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Syplheed-Reborn/docs/re/structures/isl-builtins.md
Sylpheed RE agent ac4f53b8a1 re: interpreter command table recovered; withdraw my 'constructors' reading
sub_822FE040 is a fully unrolled registration: 1023 slots filled with a default,
then 57 explicit writes, of which 48 are real handlers and nine are a shared
accept-and-discard stub. Return convention is nonzero = consumed, 0 = retry,
which is how the interpreter waits for a named unit to exist.

Opcode 995 is the ONLY handler touching the phase mirror [*(0x828F35F8)+236] --
the sole read and sole write in the table -- independently confirming why polling
that mirror saw nothing during phase 1. And no handler spawns or despawns a unit:
256 is the strongest deploy candidate but is unconfirmed because the message ids
are write-only in this image.

WITHDRAWN, verified wrong: I had recorded the writes to '+20' in sub_8226E7D8 /
sub_8226E930 as block initialisations by container constructors. At
0x8226E86C-0x8226E8E0 they do li r3,28 / bl 0x8230C160 then
lis r10,0xAB03 / ori r7,r10,0xE4BA / stw r7,4(r3): they build an INTERPRETER
COMMAND RECORD for opcode 996 and push it, i.e. AddSelector and RemoveSelector,
with a 32-entry cap. The stw to 20(r3) is the command record's +20, a different
object. Wrong twice: not constructors, and not that container.

Also flags that sub_8230C398 -- gated on *(0x82899CE0) == 16 at both call sites
-- looks like Stage 16's script compiled in C++, which 'debug defaults' does not
survive given the .ssb loader explicitly refuses mission 16.
2026-08-25 20:17:30 +00:00

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# The 147 ISL built-ins
Status: ✅ table encoding, calling convention and the `ScriptPhase` state layout;
✅ ~135 of 147 handlers characterised from the disassembly; 🟡 three resolved
only partially; ❔ the interpreter-command table is only partly recovered.
Companion to [isl-bytecode](isl-bytecode.md) (the instruction encoding) and
[mission-phase-advance](../mission-phase-advance.md) (why phases hinge on these).
## ✅ Table and calling convention
`0x8227226C … 0x822724B7` is **147 big-endian absolute VAs** — no base-relative
offsets. Verified structurally: the table starts immediately after the `bctr` at
`0x82272268`, `0x8227226C + 147·4 = 0x822724B8` is exactly where the first
handler begins, and every target lies inside `sub_82272220`.
Six ids are **unused defaults** (0, 0x410x44, 0x7A) and about ten more are
deliberate stubs returning a constant.
Arguments do **not** live in the instruction. Every handler starts
`addi r3,r31,20 ; bl 0x82454A40``std::string::c_str()` — so `[phase+20]` is a
**packed operand blob**, which is what the `local[]` staging in
[isl-bytecode](isl-bytecode.md) fills.
Return codes: **0** continue, **2** yield (re-execute next frame), **3**
coroutine control. Five built-ins skip the pc advance on 2 and so genuinely
**block**: 97, 120, 137, 142, 143.
## ✅ `ScriptPhase` state layout
| offset | meaning |
|---|---|
| `+88` | **32-entry float register file** |
| `+120` | **32-entry flag register file** |
| `+160` | frame-wait counter |
| `+164` / `+176` | **int** / **double result register** |
| `+196` | phase-finished flag |
| `+232` / `+236` | code base / end-event offset |
| `+244` | **symbol table 1** base (route + message names) |
| `+272` | trigger queue |
| `+300` | 1 = not last phase, 2 = last |
| `+304…+320` | mission timer (elapsed, t0, limit, running, enabled) |
| `+324` | **runtime unit array**, indexed by **symbol table 2** index |
Per-unit record: `+4` live object (NULL = absent), `+16` state (2 = active;
1/3/4 = gone/dead/invalid), `+32/40/48` position, `+128/132` HP / max HP,
`+140` flag bitmask.
**That is the hook into the data**: blob fields indexing `[phase+244]` are
symtab-1 indices and fields indexing `[phase+324]` are symtab-2 indices — the
two tables already parsed in [mission-script-ssb](mission-script-ssb.md).
## ✅ The conditions a phase can test
| id | name | what it tests |
|---|---|---|
| **6 / 62** | `END_PHASE` / `FORCE_END_PHASE` | sets `[+196]`, with / without the end event |
| **39 / 40** | `MARK_LAST_PHASE` / `mark_not_last` | `[+300] = 2` / `1` |
| **69 / 70** | `unit_state` / `unit_alive` | a **named unit's** lifecycle state; state == 2 |
| **20 / 95** | `hp_pct_test` / `unit_hp_pct` | unit HP as a percentage of max |
| **18** | `dist_lt` | 3-D distance between two named units below a threshold |
| **24 / 72** | `squad_survival_pct` / `group_ratio_pct` | current ÷ initial squadron members × 100 |
| **56 / 94** | `unit_relation` / `is_engaged` | relation between units; is anything engaging this one |
| **33 / 34** | `global_counter0/1` | two global counters read straight into `[+164]` |
| **132134** | player gauges | speed/boost ratios and a player byte |
| **73, 123127** | timer family | start / resume / stop / reset / read elapsed / read limit |
| **8 / 9 / 93** | `set_flag` / `read_freg` / `clear_flag` | latch a result into the 32-entry files |
| **100 / 115** | `push_trigger` / `named_event` | the engine→script edge |
**The state machine is therefore:** a trigger fires a coroutine → the coroutine
tests one of the predicates → it latches the answer with `set_flag` → some later
thread reaches `END_PHASE`.
Two spot-checks I ran against the disassembly rather than taking on trust:
* **id 4 (`wait_s`)** — `c_str()`, `li r3,2` (yield), `lfd f0,0(r11)`,
`stfd f0,8(r30)`: a **double** seconds value into the thread countdown. Exactly
as described.
* **id 24 (`squad_survival_pct`)** — indexes `[phase+324]` by `[arg+4]`, rejects
a NULL object and state 1, then calls `823011B0` (initial, packed
`hi<<16|lo`) and `82301118` (current). Exactly as described.
## ✅ What Stage 02 actually uses — and it settles a standing question
Counting call sites in `Stage02.ssb` (`data/isl-stage02.txt`):
| built-in | sites |
|---|---|
| `unit_state` | **255** |
| `hp_pct_test` | **167** |
| `dist_lt` | **92** |
| `unit_alive` | **71** |
| `unit_relation` | **52** |
| `set_flag` / `clear_flag` / `push_trigger` | 12 each |
| `END_PHASE` / `MARK_LAST_PHASE` / `FORCE_END_PHASE` | 12 / 8 / 3 |
**Not used at all in Stage 02:** `squad_survival_pct`, `group_ratio_pct`,
`global_counter0/1`, `is_engaged`, `player_gauge*`, `prompt_yes_no`,
`deploy_and_wait`.
🔑 **So Stage 02's phases are gated on named-unit tests — destroyed / HP /
proximity — and not on any aggregate count.** The kill-counter primitives exist
in the VM (33, 34) and this mission never calls them.
That is a direct answer to the standing "does the next wave start after N kills
or after an event?" question, at least for Stage 02: **specific units, not a
number.** "Certain objectives shot down" is right; "a certain number shot down"
is not.
⚠️ Scoped to Stage 02. Other stages may well use `squad_survival_pct` — the
counting is per-file and cheap to repeat.
## ✅ A real Stage 02 condition, read end to end
With the symbol tables resolved (unit arguments are symbol-table-2 indices), the
bytecode reads as mission logic. From `Stage02.ssb` at `0xF524`
(`data/isl-stage02-conditions.txt`):
```
unit_state(1, ADN110) objective_marker(1, 0x01, 0, 8, 0)
unit_state(1, ADN111) objective_marker(1, 0x02, 0, 8, 0)
unit_state(1, ADN112) objective_marker(1, 0x05, 0, 8, 0)
objective_marker(1, 0x3A, 1, 8, 0)
set_flag(8)
```
Three **named ADAN squadrons** are polled for lifecycle state, each with its
objective marker updated, and then **flag 8** is latched. That is the shape
[mission-phase-advance](../mission-phase-advance.md) predicted from the
disassembly alone — trigger → predicate → `set_flag` → (later) `END_PHASE` — now
seen in the mission's own code with the squadron names the roster tables already
gave us.
The 12 `END_PHASE` sites are, by contrast, **outro sequences**:
`wait_cmds_drained``fade_sound(3)``builtin85(3)``wait_s(3)`
`END_PHASE``yield`. The *decision* is not there; the terminator is.
### ⚠️ A decode bug that hid every argument
The first version of the argument tracker only followed
`local[i] = special[0]`. But the common form is
**`set.i k=01,03` — an immediate written straight into `local[i]`** — and
missing it meant every unit predicate printed with **no arguments at all**
(`unit_state` rather than `unit_state(1, ADN110)`). The disassembly looked
complete and was silently empty where it mattered most. Both staging forms are
now handled.
## ✅ Correction: the script reads its own flags — no engine reader needed
Last iteration ended with "what reads the flag file is unknown", after an offset
search failed and a promising hit in `sub_8226D740` turned out to be a trigger
record. **The framing was wrong.** I was looking for an *engine-side* reader;
the consumer is the **script itself**, through built-in **9** (`read_freg`),
which loads `[phase+88][i]` into the double result register `[phase+176]`.
`Stage02.ssb` calls it **12 times** — the same count as `set_flag` (12) and
`clear_flag` (12). So the latch is symmetric and entirely inside the VM:
```
set_flag(i) -> [phase+88][i] = 1.0 , [phase+120][i] = 1
read_freg(i) -> [phase+176] = [phase+88][i]
clear_flag(i) -> zero entry i, or all 32 when the argument is -1
```
That closes the middle of the `set_flag → … → END_PHASE` chain: a condition
coroutine latches a flag, and another coroutine reads it back with `read_freg`
and branches on it.
## 🟡 `op10` + `op13` look like a switch
Seen repeatedly, e.g. at `0x5774`:
```
op13 -> 0x5448
op10 imm 4
op13 -> 0x54F0
op10 imm 5
op13 -> 0x5598
```
Consecutive small immediates each paired with their own code offset is the shape
of a **case/branch dispatch**, and `op12` is already confirmed as the
unconditional jump. **Not confirmed** — the handlers (`0x82271598` for op10,
`0x82271830` for op13) have not been read, and I am not going to name them from
a pattern alone.
## 🔴 Correction: `unit_state` does NOT read `+16` — it reads `+4` and `+104`
Disassembling built-in 69's handler (`0x8226ADF0`) rather than trusting the
one-line summary:
```
lwz r10, 324(r30) ; the unit array
lwz r11, 4(r31) ; arg blob +4 = the symbol-table-2 index
lwz r10, 4(r10) ; records base
lwzx r9, r11, r10 ; rec = base[idx]
lwz r9, 4(r9) ; <-- rec+4
cmplwi r9, 0
beq 0x8226AF44 ; rec+4 == 0 -> early exit, "absent"
lwz r4, 4(r11) ; rec+4 again
bl 0x82301240 ; lifecycle lookup ON rec+4
...
lbz r11, 104(r11) ; rec+104, a BYTE, compared against 1
li r11, 2 ; -> result 2
```
**`rec+16` is never touched on this path.** The predicate reads the **handle at
`rec+4`** — which is why it holds small consecutive integers (26/27/28) rather
than pointers; `sub_82301240` resolves it — plus the byte at `rec+104`.
That is exactly why poking `+16` to 4 changed nothing
([script-runtime-probe](../script-runtime-probe.md)): the value was written into
a field the condition does not consult. `+16` still tracks
deployed/active/destroyed faithfully as an *observable* — the arrival and death
transitions were real — but it is a **readout, not the input**.
**The corrected way to simulate "this squadron is gone" is `rec+4 = 0`**, which
takes the documented early exit. That is the next experiment.
⚠️ General lesson for this table: it was assembled by a subagent from handler
behaviour, and this is the second field description that did not survive contact
with the disassembly. Treat the per-offset meanings as leads to verify, not as
facts — the *identifications* (which built-in does what) have held up well.
## 🟡 Not settled
* **Three handlers resisted**: id 55 (`vt35`, 411 instructions, returns a float),
id 75 (`vt52`, message/HUD-ish), id 105 (`vt73`, meaning of unit field `+600`).
* The **1024-slot interpreter-command table** is only partly recovered — 57
slots, by simulating the constant/stack dataflow of `sub_822FE040`.
* Names here are from handler behaviour, not from symbols; `isl.py` prints a bare
`builtinN` for anything unread rather than guessing.
## ✅ The trigger queue at `phase+272` — layout, and a readable pending count
Chasing what makes the phase-1 condition re-evaluate (the polls do **not** run
continuously — see [script-runtime-probe](../script-runtime-probe.md)).
**Two method corrections first**, because both nearly sent me the wrong way:
* Searching the VM's address range for `272(rN)` returns mostly **vtable slot
offsets**, not accesses to the phase field. `0x82273174 lwz r11,272(r11)` is
followed by `mtctr; bctrl` — it is a virtual call through slot 68, nothing to
do with `[phase+272]`.
* `[phase+272]` is **not a pointer to a queue** — it is an **embedded container**.
`vt2` (`sub_82265DD0`) is literally `addi r3,r3,272 ; b 0x8226E3B8`, i.e. it
passes `phase+272` as `this` into the push.
### Container layout, from the push/pop pair
`sub_8226E3B8` (push, reached from built-in **100**) and `sub_8226E220` (pop,
called every frame from `sub_8226D740`):
| offset in the container | meaning |
|---|---|
| `+12` | list head/sentinel (`addi r31, r30, 12`) |
| `+16` | current node pointer |
| `+20` | **element count — zero means empty**; the pop tests it first and returns 0 |
| `+24` | scratch: the popped node is stashed here |
The pop hands the record out through **out-parameters**, reading from
`node+8`: `+0`, `+4`, `+8` as `u32`s, `+16` as a `double`, `+24` as another
`u32` — which matches `sub_8226D740` passing six pointers into local slots.
### 🎯 `[phase + 272 + 20]` is a live "pending triggers" counter
That is the useful part: a single `u32` that says how many triggers are queued,
readable from `/dev/shm` with no debugger. Watching it alongside
`[ScriptMission+40]` should show **when** the engine hands the script an event —
which is exactly the moment the condition coroutines get started, and the thing
every phase experiment so far has been blind to.
### ✅ Verified live
Read from a running Stage 02 mission (`ScriptPhase 0xBE14DD80`, container at
`0xBE14DE90`):
```
+272+12 = 0x000A0009 +272+16 = 0xBC28E620 (a node pointer)
+272+20 = 0 +272+24 = 0
[ 0.0s] pending=0 phase=1 finished=0
[ 68.0s] pending=1 phase=1 finished=0
[ 108.1s] pending=2 phase=1 finished=0
```
**`+20` moves, 0 → 1 → 2**, while the phase ordinal stays 1. So it is a real
counter of **currently registered triggers** — the script arming watches as it
goes (Stage 02 has 12 `push_trigger` sites) — and it is readable live with no
debugger. That is the first direct view of *what the script is waiting for*.
🟡 **`+12` is not a list head after all**, or not only that: it reads
`0x000A0009`, which is not a pointer. The `addi r31, r30, 12` in the push made
"list head" the obvious reading and the value does not support it. Recorded as
unresolved rather than quietly kept.
## 🟡 Walking the trigger queue live — structure confirmed, contents not
Walked the container's linked list from `+16` for 200 s of a Stage 02 mission:
```
[ 0s] count=0 head=0xBC28E610
[ 80s] count=1 head=0xBC28E610
node 0 @0xBC28E610: f0=0xBC63.. f4=0xBC40.. f8=0xBC25.. dbl=-0.000 f24=0xBC25..
[120s] count=2 head=0xBC28E610
node 1 @0xBC28E630: f0=0xBC65.. f4=0 f8=0xBC25.. dbl=-0.000 f24=0xBC25..
```
**The structure holds**: the count at `+20` tracks the number of nodes, the
nodes chain through their first word, and new entries appear as the mission runs
(0 → 1 → 2, stable thereafter).
🔴 **The record layout does not.** I expected `node+8` to hold small **symbol
indices** — the pop's out-parameters made that the natural reading. Every field
is a **guest heap pointer** (`0xBC…`). So the trigger record references objects,
not table indices, and what those objects are is unidentified.
### ⚠️ A false resolution I introduced myself
The `[120s]` line first printed `f4=0(ADN101)` — because the raw value is **0**
and my formatter mapped index 0 to symbol-table-2's first entry. `ADN101` is not
in that record; it is my own pretty-printer inventing a name for a null. A
resolver must refuse to resolve values that were never indices, and this one had
no such guard. Recorded because it is exactly the sort of plausible label that
would survive into a conclusion.
## 🔴 Correction: `sub_8226E3B8` is a CLEAR, not a push
The previous section called it the push, reached from built-in 100 via `vt2`.
Its tail refutes that: it decrements a counter, calls an erase helper
(`sub_8226EAB8`), and **loops while `[+20] != 0`** (`beq 0x8226E3E4`). That is a
**drain-the-whole-queue** routine.
So built-in 100 *clears* the trigger queue and then rebuilds the thread list via
`sub_82273BE8` — consistent with the built-in table's own description
("push the argument record ... then drain/rebuild"), and the "push" label was
mine, not the disassembly's. `xrefs` gives it two callers: `0x82265DD4` (vt2,
the script side) and **`0x8226D420`, an engine site** — so the engine clears it
too. What actually *appends* a node is still unidentified.
## ✅ FOUND: the appender is `sub_8226EAB8`, and the count lives at `inner+8`
The watchpoint plus Canary's own source settles it. At the moment of the write
the guest context (`%rsi`, per `x64_emitter.cc:881`) contains **`0x8226EAE0`**,
which is inside `sub_8226EAB8` — so that is the guest code doing it.
`sub_8226EAB8` is a **generic list-node insert**:
```
8226eae8 lwz r11, 8(r30) ; current count
8226eaf0 cmplwi r10, 0x1 ; overflow guard against 0x3FFFFFFF
8226eb30 addi r11, r11, 1
8226eb34 stw r11, 8(r30) ; count += 1
8226eb38 stw r3, 4(r29) ; link the new node
8226eb40 stw r3, 0(r11)
```
**It increments a count at `+8` of the container it is handed** — and it has
**16 callers**, so it is a shared container helper, not trigger-specific.
### ✅ Why the static search missed it, and what `+12` really is
The trigger container at `phase+272` **embeds an inner list object at `+12`**
(which is why the push does `addi r31, r30, 12`). That inner object keeps its own
count at **its** `+8`:
```
phase + 272 + 12 + 8 = phase + 272 + 20
```
— exactly the word the watchpoint was set on. So the write really is
`stw r11, 8(r30)` with `r30 = phase+284`, and searching for `stw rN, 20(rM)`
could never have found it. That also resolves the earlier 🟡: **`+12` is the
embedded list object**, not a list head pointer, which is why it read
`0x000A0009` rather than an address.
**Method note worth keeping:** the static hunt failed because it assumed the
field's offset in the *outer* object would appear in the writing instruction. A
watchpoint does not care about the addressing form, which is exactly why it was
the right tool once the offset search came up empty twice.
## ~~🔴 What appends a trigger node — NOT FOUND~~ (superseded above)
Three approaches, none of which produced the appender:
* **`sub_8226E160`**, flagged earlier as "enqueue a pending trigger", takes a
`double` plus several pointers, rejects `arg == -1`, and has **exactly one
caller** (`0x8226A044`). It is a specific operation, not the general append.
* ~~**Writes to the count at `+20`** … are part of a block initialisation …
Those are **constructors**~~ — **WRONG, withdrawn.** Verified at
`0x8226E86C``0x8226E8E0`: those functions do `li r3,28 ; bl 0x8230C160`
(allocate 28 bytes), then `lis r10,0xAB03 ; ori r7,r10,0xE4BA ;
stw r7,4(r3)`. They are building an **interpreter command record** stamped
`0xAB03E4BA` = opcode **996**, and pushing it into the interpreter queue —
`sub_8226E7D8` = **AddSelector**, `sub_8226E930` = **RemoveSelector**, with a
32-entry cap (`cmpwi r8, 32`). The `stw … 20(r3)` I read as "the container's
count" is the *command record's* `+20`, a different object entirely. The
analysis was wrong twice over: not constructors, and not that container.
* So the increment that takes the count 0 → 1 → 2 — which is **measured, live**
— does not appear as a plain `stw rN, 20(rM)` anywhere in the container's own
code. It is either inlined into a caller, uses a different addressing form
(`stwx`), or the node count is maintained somewhere I have not looked.
**Honest state:** the queue's structure, its live count and its node chaining are
verified; what writes a node into it is not identified, and I do not have a
candidate I believe. Guessing from the shape of nearby functions is what produced
the "push" mislabel last iteration, so I am not repeating it.
**The approach that would settle it** costs more but is unambiguous: a **gdb
watchpoint on the count word** during a live mission. The address is known at
runtime (`ScriptPhase + 272 + 20`), the count demonstrably changes within ~2
minutes of flight, and the watchpoint reports the writing instruction directly
instead of inferring it from static shape.
## 🟡 The watchpoint fired — the writer is JIT-compiled GUEST code, not host code
`tools/re-capture/trigger_watch.sh` + `host_addr.py` translate the guest VA into
a host address and set a gdb watchpoint on it:
```
mission 0xBC7A2A20 phase 0xBE14DD80 va 0xBE14DEA4 off 0x11E14DEA4 -> host 0x1BE14DEA4
Hardware watchpoint 1: *(unsigned int*)0x1BE14DEA4
Thread 50 "Main XThread" hit it: Old value = 0 New value = 16777216
```
**Two things confirmed.** `16777216` is `0x01000000` — big-endian `1` read
little-endian, so this is exactly the count going **0 → 1**, independently
confirming that `[ScriptPhase+272+20]` is the field. And the write happens on
the **guest's own Main XThread**, not on an emulator worker.
🔴 **But the writer cannot be named from the host stack.** The faulting PC is
`0xa0c65f23`, with no symbol, and the instruction is
`mov 0x110(%rsi),%rbx` — this is **Xenia's JIT-compiled guest code**. The
backtrace above it is garbage (`0x45e0000000`, `0x100000000`), because JIT frames
are not host-unwindable.
So the host watchpoint answers *when* and *which guest thread*, but **not which
guest function** — the thing I actually wanted. The method has a ceiling here,
and it is worth recording rather than re-attempting the same way.
**What would get past it:** the JIT keeps the guest context in a register
(`%rsi` here, given `mov 0x110(%rsi),%rbx`), so the **guest PC is recoverable
from the context block** at the moment of the write. Reading the right offset out
of `$rsi` would name the guest instruction. That needs Xenia's context layout —
which is in the xenia-rs sources on this box — and is a separate, tractable
piece of work rather than another blind run.
## 🟡 `sub_8226E458` is a splice — but I have not shown it touches the trigger queue
Chasing which of `sub_8226EAB8`'s 16 callers grows the trigger count, the
promising one is `sub_8226E458`:
```
8226e504 lwz r11, 8(r30) ; source count
8226e508 subi r11, r11, 1
8226e50c stw r11, 8(r30) ; source -= 1
8226e51c bl 0x8226EAB8 ; ... then insert into the destination (+1)
```
Remove from one list, insert into another — a **splice**. And it has exactly one
caller, `0x8226D780`, **inside `sub_8226D740`**, the per-frame engine→script
drain. That is a tidy story: the engine moves records into the phase's queue each
frame, and the count I watched rises as it does.
🔴 **The tidy story is not supported by the call site.** At `0x8226D780` the
argument is `lwz r4, 324(r29)``[ScriptPhase+324]`, the **unit array**, not the
trigger container. So whatever `sub_8226E458` splices between, I have **not**
shown it is the trigger queue, and the "engine feeds triggers each frame"
reading is mine rather than the disassembly's.
Recording it unresolved. The same over-reach — taking a function's shape as its
purpose — produced the "push" mislabel on `sub_8226E3B8` and the
`ADN110`-for-null pretty-print, both of which cost an iteration to undo.
**What is solid** and does not depend on this: `sub_8226EAB8` increments a count
at `+8` of the container it is handed; the trigger container embeds its list at
`+12`; and the watched word at `phase+272+20` is therefore that inner list's
count. The guest was executing inside `sub_8226EAB8` at the moment of the write.
**Next:** rather than guessing among 16 callers, set the watchpoint again and
read the **guest LR** out of the context (`%rsi`) at the hit — the same technique
that named `sub_8226EAB8` will name its caller.
## ✅ The interpreter command table, recovered in full
`sub_822FE040` is a **fully unrolled** registration sequence — no loop, no
`.rdata` copy. It fills **1023** slots (not 1024: `32 + 8·1023 = 8216`, and
`this+8216` is a `std::map`) with a default, then writes **57** explicit slots.
Of those, **48 are real handlers**; nine point at a shared `li r3,1 ; blr`
accept-and-discard stub.
* default `0x82674028` = `li r3,0 ; blr` → the 966 unpopulated slots always
return 0, so an unknown command is retried 10× and dropped.
* Return convention is **nonzero = consumed**, 0 = retry — which is how the
interpreter *waits*: several handlers return 0 until a named unit exists.
* ⚠️ The dispatcher masks the opcode to 10 bits, so **opcode 1023 would fetch the
map's first word as a handler** — a latent OOB nothing constructs.
🔑 **Opcode 995 is the only handler that touches the phase mirror
`[*(0x828F35F8)+236]`** — the sole read *and* the sole write in the entire table.
That independently confirms why polling that mirror saw nothing during phase 1.
🔑 **No handler spawns or despawns a unit.** 518/519 destroy *order* objects;
1014 broadcasts to every mission unit. Opcode **256** is the strongest deploy
candidate (two name→definition lookups, a 52-byte request, message
`0xFE0018EF`) but is **unconfirmed** — the message ids are write-only in this
image, so the consumer cannot be reached statically.
🟡 **`sub_8230C398` may be Stage 16's script, compiled in C++.** It posts
256/513/514/784/803/896/998/1011 with hard-coded literals (`Route_TCN001_p1F`,
`TCN001`, `SUBOBJ_001`, …) and is **gated on `*(0x82899CE0) == 16`** at both call
sites. `mission-phase-advance.md` calls those literals "debug defaults" — that
does not survive an `== 16` gate, especially as the `.ssb` loader explicitly
refuses mission 16 (`if (n == 16 || n > 32) return`) and S16 is already the
corpus outlier with no unit predicates. **Strongly indicated, not proven**: no
writer for `0x82899CE0` was found.