- WOP_BAND..WOP_SHR = 42..46 (wob.h), WOP_MAX 46, WOB_VERSION 6 - trap kind WO_T_SHIFT=12: shift count outside 0..63 traps (DIV0 precedent, never x86's silent count%64); SHR arithmetic - vm.c: one shared case-body serves both dispatch flavors; SHL shifts the unsigned word (wrapping), SHR casts int64_t (sign extends) - loader.c + test runner battery + disasm: v6 accepted, new opcodes validated three-register, rendered BAND/BOR/BXOR/SHL/SHR - woc-test 543/0, wovm-test ASan both flavors green, cli_smoke OK Co-Authored-By: Claude Fable 5 <noreply@anthropic.com>
337 lines
13 KiB
OCaml
337 lines
13 KiB
OCaml
(* disasm.ml — renders a `.wob` image back to readable mnemonics.
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This is what `woc --dump-bc` prints and what the golden fixtures
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under compiler/test/golden/bc/ pin. Two reasons it decodes the
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*bytes* rather than reading the emitter's in-memory tables:
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- a pinned dump then covers serialization too, so a header offset,
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a pad byte or a table count that goes wrong shows up as a golden
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diff instead of surviving to the loader;
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- the decoder is written against the same normative documents the
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emitter is (docs/plan/oop-vm/00-wob-format.md and
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runtime/src/wob.h), so the two halves disagree loudly.
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Format of the dump (a stable test contract, same doctrine as
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dump.ml's): fixed sections in a fixed order; one line per constant,
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class, interface, vtable row and instruction; a method's line and
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drop tables printed as their own lines before its code, because
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those tables *are* the deliverable for the drop-map and trap-line
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goldens. Registers print as rN, constants kN, classes cN, methods
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mN, interface slots sN, field indexes fN; jumps print their absolute
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target pc, which is what a reader wants and what stays stable when
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an unrelated instruction is inserted before the jump. *)
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let magic = 0x31424F57
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let hdr_size = 44
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let none = 0xFFFFFFFF
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exception Bad of string
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(* ---- little-endian readers (bounds-checked: a dump must never read
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past a truncated image, however it got truncated) ---- *)
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let u8 (s : string) (o : int) : int =
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if o + 1 > String.length s then raise (Bad "truncated");
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String.get_uint8 s o
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let u16 (s : string) (o : int) : int =
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if o + 2 > String.length s then raise (Bad "truncated");
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String.get_uint16_le s o
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let u32 (s : string) (o : int) : int =
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if o + 4 > String.length s then raise (Bad "truncated");
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Int32.to_int (String.get_int32_le s o) land 0xFFFFFFFF
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let i64 (s : string) (o : int) : int64 =
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if o + 8 > String.length s then raise (Bad "truncated");
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String.get_int64_le s o
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let op_of i = i land 0xFF
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let a_of i = (i lsr 8) land 0xFF
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let b_of i = (i lsr 16) land 0xFF
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let c_of i = (i lsr 24) land 0xFF
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let bx_of i = (i lsr 16) land 0xFFFF
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let sbx_of i = bx_of i - 32768
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let builtin_name = function
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| 0 -> "now"
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| 1 -> "print"
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| 2 -> "print_int"
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| 3 -> "words"
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| 4 -> "multi_new"
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| 5 -> "multi_push"
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| 6 -> "multi_get"
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| 7 -> "count"
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| 8 -> "latest"
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| 9 -> "map_new"
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| 10 -> "map_set"
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| 11 -> "map_get"
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| 12 -> "map_has"
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| 13 -> "int_to_text"
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| 14 -> "variant_tag"
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| n -> Printf.sprintf "builtin%d" n
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let kind_name = function
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| 0 -> "SCALAR"
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| 1 -> "OWNED"
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| 2 -> "GCREF"
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| 3 -> "TEXT"
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| 4 -> "MULTI"
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| 5 -> "MAP"
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| n -> Printf.sprintf "KIND%d" n
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(* text constants render with the few escapes a one-line dump needs;
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anything else would let a fixture's newline break the line format *)
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let quote (s : string) : string =
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let b = Buffer.create (String.length s + 2) in
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Buffer.add_char b '"';
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String.iter
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(fun ch ->
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match ch with
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| '"' -> Buffer.add_string b "\\\""
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| '\\' -> Buffer.add_string b "\\\\"
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| '\n' -> Buffer.add_string b "\\n"
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| '\t' -> Buffer.add_string b "\\t"
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| c when Char.code c < 32 -> Buffer.add_string b (Printf.sprintf "\\x%02x" (Char.code c))
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| c -> Buffer.add_char b c)
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s;
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Buffer.add_char b '"';
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Buffer.contents b
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let mask_str (m : int64) : string =
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if m = 0L then "{}"
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else begin
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let regs = ref [] in
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for r = 63 downto 0 do
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if Int64.logand m (Int64.shift_left 1L r) <> 0L then regs := Printf.sprintf "r%d" r :: !regs
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done;
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"{" ^ String.concat "," !regs ^ "}"
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end
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let ins_str (i : int) (pc : int) : string =
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let a = a_of i and b = b_of i and c = c_of i in
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let bx = bx_of i in
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let target = pc + 1 + sbx_of i in
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match op_of i with
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| 0 -> "NOP"
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| 1 -> Printf.sprintf "LOADK r%d, k%d" a bx
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| 2 -> Printf.sprintf "MOVE r%d, r%d" a b
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| 3 -> Printf.sprintf "ADD r%d, r%d, r%d" a b c
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| 4 -> Printf.sprintf "SUB r%d, r%d, r%d" a b c
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| 5 -> Printf.sprintf "MUL r%d, r%d, r%d" a b c
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| 6 -> Printf.sprintf "DIV r%d, r%d, r%d" a b c
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| 7 -> Printf.sprintf "NEG r%d, r%d" a b
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| 8 -> Printf.sprintf "CONCAT r%d, r%d, r%d" a b c
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| 9 -> Printf.sprintf "EQ r%d, r%d, r%d" a b c
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| 10 -> Printf.sprintf "LT r%d, r%d, r%d" a b c
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| 11 -> Printf.sprintf "LE r%d, r%d, r%d" a b c
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| 12 -> Printf.sprintf "EQS r%d, r%d, r%d" a b c
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| 13 -> Printf.sprintf "JMP -> %04d" target
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| 14 -> Printf.sprintf "JZ r%d, -> %04d" a target
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| 15 -> Printf.sprintf "CALL r%d, m%d" a bx
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| 16 -> Printf.sprintf "ICALL r%d, s%d" a bx
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| 17 -> Printf.sprintf "RET r%d" a
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| 18 -> "RET0"
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| 19 -> Printf.sprintf "NEW r%d, c%d" a bx
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| 20 -> Printf.sprintf "GETF r%d, r%d, f%d" a b c
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| 21 -> Printf.sprintf "SETF r%d, f%d, r%d" a b c
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| 22 -> Printf.sprintf "DROP r%d" a
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| 23 -> Printf.sprintf "BORROW_S r%d" a
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| 24 -> Printf.sprintf "BORROW_X r%d" a
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| 25 -> Printf.sprintf "RELEASE_S r%d" a
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| 26 -> Printf.sprintf "RELEASE_X r%d" a
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| 29 ->
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if c = 4 || c = 9 then Printf.sprintf "BUILTIN r%d, kinds=0x%02x, %s" a b (builtin_name c)
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else Printf.sprintf "BUILTIN r%d, r%d, %s" a b (builtin_name c)
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| 30 -> "DB_STUB"
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| 31 -> Printf.sprintf "TRAP %d" bx
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(* haxe-parity Task 5: try/catch. The handler target is rendered the way
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jumps are — absolute, so a disassembly can be read against the pc column. *)
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| 32 -> Printf.sprintf "TRY r%d, handler -> %04d" a target
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| 33 -> "ENDTRY"
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(* iteration 19: the f64 world. Rendered with the same three-register shape
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as their Int counterparts so a disassembly reads the same. *)
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| 34 -> Printf.sprintf "FADD r%d, r%d, r%d" a b c
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| 35 -> Printf.sprintf "FSUB r%d, r%d, r%d" a b c
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| 36 -> Printf.sprintf "FMUL r%d, r%d, r%d" a b c
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| 37 -> Printf.sprintf "FDIV r%d, r%d, r%d" a b c
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| 38 -> Printf.sprintf "FNEG r%d, r%d" a b
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| 39 -> Printf.sprintf "FEQ r%d, r%d, r%d" a b c
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| 40 -> Printf.sprintf "FLT r%d, r%d, r%d" a b c
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| 41 -> Printf.sprintf "FLE r%d, r%d, r%d" a b c
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(* iteration 36 (v6): the Int bitwise set, same three-register shape *)
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| 42 -> Printf.sprintf "BAND r%d, r%d, r%d" a b c
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| 43 -> Printf.sprintf "BOR r%d, r%d, r%d" a b c
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| 44 -> Printf.sprintf "BXOR r%d, r%d, r%d" a b c
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| 45 -> Printf.sprintf "SHL r%d, r%d, r%d" a b c
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| 46 -> Printf.sprintf "SHR r%d, r%d, r%d" a b c
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| op -> Printf.sprintf "?OP%d" op
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(* ---- the dump ---- *)
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type kconst =
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| KInt of int64
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| KText of string
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| KFloat of float (* iteration 19 *)
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let dump (img : string) : string =
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let out = Buffer.create 4096 in
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let line fmt = Buffer.add_string out (fmt ^ "\n") in
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if u32 img 0 <> magic then raise (Bad "bad magic");
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let ver = u32 img 4 in
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(* iteration 36 bumped the format to v6 (opcodes 42-46, the Int bitwise
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set; iteration 19's v5 added the Float constant tag, kinds 6/7 and
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opcodes 34-41). The disassembler tracks the emitter, not a range: an old
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image is a different format and reading it as this one would misrender. *)
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if ver <> 6 then raise (Bad (Printf.sprintf "unsupported version %d" ver));
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let coff = u32 img 8 and ccnt = u32 img 12 in
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let koff = u32 img 16 and kcnt = u32 img 20 in
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let ioff = u32 img 24 and icnt = u32 img 28 in
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let moff = u32 img 32 and mcnt = u32 img 36 in
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let entry = u32 img 40 in
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ignore hdr_size;
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(* constants *)
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let consts = Array.make (max ccnt 1) (KInt 0L) in
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let o = ref coff in
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for i = 0 to ccnt - 1 do
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let tag = u8 img !o in
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incr o;
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if tag = 0 then begin
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consts.(i) <- KInt (i64 img !o);
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o := !o + 8
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end
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else if tag = 1 then begin
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let n = u32 img !o in
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o := !o + 4;
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if !o + n > String.length img then raise (Bad "text constant overruns image");
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consts.(i) <- KText (String.sub img !o n);
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o := !o + n
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end
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else if tag = 2 then begin
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(* iteration 19: a Float constant. Rendered as OCaml's hex-float so the
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disassembly names the exact bits — a decimal here would make golden
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files depend on printf rounding. *)
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consts.(i) <- KFloat (Int64.float_of_bits (i64 img !o));
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o := !o + 8
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end
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else raise (Bad (Printf.sprintf "constant %d: unknown tag %d" i tag))
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done;
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let kname i =
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if i >= ccnt then Printf.sprintf "<k%d?>" i
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else
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match consts.(i) with
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| KText s -> s
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| KInt n -> Int64.to_string n
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| KFloat x -> Printf.sprintf "%h" x
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in
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line "== CONSTANTS ==";
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for i = 0 to ccnt - 1 do
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match consts.(i) with
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| KInt n -> line (Printf.sprintf "k%-3d INT %Ld" i n)
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| KText s -> line (Printf.sprintf "k%-3d TEXT %s" i (quote s))
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| KFloat x -> line (Printf.sprintf "k%-3d FLT %h" i x) (* iteration 19 *)
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done;
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(* classes *)
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line "== CLASSES ==";
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let o = ref koff in
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for i = 0 to kcnt - 1 do
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let nm = u32 img !o and flags = u32 img (!o + 4) and fcnt = u32 img (!o + 8) in
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o := !o + 12;
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let kinds = List.init fcnt (fun j -> kind_name (u8 img (!o + j))) in
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o := !o + fcnt + ((4 - (fcnt mod 4)) mod 4);
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(* v2 per-field metadata: names, referenced class ids, element kinds. The
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dump shows each field as name:kind — the names are what json.encode
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renders as keys, so a wrong one is worth seeing. *)
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let names = List.init fcnt (fun j -> u32 img (!o + (j * 4))) in
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o := !o + (fcnt * 12);
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(* v3 index tail: walk past (the disassembly prints class shape, not
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indexes — dump goldens stay byte-stable across the version bump) *)
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let icnt = u32 img !o in
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o := !o + 4;
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for _ = 1 to icnt do
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let ccnt = u32 img (!o + 4) in
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o := !o + 8 + (ccnt * 4)
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done;
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let fields =
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List.map2
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(fun nmk k -> if nmk = 0xFFFFFFFF then k else Printf.sprintf "%s:%s" (kname nmk) k)
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names kinds
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in
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line
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(Printf.sprintf "c%-3d %s flags=%s fields=[%s]" i (kname nm)
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(if flags land 1 <> 0 then "gc" else "-")
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(String.concat ", " fields))
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done;
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(* interfaces + vtable rows *)
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line "== INTERFACES ==";
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let o = ref ioff in
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let slot_base = Array.make (max icnt 1) 0 in
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let imcnt = Array.make (max icnt 1) 0 in
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let slots = ref 0 in
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for i = 0 to icnt - 1 do
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let nm = u32 img !o and mc = u32 img (!o + 4) in
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o := !o + 8;
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slot_base.(i) <- !slots;
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imcnt.(i) <- mc;
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line (Printf.sprintf "i%-3d %s methods=%d slots=s%d..s%d" i (kname nm) mc !slots (!slots + mc - 1));
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slots := !slots + mc
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done;
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let vrows = u32 img !o in
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o := !o + 4;
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line "== VTABLES ==";
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for _ = 1 to vrows do
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let cid = u32 img !o and iid = u32 img (!o + 4) in
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o := !o + 8;
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let mc = if iid < icnt then imcnt.(iid) else 0 in
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let ms = List.init mc (fun j -> Printf.sprintf "m%d" (u32 img (!o + (4 * j)))) in
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o := !o + (4 * mc);
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line
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(Printf.sprintf "c%d i%d slots s%d.. -> [%s]" cid iid
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(if iid < icnt then slot_base.(iid) else 0)
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(String.concat ", " ms))
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done;
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(* methods *)
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line "== METHODS ==";
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let o = ref moff in
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for i = 0 to mcnt - 1 do
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let nm = u32 img !o and cid = u32 img (!o + 4) in
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let argc = u8 img (!o + 8) and regc = u8 img (!o + 9) in
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let reserved = u16 img (!o + 10) in
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if reserved <> 0 then raise (Bad "reserved method field is not zero");
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let clen = u32 img (!o + 12) in
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o := !o + 16;
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if clen mod 4 <> 0 then raise (Bad "code length is not a multiple of 4");
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let ninstr = clen / 4 in
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let code = Array.init ninstr (fun j -> u32 img (!o + (4 * j))) in
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o := !o + clen;
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let lcnt = u32 img !o in
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o := !o + 4;
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let lines = List.init lcnt (fun j -> (u32 img (!o + (8 * j)), u32 img (!o + (8 * j) + 4))) in
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o := !o + (8 * lcnt);
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let dcnt = u32 img !o in
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o := !o + 4;
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let drops =
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List.init dcnt (fun j ->
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let base = !o + (20 * j) in
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(u32 img base, i64 img (base + 4), i64 img (base + 12)))
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in
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o := !o + (20 * dcnt);
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line
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(Printf.sprintf "m%-3d %s args=%d regs=%d %s%s" i (kname nm) argc regc
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(if cid = none then "[free fn]" else Printf.sprintf "[class c%d]" cid)
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(if entry = i then " [ENTRY]" else ""));
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line
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(Printf.sprintf " lines: %s"
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(if lines = [] then "(none)"
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else String.concat " " (List.map (fun (pc, l) -> Printf.sprintf "%d->%d" pc l) lines)));
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if drops = [] then line " drops: (none)"
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else
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List.iter
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(fun (pc, ow, gc) ->
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line (Printf.sprintf " drops: pc %d owned=%s gc=%s" pc (mask_str ow) (mask_str gc)))
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drops;
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Array.iteri (fun pc ins -> line (Printf.sprintf " %04d %s" pc (ins_str ins pc))) code
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done;
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line "== ENTRY ==";
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line (if entry = none then "(none)" else Printf.sprintf "m%d" entry);
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Buffer.contents out
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