All 25 opcodes now have meanings. Ops 2/4/6/8 are integer compound assignment (+= -= *= /=) and 3/5/7/9 the float versions; 10 and 11 are integer and float compare writing three condition bits; 13-18 are je/jne/jl/jle/jg/jge; 21-24 are push.i/push.f/pop.i/pop.f over deques at phase+44 and phase+64. The shared-handler question is answered: the dispatcher leaves the opcode in r4 and the shared thunks never overwrite it, so those helpers take an extra opcode argument and index a secondary table (0x82271448, 0x8227152C). CORRECTION to my own tool and note: the branch/jump base is [phase+232], which the phase initialiser sets to 0x24 + the phase's entry from the mission-level stream -- 0xE4 / 0x14AA8 / 0x24B4C for Stage 02's three phases, not the file's 0x24. Measured on phase 1: base 0xE4 puts 525 of 525 branch targets on an instruction boundary; base 0x24 manages 188. isl.py had been using 0x24 for every phase, so its jump targets were wrong throughout. Fixed via isl.phase_bases(). That also settles two things mission-script-ssb.md left open: offsets ARE code-base-relative, and 0x1883's operand IS a code pointer -- the earlier worry that some 'land on IEEE floats' was an artefact of adding the wrong base.
7.8 KiB
The ISL script bytecode — instruction encoding decoded
Status: ✅ the encoding, the 25-opcode table and the call form, read off the
interpreter and confirmed by disassembling Stage02.ssb; 🟡 most opcode
semantics are named only by their handler; ❔ the 147 built-ins are not yet
characterised.
Follows mission-script-ssb (where the scripts live) and
mission-phase-advance (why they matter).
Tool: tools/re-capture/isl.py.
✅ Encoding
ScriptPhase::Update (sub_82263408) fetches one big-endian u32 per
instruction:
0x822635D4 lwz r11,0(r31) ; the instruction word
0x822635D8 clrlwi r4,r11,24 ; OPCODE = the LOW byte
0x822635DC cmplwi 0x18 ; 25 opcodes
0x822635FC jump table, 25 absolute VAs
Every handler advances the pc with lbz r11,2(r31); add r31,r11,r31, so:
| byte | 0 | 1 | 2 | 3 |
|---|---|---|---|---|
| meaning | operand kind A | operand kind B | instruction length in bytes | opcode |
Operand words follow. The common form is 12 bytes (opcode word + two operands).
Operand kinds go through resolvers with their own 4-entry table
(sub_82271D40 for integers, cmplwi 0x3), so there are 4 operand kinds.
✅ The opcode table
| op | handler | what the handler does |
|---|---|---|
| 0 | 82263660 |
integer assign — resolve rvalue (82271D40, kind byte[0], word@+8), resolve lvalue (82272030, kind byte[1], word@+4), stw |
| 1 | 8226369C |
float assign — same shape with 82271F10/82272120 and stfd |
| 2,4,6,8 | 822636D0 |
→ 822713E8 — integer compound assign: += -= *= /= |
| 3,5,7,9 | 822636E4 |
→ 822714D0 — float compound assign: fadd fsub fmul fdiv |
| 10 | 822636F8 |
→ 82271598 — integer compare, sets 3 condition bits |
| 11 | 8226370C |
→ 822716E0 — float compare (fcmpu; NaN clears all three) |
| 12 | 82263720 |
JUMP — r31 = [phase+232] + word@+4 |
| 13–18 | 82263738… |
conditional branches — je, jne, jl, jle, jg, jge |
| 19 | 822637B0 |
CALL BUILT-IN → sub_82272220 |
| 20 | 82263874 |
li r29,1 then the suspend path — yield / return |
| 21 | 822637C4 |
push.i — phase+44 deque ← [phase+168] (special int 1) |
| 22 | 822637E4 |
push.f — phase+64 deque ← [phase+184] (special float 1) |
| 23,24 | 82263804… |
pop.i / pop.f — back into [+168] / [+184] |
Handler return codes drive the outer loop at 0x82263828: 0 continue,
1 suspend, 2/3 other exits.
🔴 CORRECTED: the branch base is PER PHASE, not the file's 0x24
Op 12 adds its operand to [phase+232] — and that is not 0x24. The phase
initialiser sub_82270DF8 writes it as 0x24 + the phase's entry from the mission-level stream, whose three 0x1883 records carry 0xC0, 0x14A84,
0x24B28 for Stage 02 → bases 0xE4, 0x14AA8, 0x24B4C, one per phase.
Measured on Stage 02's phase-1 segment:
| base | branch targets landing on an instruction boundary |
|---|---|
0xE4 |
525 / 525 |
0x24 |
188 / 525 |
So the earlier "the code base is the header's 0x24" was wrong, and
tools/re-capture/isl.py printed wrong jump targets for every phase — badly for
phases 2 and 3, and mostly wrong even in phase 1. Fixed: isl.phase_bases()
returns the three bases, and branch ops are annotated with the base in use.
This also settles two things mission-script-ssb.md left open: offsets are
code-base-relative, and 0x1883's operand is a code pointer (the earlier
worry that two of them "land on IEEE floats" was an artefact of adding the wrong
base).
✅ The call form, and a statement counter
sub_82272220 reads the built-in id from word@+4 (cmplwi 0x92 → 147
built-ins, table 0x8227226C) and stores word@+8 into [phase+200].
That second word turns out to be a monotonically increasing statement id —
0x245, 0x248, 0x24A, 0x24B, 0x24C, 0x24D, 0x24E, 0x252… along a routine. It is
a source-position counter, presumably for the script's own error traces.
✅ It decodes — Stage 02
Disassembling from the code base runs cleanly, and routines terminate on ret
(op 20) exactly where expected. Data in data/isl-stage02.txt.
Scanning the whole code region for the call encoding:
2846 call sites, 73 distinct built-ins used (of 147)
most used: 11 (×372), 69 (×255), 1 (×216), 64 (×213), 30 (×179), 20 (×167)
The phase-control built-ins, located:
| built-in | meaning | sites in Stage02 |
|---|---|---|
| 6 | end phase ([ScriptPhase+196] = 1) |
12 |
| 62 | force-end, skipping the end event | 3 |
| 39 | mark last phase ([phase+300] = 2) |
8 |
| 40 | [phase+300] = 1 |
4 |
Twelve end-phase sites across three phases — so a phase has several exit paths, which is what a mission with win and lose branches should look like.
Argument passing is visible in the disassembly: pairs of
set.i k=01,02 <0> <value> / set.i k=02,03 <slot> <0> stage arguments into
slots, then call. Floats are staged the same way — e.g. 40080000 = 3.0
immediately before several calls.
✅ The four operand kinds, and how arguments are passed
Resolver table 0x82271D74, four entries:
| kind | code | meaning |
|---|---|---|
| 0 | lis 0x828E / bl 82454A40 / lwzx |
global[i] — indexed global array |
| 1 | mr r3,r31 |
immediate — the operand word itself |
| 2 | [phase+164] if i==0 else [phase+168] |
special[i] — two scratch registers |
| 3 | addi r3,r3,20 / lwzx |
local[i] — [phase+20 + i] |
Byte[0] is the rvalue's kind (operand word@+8) and byte[1] the lvalue's (word@+4). That turns the recurring pair into something readable:
set.i k=01,02 <A> <V> special[A] = V (immediate -> special)
set.i k=02,03 <B> <0> local[B] = special[0]
— i.e. argument staging. Values land in local[] at byte offsets
0, 4, 8, 0xC…, and the following call consumes them; a built-in's arguments
are not in its own instruction. isl.py now tracks the staging and prints them.
⚠️ Immediates in set.f are DOUBLES, carried as two words — op 1 stores with
stfd. Reading only the high word as a float gives 2.125 where the script
means 3.0, which is exactly the sort of plausible-but-wrong number that would
have been believed. The 16-byte set.f form is high, low.
With that, the run-up to the first END PHASE in Stage 02 reads:
0050F4 builtin=64(0x42, 0x2, 0x1, 0x9, 0x1, -1)
005160 builtin=120
005188 builtin=59(3)
0051B0 builtin=85(3)
0051D8 builtin=4(3)
0051E4 builtin=6 <-- end phase
0051F0 builtin=11
Three separate built-ins taking 3 immediately before the phase ends — a
plausible "wait 3 seconds" family, unconfirmed until the built-in table is
read.
❔ What this does not settle
- The 147 built-ins are uncharacterised. Without them the disassembly is structure without meaning: we can see that a phase ends here, not what was tested. That is the remaining step to per-phase clear conditions.
- Opcodes 2–11 and 13–18 are named only by handler address. The four-way sharing (2/4/6/8 and 3/5/7/9) suggests the handler re-reads the opcode to pick a comparison or a type, but that is not yet read.
- ✅ How the shared handlers disambiguate — answered. The dispatcher leaves
the opcode in
r4, and the two shared thunks never overwrite it, so the helpers aref(phase, opcode, frame, &pc)where every non-shared helper isf(phase, frame, &pc). Each helper then subtracts its base opcode and indexes a secondary table (0x82271448for ops 2–8,0x8227152Cfor 3–9). - The mission-level stream at
+0x24of a.ssb— as opposed to this ISL stream — is still only partly read.