaking it.
- **Verification**: one middleware wrapping the entire router, never
per-route, so a new route cannot forget auth. Zero unauthenticated
endpoints, `/health` included. Hash-then-constant-time-compare
(`subtle`); failures logged with peer address plus a small fixed delay —
not against brute force, but so scanners show up in the log.
- **Rotation (the path out)**: `--rotate-token` regenerates, invalidates
the old hash, reprints the QR. Config stores a *list* of `{name, hash}`,
so per-device revocation is a config entry later, not a migration.
- **Why not mTLS**: stronger in theory, but given pinning the delta is only
"someone reads the token off a device already inside the trust boundary",
and it costs Android client-cert provisioning and a worse new-phone
story. Revisit if this outgrows single-user-on-LAN.
- **Off-network access: plain WireGuard** (2026-08-24, no third party). The
backend binds `wg0` only; the phone runs the official WireGuard app,
enrolled by scanning its config as a terminal QR. The only internet-visible
thing is one forwarded UDP port silent to unauthenticated packets, so the
pre-auth surface is reachable only from enrolled peers and the token becomes
defence in depth rather than the sole gate. Addressing stays single-path:
the phone reaches the backend at its WireGuard address from everywhere.
- Accepted operationally: the endpoint is a DDNS name, since the home IP is
not guaranteed static. The WireGuard app resolves it when the tunnel comes
up and does not re-resolve, so a rare IP change is fixed by toggling the
tunnel once DDNS catches up. The symptom is obvious and lossless — the SSE
cursor design replays whatever was missed.
- Rejected: **Tailscale** and **Headscale**, which add a coordination
service this setup does not need at two or three devices; **forwarding
the HTTPS port directly**, which puts every internet scanner one pre-auth
bug away from RCE on a machine holding SSH keys.
- The server refuses to start without TLS, so the token cannot travel
unencrypted by misconfiguration, and binding fails closed — refusing to
start if `wg0` is absent rather than falling back to 0.0.0.0.
`--bind <ip>` is an *explicit, logged* override for development, a
deliberate flag and never a fallback.
## App (`app/`)
Kotlin + Compose Multiplatform, single `:androidApp` module, same versions as
dev-updater (Kotlin 2.4.x, CMP 1.11.x, JDK 21).
1. **Session list** — kind icon, title, setup, model, status, last activity.
Sessions awaiting an answer sort to the top: the "your turn" inbox.
2. **Import** — Claude Code sessions the machine already has, selected in
batches (hold to enter, tap to add), with Delete and Import along the
bottom. Submitting clears the selection immediately and marks every chosen
row, so the bar goes away and the affected set is what says the work is
happening. Rows are taken out as each one lands rather than all at the
end: a finished row still sitting there looks exactly like one that has
not been imported, and tapping it starts a second CLI on the same
transcript. That makes rows below slide up under the reader's finger, so a
row that has just moved ignores taps for `SETTLE_MS`.
3. **Models** and **Setups** — browsing and downloading GGUFs; adding,
renaming, re-probing and removing machines.
4. **Session screen** — the core:
- The transcript rendered from the event stream: markdown, inline images,
tool cards, question cards.
- **Anything that is a note *about* the conversation rather than a turn in
it is closed by default** — a tool call, a peer message, a memory note.
Open-ness is the screen's, never the card's: a card that remembered for
itself forgets the moment the lazy list stops composing it, so a note
opened and scrolled past would shut behind the reader.
- **An answered question keeps its options and marks the one taken**, in
the same purple that says "picked" while it is open — it does not
collapse into a line repeating the answer. The options are what the
question *was*, and "Deny" alone does not say Allow was the alternative.
One rule in two places (`AskedQuestion` and `PermissionAsk`). An answer
typed into **Other** matches no option, so that one is still written out.
- **Expanding a row keeps still the end nearest the tap**: touch a row's
upper half and its top edge holds, so it opens downwards; touch its
lower half and the bottom edge holds, as the list does by default. Which
half, rather than which control, so everything that opens behaves alike
whether or not it has a control at each end. The transcript is laid out
from the bottom, so a bottom edge is anchored for free and the top one
has to be arranged: `Modifier.holdTopEdge` asks the list to shift during
the *layout* phase, before anything is drawn. From an effect instead,
the wrong position is drawn once first, which reads as a flick.
- **The full-screen image lives on the screen, not in the row that drew
the thumbnail** (`SessionImageViewer`). A `Read` whose result is an image
is a row of one call until the next call arrives and makes it a group — a
different composable in a different part of the tree, so the old subtree
and its open dialog go. Somebody looking at a screenshot was thrown back
to the transcript because the session made another tool call.
- **All transcript text is selectable, from one `SelectionContainer`
around the whole list.** Not per row: a transcript is one body of text,
so a selection has to run from a reply into the tool output under it —
and a container per row leaves whatever was drawn without one silently
unselectable. An inline code chip is drawn *behind* the text rather than
as the renderer's span background, because a span background is part of
the text's own drawing and hid the selection under it.
- Input bar: text, attach, send — **always enabled**; mid-run sends become
steering messages. A queued message can be tapped to take it back.
- The composer's process button (interrupt / stop / start) as above.
### Markdown
**A reply is drawn as pieces of one parse, never as re-parsed substrings.**
A `Piece` addresses a top-level block of the message's tree, or one item of a
top-level list, and every piece is drawn from the same cached parse. That is
what bounds a lazy-list item without parsing a message more than once, and it
is why a forty-item list of sources is forty units rather than one. Links are
spans with one tap detector per text, not a layout node per link — the cost
that made a list of sources bumpy.
**A table wraps its cells and never cuts one off.** The renderer's defaults
draw every cell at one line with an ellipsis, which on a phone loses most of
a table — and an elided cell looks exactly like a short one. `LinkedTableRow`
gives a cell as many lines as it needs, aligned to the top of the row so a
two-line cell does not re-centre its neighbours. A column narrows to 136dp
and no further, past which the whole table scrolls sideways; 136 because it
is the widest floor that still fits three columns across a phone. Exercise it
with the echo driver's `/table N`, which writes long cells on purpose — a
fixture of tidy one-word values renders fine either way.
### The transcript cache
The backend's transcript is the source of truth, and the app keeps a copy of
what it has already been sent — see **`TRANSCRIPT_CACHE.md`** (2026-09-04),
because reopening a session over the tunnel was re-downloading a conversation
the phone had just read. It is the server's own event lines, per session,
under `cacheDir`; it is checked against the server before a stream is resumed
from it, thrown away rather than patched when that check fails, and **never
load-bearing** — every path that reads it has a network path beside it giving
the same answer. What the app does not keep is anything *derived*: the folded
rows are rebuilt from events every time.
### Notifications: two places, never both (2026-08-30)
`GET /notifications` is one SSE stream of attention-wanting moments, and the
app decides where each one is said. Three outcomes, in one place
(`NotificationService.show`):
- **Nothing at all** if the session is the one on screen. The transcript in
front of the reader is already saying it.
- **A banner over the app** if the app is up — `SessionAlerts`, queued, one
per session replacing that session's own, dismissable by a push in either
direction and otherwise retiring itself when the bar across its foot runs
out.
- **A row in Android's drawer** otherwise, which is what the foreground
service exists for.
Never two of them for one moment. A drawer that fills up behind an app that
showed you each one is a drawer nobody reads. Which of the three applies is
answered without a flag anybody has to keep level: the session on screen is
registered by the one composable that draws one, and "the app is up" *is* the
banner queue being collected, since it collects only while it is on screen.
**What counts as finished** is decided in `notification_for`, and since
2026-08-31 it takes the number of messages the session has been given and not
started reading. With one waiting, a turn ending is not the work ending: a
message written into the tail of a turn is read the moment that turn's
`result` lands, so the session goes idle and immediately runs again — and the
phone that sent it was told its work had finished seconds before any of it
was done. The count is kept in `pump`, the one place that sees every event in
transcript order. It does not suppress *awaiting input*: a question is worth
saying whatever is queued behind it.
Rejected: giving the app its own connection to `/notifications` while it is
in front. That is a second stream per device saying the same thing, and it
puts the "which of these two shows it" decision in two processes' worth of
code instead of one function.
### Deferred polish
Noticed and deliberately not fixed, so they are not re-found from scratch.
- **The session screen's header is lopsided.** The row is
`padding(horizontal = 8.dp)`, so the status on the right sits exactly 8dp
from the edge while "Back" on the left is a `TextButton` whose touch target
is wider than its text. It is the "align the mark, not the box" case:
either align the button's content or size the button to what it draws,
rather than nudging with a hardcoded offset.
## Status
Phases 13 (the skeleton pipe, the full Claude driver, the usage screen) done
2026-08-24. Phase 4 (llama.cpp: model browsing, downloads, and `llama-server`
through its OpenAI-compatible endpoint) and phase 5 (ssh) done 2026-08-28,
except for the remote `llama-server` and its port forward, which landed
2026-09-04. The file explorer and the transcript cache followed in September. What is
left is real-phone/WireGuard bring-up, which is operational rather than code.
Each phase ended runnable and verified against the real thing. The backend
gets tests where logic is pure — event normalization, transcript cursors,
config persistence, the syntax scanner; the app is UI over the API and is
verified by running it, matching dev-updater's posture.
## Open questions and risks
- **The Claude stream-json control protocol** is the least-documented
dependency and is version-coupled to the installed CLI. What works is
pinned in `session/claude.rs`'s module doc against the version it was
measured on.
- **The usage endpoint is undocumented** and has changed rate-limit
behaviour before; treat as best-effort.
- **Compaction for llama sessions is not built.** `LlamaDriver::compact`
refuses. The design when it is built: every response reports prompt and
completion token counts, so track them against `n_ctx` (from `/props`), and
at ~75% summarize all but the last few turns and replace them, keeping the
full pre-compaction transcript on disk so the phone's view never loses
history. llama-server's own `--context-shift` is rejected as the strategy:
it truncates old KV cache entries, which is silent forgetting with no
summary, and it corrupts the harness's view of what the model knows. Fine
as a server-side safety net; not memory management.
- **Remote llama-server** needs its port forwarded (`ssh -L`) and is not
built; such a session is refused rather than misdirected.
- **Claude sessions over ssh need the remote machine logged in to Claude.**
Usage reporting reads each machine's own credentials, so this is visible
rather than silent.
## References
- llama-server API (`/health`, `/props`, OpenAI-compatible endpoints):
https://github.com/ggml-org/llama.cpp/blob/master/tools/server/README.md
- Usage endpoint (`GET https://api.anthropic.com/api/oauth/usage`, bearer
token from `~/.claude/.credentials.json`, headers
`anthropic-beta: oauth-2025-04-20` + `User-Agent: claude-code/<version>`,
≥180 s polling; a wrong User-Agent lands in an aggressive 429 bucket):
https://github.com/anthropics/claude-code/issues/31637
- The sibling project this repo's conventions mirror: `../dev-updater`
(README.md + AGENTS.md — server/registry/routes layout, cert scheme,
testing posture).