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Syplheed-Reborn/tools/re-capture
Sylpheed RE agent 531840b417 re(ui): Q1 -- the interpolation law holds, the group timeline does not
Q1's gate asks whether the ramp is linear. It is, and that result stands:
it rests on the splash's _eff glows, which reproduce exactly. This adds
the part that does not.

The test is a calibration, not a fit. Fix the clock on
palogo_gamearts_eff -- declared 15-unit fade-in 0@15 -> 255@30 against
captured alphas 34,68,102,136,170,204,238, a constant step of 34, giving
t = 2f - 171 -- then check that against the glow's own next landmark: its
declared hold ends t=45, predicted frame 108.0, observed last full-alpha
frame 107. Then apply it to palogo_gamearts in the same bundle and the
same frames, with no free parameter left:

  declared a=232 at t=206 -> frame 188.5, observed alpha 255
  declared a= 32 at t=210 -> frame 190.5, observed alpha 255

The logo is still at full alpha nine frames after it should read 32; its
fade-out runs ~17 frames late; its declared 80-frame fade-in is never
drawn. Not culling -- the same element is submitted down to a=7 on the
way out. Calibration-free version: the declared fade-out spends 12 of 16
units dropping 23/255 of the alpha, and the capture has no such plateau.

Candidate, offered and NOT adopted: if +36 held the NEXT keyframe's time,
the fade-out shape fits (RMS 4.05 vs 12.13, two elements) and the
decoder's "last block's time is unreadable" special case disappears --
the last block would simply have no successor. Rejected for now because
it explains neither the missing fade-in nor the lateness, and because the
_eff elements cannot discriminate between the readings at all (with four
blocks the shift only relabels the phases). Decoder unchanged.

Also withdrawn, mine, within the iteration: "the _eff glows hold a
constant alpha 33". They ramp 34 -> 255 in steps of 34. I printed the
series minimum and read it as its range, with a "14 distinct colours"
column sitting next to it saying otherwise.
2026-08-28 22:56:17 +00:00
..

Runtime-capture harness (sylph-re container)

Screenshot-driven scripts for reading the running retail game's menus under Xenia Canary + lavapipe, headless. They assume the container helpers screenshot, vgamepad, pad are on $PATH and HOME=/sylph-home/re.

Script What it does
skip_intro.sh Boot → main menu, unattended. Taps A only while the intro movie is actually playing (frame-to-frame RMSE), then once at the PRESS Ⓐ BUTTON title. Static logo screens are left alone, so a stray tap can never land on NEW GAME.
wait_title.sh Older variant: wait for the title (green Ⓐ glyph at px 625,618) and tap A. Superseded by skip_intro.sh.
step.sh One Arsenal navigation step (down/up/next/prev/none) + a compact capture: weapon list stacked over the DATA SHEET.
sweep.sh Walk a whole weapon-type list, capturing only rows that show a DATA SHEET — locked rows (a "Conditions to Develop" panel) are detected by the brightness of the Range Class label box and skipped.
type.sh Change weapon-type tab N times (RB) and report the header strip.
hp.sh / cyc.sh Hangar hard-point carousel: cyc.sh steps it (d-pad down, not left/right) and captures the Name + DATA SHEET.

Input timing under lavapipe: the game polls input at its own low frame rate, so a 60 ms d-pad tap is dropped roughly half the time. 200 ms is reliable; 300 ms starts to auto-repeat (two rows per press).

Findings produced with these: docs/re/weapon-datasheet-runtime.md.

Guest-memory tools (no screenshots)

Script What it does
gmem.py Read the live guest address space out of /dev/shm/xenia_memory_* (Xenia's backing file), addressed by guest VA. find / read / words.
weapon_runtime.py Solve the Weapon/Shell struct layouts against the disc records and read the fields the disc defaults.
unit_discover.py Find which runtime class carries a set of ID strings, assuming no vtable: tallies the word at pointer_site - k across distinct IDs.
unit_runtime.py Same solver for the unit\UN_*.tbl definition objects (vtable 0x820af844). Unions several snapshots — unit definitions are per-stage.
schema_order.py Merge a sub-record's field-declaration order across all tables (topological sort); the layout check that pins fields no table ever values.
order_check.py Test offset = base + 4*index for one table's sub-record against solver output.
grab_tutorial.sh Cold-boot Canary, walk to the Nth TUTORIAL entry, wait for the stage load, snapshot guest RAM. One emulator per capture — backing out of a loaded mission wedges it.

Snapshot first — cp --sparse=always /dev/shm/xenia_memory_* snap.bin (~2 s) — and point $GMEM_FILE at the copy; the running emulator pegs every core under lavapipe.

🔴 pgrep -f / pkill -f match YOUR OWN shell

An agent driving this toolkit runs its commands through a wrapper shell whose command line contains the pattern being searched for. So

pgrep -f 'pilot\.py'        # matches the wrapper running this very command
pkill -f 'fly_session|pilot\.py'   # kills that wrapper — the script dies mid-way

This has cost four separate mistakes in one session: two scripts killed mid-execution, and twice a "is it already running?" guard that answered yes because it had found itself. The [p]ilot bracket trick does not help when the literal invocation (python3 pilot.py …) also appears on the wrapper's command line.

What works:

pgrep -x xenia_canary                       # exact NAME match, no -f
ps -eo pid,args | grep 'python3 pilot.py' | grep -v snapshot-bash
kill -9 <explicit pid>                      # look it up first, then kill by pid

The snapshot-bash filter is the reliable tell: the wrapper's command line always contains the shell-snapshot path.

🔴 The emulator does not survive the end of an agent turn

/work/.claude/settings.json defines a Stop hook that kill -9s every xenia_canary when a turn ends, printing "Stop hook killed N stale xenia process(es)".

So:

  • never launch a run intending to read it in a later turn — it will be dead;
  • an experiment has to produce its evidence within the turn that starts it;
  • prefer measurements that land in the first minutes of flight. REMAINING OB steps 4 → 8 → 12 inside the first few minutes, which is why a two-pass differential works in one turn while a 25-minute freeze watch does not.

This cost three iterations of investigating a "mysterious external SIGKILL", complete with cgroup and host memory forensics, before the hook was found. When a process dies at a session boundary, check the harness first.