Bring the wwstage toolchain to parity with C-side DATAW / DATAR /
.data / .rela.data support. With this, w6c_ww + w6a_ww + w6l_ww can
compile, assemble and link `let g: str = "lit";` (and the scalar /
str / slice / struct globals that landed earlier) end-to-end, with
output that's byte-identical to the C-side pipeline.
w6a (types.ww / parse.ww / asm.ww / obj.ww):
- A_DATAW + A_DATAR opcodes; parser learns `name+disp(SB)`;
A_DATAR records an R_X86_64_64 reloc in .data via the new
addrelocdata helper; areloc gains a `section` flag and asym
an `isdata` flag; obj.ww splits relocs into .rela.text /
.rela.data, emits .data PROGBITS + .rela.data conditionally,
and shuffles section indices the same way cmd/w6a/obj.c does
so byte output stays identical when no DATAW/DATAR are used.
w6l (sym.ww / obj.ww / pass.ww / out.ww / dynout.ww / main.ww):
- lrel grows `section`; lsym grows `indata`; lobj tracks
dataoff / datasize; lnk grows combined .data buffer;
- obj.ww loads .data and .rela.data, registers data symbols
with indata=1 and val shifted by the input's data_off, and
the archive scanner includes both .text and .data globals;
- pass.ww adds R_X86_64_64 (patch 8 bytes in .text or .data
with sym_va + addend); relocate's signature becomes
(textva, datava);
- out.ww emits a second PT_LOAD (R+W) when datalen > 0, with
.data at the page-aligned offset after .text;
- dynout.ww refuses .data + -l/-L cleanly (matches the C-side
error message);
- main.ww computes text_va / data_va and passes both to
relocate.
wcc cgen (cgen.ww / cgendecl.ww):
- letpreintern walks top-level str-lets and interns the strlit
BEFORE emitdatasection emits its DATA row, so emitletdataw
can later look up the same label;
- emitletdataw's 16B branch detects non-empty strlit init and
emits the 8-zero + 8-LE-len DATAW plus a DATAR slot+0,strlit
reloc, mirroring cmd/w6c/cgen.c.
Verified: `wwdump_ww -c` byte-matches `w6c` on a `let g: str =
"hello world\n";` fixture; `w6a_ww` and `w6l_ww` produce a
binary byte-identical to the C-side pipeline that runs and
prints "hello world". Bootstrap fixed-point holds (ww2 == ww3 ==
ww4), 26/26 tests green.
153 lines
4.6 KiB
Plaintext
153 lines
4.6 KiB
Plaintext
// selfhost/cmd/w6l/out.ww — port of cmd/w6l/out.c.
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//
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// Emit a static ELF64 executable. File layout (per the C original):
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// [0..64) Ehdr
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// [64..120) Phdr (one PT_LOAD)
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// [120..0x1000) zero pad
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// [0x1000..) .text bytes
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// Single PT_LOAD covers the whole file, R+X. No interpreter, no .bss.
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use os;
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use sym;
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use dynout;
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def ET_EXEC: u16 = 2u16;
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def EM_X86_64_W: u16 = 62u16;
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def EV_CURRENT: u32 = 1u32;
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def ELFCLASS64: u8 = 2u8;
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def ELFDATA2LSB: u8 = 1u8;
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def PT_LOAD: u32 = 1u32;
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def PF_X: u32 = 1u32;
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def PF_W: u32 = 2u32;
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def PF_R: u32 = 4u32;
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def TEXT_OFF: u64 = 4096u64; // 0x1000
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def PAGE_SZ: u64 = 4096u64;
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// ---- little-endian byte writers ----------------------------------------
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fn wru16(buf: *u8, off: u64, v: u16) void = {
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buf[off] = (v & 255u16): u8;
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buf[off + 1u64] = ((v >> 8u16) & 255u16): u8;
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};
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fn wru32(buf: *u8, off: u64, v: u32) void = {
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buf[off] = (v & 255u32): u8;
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buf[off + 1u64] = ((v >> 8u32) & 255u32): u8;
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buf[off + 2u64] = ((v >> 16u32) & 255u32): u8;
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buf[off + 3u64] = ((v >> 24u32) & 255u32): u8;
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};
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fn wru64(buf: *u8, off: u64, v: u64) void = {
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wru32(buf, off, (v & 4294967295u64): u32);
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wru32(buf, off + 4u64, ((v >> 32u64) & 4294967295u64): u32);
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};
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// ---- emit ---------------------------------------------------------------
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export fn emitelf(l: *lnk, fd: i32, base: u64, entry: u64) i32 = {
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// Dispatch: any loaded shared object plus any dynamic ref means
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// we owe the loader a real PT_INTERP/PT_DYNAMIC binary.
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if (l.sos != nil) {
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if (l.dynn > 0) {
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return emitdynelf(l, fd, base, entry);
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};
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};
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let hasdata: bool = l.datalen > 0u64;
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let rxend: u64 = TEXT_OFF + l.textlen;
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// .data lands at the next page boundary so the loader can give
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// it fresh R+W permissions without overlapping the R+X mapping.
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let dataoff: u64 = 0u64;
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if (hasdata) {
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dataoff = (rxend + PAGE_SZ - 1u64) & ~(PAGE_SZ - 1u64);
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};
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// One contiguous header buffer covering [0..0x1000), then .text.
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let hdr: *u8 = os.alloc(TEXT_OFF): *u8; // zero-initialised by mmap
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// --- Ehdr (64 bytes) ---
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hdr[0u64] = 127u8; // 0x7f
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hdr[1u64] = 69u8; // 'E'
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hdr[2u64] = 76u8; // 'L'
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hdr[3u64] = 70u8; // 'F'
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hdr[4u64] = ELFCLASS64;
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hdr[5u64] = ELFDATA2LSB;
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hdr[6u64] = EV_CURRENT: u8;
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wru16(hdr, 16u64, ET_EXEC); // e_type
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wru16(hdr, 18u64, EM_X86_64_W); // e_machine
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wru32(hdr, 20u64, EV_CURRENT); // e_version
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wru64(hdr, 24u64, entry); // e_entry
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wru64(hdr, 32u64, 64u64); // e_phoff = sizeof(Ehdr)
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wru64(hdr, 40u64, 0u64); // e_shoff
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wru32(hdr, 48u64, 0u32); // e_flags
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wru16(hdr, 52u64, 64u16); // e_ehsize
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wru16(hdr, 54u64, 56u16); // e_phentsize
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if (hasdata) { wru16(hdr, 56u64, 2u16); }
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else { wru16(hdr, 56u64, 1u16); };
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wru16(hdr, 58u64, 0u16); // e_shentsize
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wru16(hdr, 60u64, 0u16); // e_shnum
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wru16(hdr, 62u64, 0u16); // e_shstrndx
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// --- Phdr #1 (R+X) at offset 64 ---
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wru32(hdr, 64u64, PT_LOAD);
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wru32(hdr, 68u64, PF_R | PF_X);
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wru64(hdr, 72u64, 0u64); // p_offset
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wru64(hdr, 80u64, base); // p_vaddr
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wru64(hdr, 88u64, base); // p_paddr
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wru64(hdr, 96u64, rxend); // p_filesz
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wru64(hdr, 104u64, rxend); // p_memsz
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wru64(hdr, 112u64, TEXT_OFF); // p_align
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if (hasdata) {
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// --- Phdr #2 (R+W) at offset 64+56=120 ---
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wru32(hdr, 120u64, PT_LOAD);
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wru32(hdr, 124u64, PF_R | PF_W);
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wru64(hdr, 128u64, dataoff); // p_offset
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wru64(hdr, 136u64, base + dataoff); // p_vaddr
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wru64(hdr, 144u64, base + dataoff); // p_paddr
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wru64(hdr, 152u64, l.datalen); // p_filesz
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wru64(hdr, 160u64, l.datalen); // p_memsz
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wru64(hdr, 168u64, PAGE_SZ); // p_align
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};
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// Write [0..0x1000) then .text.
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let r1: (i64 | os.oserror) = os.writeall(fd, hdr, TEXT_OFF);
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let n1: i64 = 0i64;
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match (r1) {
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case let v: i64 => n1 = v;
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case let e: os.oserror => return -1;
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};
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if (n1 != TEXT_OFF: i64) { return -1; };
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if (l.textlen > 0u64) {
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let r2: (i64 | os.oserror) = os.writeall(fd, l.text, l.textlen);
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let n2: i64 = 0i64;
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match (r2) {
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case let v: i64 => n2 = v;
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case let e: os.oserror => return -1;
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};
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if (n2 != l.textlen: i64) { return -1; };
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};
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if (hasdata) {
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// Pad to the page-aligned data offset, then write .data.
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let here: u64 = TEXT_OFF + l.textlen;
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let zero: u8 = 0u8;
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for (here < dataoff) {
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let r3: (i64 | os.oserror) = os.writeall(fd, &zero, 1u64);
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match (r3) {
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case let v: i64 => { };
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case let e: os.oserror => return -1;
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};
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here += 1u64;
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};
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let r4: (i64 | os.oserror) = os.writeall(fd, l.data, l.datalen);
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let n4: i64 = 0i64;
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match (r4) {
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case let v: i64 => n4 = v;
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case let e: os.oserror => return -1;
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};
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if (n4 != l.datalen: i64) { return -1; };
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};
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return 0;
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};
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