// time — clocks, instants, durations. Mirrors Hare's lib/time // (ref/hare/time/duration.ha, instant.ha, arithm.ha, // +linux/functions.ha). Calendar / date / strftime / timezone / // sleep live in separate Hare modules and graduate when callers / // supporting stdlib arrive. // // `duration` is a NAMED alias of i64 (lib/math/random precedent // at lib/math/random/random.ww:8); ww treats NAMED as a newtype, // so cross-i64 arithmetic inside this module needs explicit casts. // Hare's structural alias semantics let those casts vanish, but // our type checker is strict. package time; @symbol("rt_syscall") fn syscall2(num: i64, a: i64, b: i64) i64; @symbol("rt_abort") fn abort(msg: str) void; def SYS_CLOCK_GETTIME: i64 = 228; // ref/hare/time/duration.ha:6. 290y representable range. export type duration = i64; // ref/hare/time/duration.ha:9-18. Plan-9 naming (lowercase) // diverges from Hare's uppercase per project rule 4. export def nanosecond: duration = 1i64; export def microsecond: duration = 1000i64; export def millisecond: duration = 1000000i64; export def second: duration = 1000000000i64; // ref/hare/time/instant.ha:9. (sec, nsec) pair — NOT POSIX struct // timespec (which uses u32 nsec). Layout matches Linux's struct // timespec on 64-bit (i64+i64) so we can pass &instant directly // to clock_gettime. export type instant = struct { sec: i64, nsec: i64, }; // ref/hare/time/+linux/functions.ha:84. First cut exposes only // realtime and monotonic; Hare's process_cpu / thread_cpu / boot / // realtime_alarm / boot_alarm / tai graduate when a caller needs // them (CLAUDE.md rule 9 — Hare-fidelity, no premature surface). export type clock = enum i32 { realtime = 0, monotonic = 1, }; // ref/hare/time/+linux/functions.ha:138. Hare's now() also aborts // on impossible errnos. (instant | oserror) is deliberately not // the return shape — EINVAL / EFAULT are programmer errors (bad // clock id, bad ptr), and a 1-word-payload sum return walks into // task #9's cgen-divergence trap. export fn now(c: clock) instant = { let i: instant; let rc = syscall2(SYS_CLOCK_GETTIME, (c as i32): i64, (&i): i64); if (rc != 0i64) { abort("time.now: clock_gettime failed"); }; return i; }; // ref/hare/time/arithm.ha:9. Adds duration to instant. The // negative-duration branch normalises nsec into [0, second). export fn add(i: instant, x: duration) instant = { let r: instant; let xi: i64 = x: i64; let sec: i64 = second: i64; let nsec: i64 = nanosecond: i64; if (xi == 0i64) { r.sec = i.sec; r.nsec = i.nsec; return r; }; if (xi > 0i64) { r.sec = i.sec + (i.nsec + xi) / sec; r.nsec = (i.nsec + xi) % sec; return r; }; r.sec = i.sec + (i.nsec + xi - sec + nsec) / sec; r.nsec = (i.nsec + (xi % sec) + sec) % sec; return r; }; // ref/hare/time/arithm.ha:26. Returns duration from a to b. // Sign convention: b - a. export fn diff(a: instant, b: instant) duration = { let sec: i64 = second: i64; let v: i64 = ((b.sec - a.sec) * sec) + (b.nsec - a.nsec); return v: duration; }; // ref/hare/time/arithm.ha:32. -1 if a < b, 0 if equal, +1 if a > b. export fn compare(a: instant, b: instant) i8 = { if (a.sec < b.sec) { return -1i8; }; if (a.sec > b.sec) { return 1i8; }; if (a.nsec < b.nsec) { return -1i8; }; if (a.nsec > b.nsec) { return 1i8; }; return 0i8; }; // os — process and filesystem facade. The body of each call lands // either in libwwrt.a (rt_syscall trampoline) or libc bindings, // depending on how the program was linked. package os; import time; @symbol("rt_syscall") fn syscall0(num: nr) i64; @symbol("rt_syscall") fn syscall1(num: nr, a: i64) i64; @symbol("rt_syscall") fn syscall2(num: nr, a: i64, b: i64) i64; @symbol("rt_syscall") fn syscall3(num: nr, a: i64, b: i64, c: i64) i64; @symbol("rt_syscall") fn syscall4(num: nr, a: i64, b: i64, c: i64, d: i64) i64; @symbol("rt_free") export fn free(p: *void, n: u64) void; @symbol("rt_abort") fn abort(msg: str) void; // Hare-style runtime check. Caller passes a message that's printed // to stderr before exit(1). export fn assert(cond: bool, msg: str) void = { if (!cond) { abort(msg); }; }; // Linux amd64 syscall numbers. Internal to this module — passed as // the first arg of syscall0..4 via libwwrt's rt_syscall trampoline. // `nr` is the type so the call sites can't accidentally pass an // arbitrary i64 (`syscall1(0i64, ...)` no longer typechecks). type nr = enum i64 { READ = 0, WRITE = 1, OPEN = 2, CLOSE = 3, LSEEK = 8, ACCESS = 21, DUP2 = 33, GETPID = 39, FORK = 57, EXECVE = 59, EXIT = 60, WAIT4 = 61, MKDIR = 83, RMDIR = 84, UNLINK = 87, GETCWD = 79, GETDENTS64 = 217, NEWFSTATAT = 262, }; // open(2) flags. Linux values, matching . Hare names them // `fs::flag::RDONLY` etc; we use the same leaf names so callers say // `os.flag.RDONLY` and `os.flag.WRONLY | os.flag.CREATE`. export type flag = enum i32 { RDONLY = 0, WRONLY = 1, RDWR = 2, CREATE = 64, // 0x40 EXCL = 128, // 0x80 — pair with CREATE to fail on existing path TRUNC = 512, // 0x200 }; // lseek(2) whence. Hare names it `io::whence`. export type whence = enum i32 { SET = 0, CUR = 1, END = 2, }; export fn exit(code: i32) void = { syscall1(nr.EXIT, code: i64); }; // PATH_MAX / pathbuf / kpath — port of Hare's ref/hare/sys/+linux/ // syscalls.ha:25,27,29-55. Hare's `path` accepts a sum `(str | // []u8 | *const u8)`; ww's lib/os public surface narrows to `str` // (the Hare-faithful surface at ref/hare/os/os.ha:37,47,50 etc). // Internally, [[kpath]] copies the `str` bytes into a single // module-level [[pathbuf]] scratch slot and NUL-terminates so the // raw Linux syscalls (which require C strings) see a valid // terminator. Same precedent as Hare's static `pathbuf`. // // Non-reentrant: one buffer, every [[stat]] / [[open]] / etc. // rewrites it. Same caveat as strconv's `*tos` family (overwritten // on next call). Caller must NOT hold a kpath-returned pointer // across another lib/os path call. Graduates when ww grows a // thread story. // // `nil`-as-overflow over `(*u8 | oserror)`: wwstage over-allocates // 1-word-payload tagged returns to 24B (cstage emits 16B). // Task #9; revert at task #10 when fixed. Repro at // .ai/probe_tagged_return_pointer_payload.ww. export def PATH_MAX: i32 = 4096; let pathbuf: [4096]u8; fn kpath(p: str) *u8 = { if (p.len + 1 >= PATH_MAX) { return nil: *u8; }; // ENAMETOOLONG let i: i32 = 0; for (i < p.len) { pathbuf[i] = p[i]; i += 1; }; pathbuf[p.len] = 0u8; return &pathbuf[0]; }; // Raw, non-fallible primitives. These return Linux's int conventions // (negative = -errno, non-negative = bytes/fd/etc). Callers wanting a // Hare-style fallible API use the wrappers below. export fn write(fd: i32, buf: *u8, n: u64) i64 = { return syscall3(nr.WRITE, fd: i64, buf: i64, n: i64); }; export fn read(fd: i32, buf: *u8, n: u64) i64 = { return syscall3(nr.READ, fd: i64, buf: i64, n: i64); }; export fn close(fd: i32) i32 = { return syscall1(nr.CLOSE, fd: i64): i32; }; // dup2(2): make `newfd` refer to the same description as `oldfd`, // closing `newfd` first if open. Returns `newfd` on success or a // negative errno. Used by w6c_ww to redirect stdout into an output // file without changing the cgen emit path. export fn dup2(oldfd: i32, newfd: i32) i32 = { return syscall2(nr.DUP2, oldfd: i64, newfd: i64): i32; }; // Fallible wrappers. The error variant is `oserror` (an i64 carrying // -errno). The sum type makes success/failure explicit and lets // callers `?` the result up the stack. export fn tryread(fd: i32, buf: *u8, n: u64) (i64 | oserror) = { let r: i64 = read(fd, buf, n); if (r < 0) { return r: oserror; }; return r; }; export fn trywrite(fd: i32, buf: *u8, n: u64) (i64 | oserror) = { let r: i64 = write(fd, buf, n); if (r < 0) { return r: oserror; }; return r; }; // open — Linux open(2). Returns -errno on failure, fd otherwise. // Higher-level callers prefer `tryopen`. Mirrors Hare's os::open // (ref/hare/os/os.ha:117); kpath lands the bytes in pathbuf. // Returns -ENAMETOOLONG (-36) if the path overflows PATH_MAX. export fn open(path: str, flags: flag, mode: i32) i32 = { let p: *u8 = kpath(path); if (p == nil: *u8) { return -36i32; }; // ENAMETOOLONG return syscall3(nr.OPEN, p: i64, (flags as i32): i64, mode: i64): i32; }; export fn tryopen(path: str, flags: flag, mode: i32) (i32 | oserror) = { let fd: i32 = open(path, flags, mode); if (fd < 0) { return fd: i64: oserror; }; return fd; }; // lseek — set/inspect the fd's position. Returns the new offset or // a negative errno. We use this for fstat-free file-size discovery // (open ⇒ lseek to end ⇒ lseek back). export fn lseek(fd: i32, off: i64, w: whence) i64 = { return syscall3(nr.LSEEK, fd: i64, off, (w as i32): i64); }; // oserror — the underlying errno from a failed syscall, as a // negative i64 (Linux's int convention; e.g. -2 = ENOENT). The // `!`-flagged alias makes ?-propagation pick this variant as the // error half of any (T | oserror) shape. Hare's analogue is // errors::errno carried inside io::error. export type oserror = !i64; // filesize — byte length of an open fd via lseek-to-end-and-back. export fn filesize(fd: i32) (i64 | oserror) = { let end: i64 = lseek(fd, 0i64, whence.END); if (end < 0) { return end: oserror; }; let r: i64 = lseek(fd, 0i64, whence.SET); if (r < 0) { return r: oserror; }; return end; }; // readall — keep reading until `n` bytes have arrived or the fd // closes early. Hare name (io::readall); the buffer is caller- // supplied, matching the Plan 9 subset convention. export fn readall(fd: i32, buf: *u8, n: u64) (i64 | oserror) = { let got: u64 = 0u64; for (got < n) { let r: i64 = read(fd, buf + got, n - got); if (r < 0) { return r: oserror; }; if (r == 0) { return got: i64; }; // short read: caller decides got += r: u64; }; return got: i64; }; // writeall — keep writing until `n` bytes have been accepted or the // fd refuses progress. Hare name (io::writeall). export fn writeall(fd: i32, buf: *u8, n: u64) (i64 | oserror) = { let sent: u64 = 0u64; for (sent < n) { let r: i64 = write(fd, buf + sent, n - sent); if (r < 0) { return r: oserror; }; if (r == 0) { return sent: i64; }; sent += r: u64; }; return sent: i64; }; // ---- process and filesystem helpers used by the `ww` driver ---------- // access(2): returns 0 if the file is reachable, negative errno // otherwise. mode is the bitset described in (F_OK=0). // Mirrors Hare's os::access (ref/hare/os/+linux/fs.ha:access). // Returns -ENAMETOOLONG (-36) if the path overflows PATH_MAX. export fn access(path: str, mode: i32) i32 = { let p: *u8 = kpath(path); if (p == nil: *u8) { return -36i32; }; return syscall2(nr.ACCESS, p: i64, mode: i64): i32; }; // remove — unlink(2). Mirrors Hare's os::remove // (ref/hare/os/os.ha:12). export fn remove(path: str) i32 = { let p: *u8 = kpath(path); if (p == nil: *u8) { return -36i32; }; return syscall1(nr.UNLINK, p: i64): i32; }; // mkdir — mkdir(2). Mode is the unix permission bitset (e.g. 0o700). // Returns 0 on success, negative errno otherwise. Mirrors Hare's // os::mkdir (ref/hare/os/os.ha:50). export fn mkdir(path: str, mode: i32) i32 = { let p: *u8 = kpath(path); if (p == nil: *u8) { return -36i32; }; return syscall2(nr.MKDIR, p: i64, mode: i64): i32; }; // rmdir — rmdir(2). Mirrors Hare's os::rmdir // (ref/hare/os/os.ha:58). export fn rmdir(path: str) i32 = { let p: *u8 = kpath(path); if (p == nil: *u8) { return -36i32; }; return syscall1(nr.RMDIR, p: i64): i32; }; // mkdirs — recursive mkdir. Creates `path` and any non-existent // parent directories with the given mode. EEXIST is silently // accepted (matches Hare's `errors::exists` skip in os::mkdirs); // any other syscall failure surfaces as `oserror`. // // Mirrors Hare's os::mkdirs (ref/hare/os/os.ha:54). The in-place // '/' → NUL splice walks the kpath-loaded [[pathbuf]] directly // instead of recursing through [[mkdir]] — re-entering kpath would // clobber the buffer mid-walk (single static slot, see kpath's // non-reentrancy note above). export fn mkdirs(path: str, mode: i32) (void | oserror) = { let cp: *u8 = kpath(path); if (cp == nil: *u8) { return -36i64: oserror; }; let n: i32 = path.len; if (n == 0) { return; }; // Walk forward; at each '/' boundary, NUL-terminate the prefix, // raw MKDIR syscall on pathbuf, restore the slash, continue. // Skip index 0 so a leading '/' on absolute paths doesn't // trigger an empty mkdir. let i: i32 = 1; for (i < n) { if (pathbuf[i] == 47u8) { // '/' pathbuf[i] = 0u8; let r: i32 = syscall2(nr.MKDIR, (&pathbuf[0]): i64, mode: i64): i32; pathbuf[i] = 47u8; if (r < 0) { if (r != -17) { return r: i64: oserror; }; }; }; i += 1; }; let r: i32 = syscall2(nr.MKDIR, (&pathbuf[0]): i64, mode: i64): i32; if (r < 0) { if (r != -17) { return r: i64: oserror; }; }; return; }; // getpid(2). Used by the driver to mint unique scratch paths. export fn getpid() i32 = { return syscall0(nr.GETPID): i32; }; // fork(2): 0 in the child, child pid in the parent, negative errno // on failure. export fn fork() i32 = { return syscall0(nr.FORK): i32; }; // execve(2): on success, does not return. Mirrors Hare's // os::exec::exec path arg (str). argv/envp stay `**u8` — the // kernel takes a NUL-pointer-terminated table of NUL-terminated // C strings, a different shape from a path. export fn execve(path: str, argv: **u8, envp: **u8) i32 = { let p: *u8 = kpath(path); if (p == nil: *u8) { return -36i32; }; return syscall3(nr.EXECVE, p: i64, argv: i64, envp: i64): i32; }; // wait4(2): wait for `pid` (or any child if -1), store status in // `*status`, return the pid that ended (or negative errno). export fn wait4(pid: i32, status: *i32, options: i32, rusage: *void) i32 = { return syscall4(nr.WAIT4, pid: i64, status: i64, options: i64, rusage: i64): i32; }; // getcwd(2) — Linux flavour. Writes the NUL-terminated cwd into `buf` // and returns the number of bytes written (including the NUL), or a // negative errno. The driver uses it to expand `.` to the cwd's // basename for `ww build` / `ww test`. export fn getcwd(buf: *u8, n: u64) i64 = { return syscall2(nr.GETCWD, buf: i64, n: i64); }; // getdents64(2) — Linux directory enumeration. The fd must be opened // with O_RDONLY on a directory. `buf` receives a packed sequence of // linux_dirent64 records: // // struct linux_dirent64 { // u64 d_ino; // 0..7 // i64 d_off; // 8..15 // u16 d_reclen; // 16..17 — total bytes for this record // u8 d_type; // 18 — DT_REG/DT_DIR/... // u8 d_name[]; // 19.. — NUL-terminated name + padding // }; // // Returns bytes written into `buf` (advance by d_reclen to walk), // 0 at end-of-directory, or a negative errno. export fn getdents64(fd: i32, buf: *u8, n: u64) i64 = { return syscall3(nr.GETDENTS64, fd: i64, buf: i64, n: i64); }; // ---- environment ------------------------------------------------------ // rt_envp — runtime-side getter. rt/start.s captures envp into a DATAW // slot before calling main; this binding lifts the captured pointer // into ww. Same FFI shape as rt_syscall / rt_malloc / rt_abort: a TEXT // symbol the linker resolves. The returned `**u8` is a NUL-terminated // table of `*u8` entries, each pointing at a NUL-terminated // "NAME=VALUE" byte sequence. // // We don't expose `rtenvp` directly; [[getenv]] is the only consumer. @symbol("rt_envp") fn rtenvp() **u8; // getenv — POSIX getenv. Returns a borrowed `str` view over the value // bytes of the named environment variable, or void if the name is not // present. The view is valid for the process lifetime — the bytes // live in the kernel-supplied envp table at process entry. A future // `setenv` (separate task) that grows the table behind the scenes // would invalidate prior views; v1 has no setenv, so callers can // hold the view indefinitely. // // Mirrors Hare's os::tryenv shape (returns void rather than panicking // on missing). Hare also ships os::getenv (`(str | void)`) and // os::mustenv (panic-on-missing); ww collapses to the single // `(str | void)` form for now — consumers wanting "must" semantics // abort at the call site. // // Algorithm: walk the NUL-pointer-terminated `environ` table doing a // "name=" prefix match against each entry, byte-wise. NUL inside // `name` would never match a real env var (env var names cannot // contain '\0'), so we don't filter — POSIX puts that responsibility // on the caller. export fn getenv(name: str) (str | void) = { let envp: **u8 = rtenvp(); let i: i32 = 0; for (true) { let entry: *u8 = envp[i]; if (entry == nil: *u8) { return; }; let j: i32 = 0; let matched: bool = true; for (j < name.len) { if (entry[j] == 0u8) { matched = false; break; }; if (entry[j] != name[j]) { matched = false; break; }; j += 1; }; if (matched) { if (entry[name.len] == 61u8) { // '=' let val: *u8 = entry + ((name.len + 1): u64); let n: i32 = 0; for (val[n] != 0u8) { n += 1; }; let r: str; r.ptr = val; r.len = n; return r; }; }; i += 1; }; return; }; // ---- stat / lstat / fstat / exists ----------------------------------- // // Ports of Hare's stat family (ref/hare/fs/fs.ha:172,196 + // ref/hare/sys/+linux/stat.ha:24-58). The Hare surface returns // `filestat` by value; ww's cgreturn ABI tops out at 24B today (see // STATUS task #21) and filestat is 80B, so [[stat]] / [[lstat]] / // [[fstat]] take an out-parameter and return `(void | oserror)`. // Re-evaluate the by-value shape when full sret lands. // // `filestat`, `mode`, and `stat_mask` live in lib/os because ww has // no lib/fs yet; Hare puts them in `fs::`. These types graduate to // lib/fs when that module ships — callers should expect a future // re-export. // // Underlying syscall is SYS_newfstatat (262), which unifies // stat/lstat/fstat through the `dirfd + flags` triple: // stat = newfstatat(AT_FDCWD, path, 0) // lstat = newfstatat(AT_FDCWD, path, AT_SYMLINK_NOFOLLOW) // fstat = newfstatat(fd, "", AT_EMPTY_PATH) // Avoiding SYS_statx — its 256B variable layout would buy btime, // but Hare's filestat doesn't expose btime either, so we stay on // the simpler 144B kernel struct. // fstatat(2) flag values. Linux constants from . // Names mirror Hare's ref/hare/sys/+linux/types.ha:45-51 (capital- // AT_ prefix, top-level `def`s). export def AT_FDCWD: i32 = -100; export def AT_SYMLINK_NOFOLLOW: i32 = 256; // 0x100 export def AT_EMPTY_PATH: i32 = 4096; // 0x1000 // mode — file-mode bits. Mirrors Hare's fs::mode (ref/hare/fs/ // types.ha:63). Permission bits are the standard Unix octal subset; // type bits live in the S_IFMT = 0o170000 region. Type-bit test: // // let t: u32 = (fi.mode as u32) & 61440u32; // 0o170000 mask // if (t == os.mode.DIR as u32) { /* directory */ }; // // Numeric values are octal in Hare's source; ww has no octal // literals so they're written as decimal with the octal in a // trailing comment. export type mode = enum u32 { // permission bits USER_RWX = 448u32, // 0o700 USER_RW = 384u32, // 0o600 USER_RX = 320u32, // 0o500 USER_R = 256u32, // 0o400 USER_W = 128u32, // 0o200 USER_X = 64u32, // 0o100 GROUP_RWX = 56u32, // 0o070 GROUP_RW = 48u32, // 0o060 GROUP_RX = 40u32, // 0o050 GROUP_R = 32u32, // 0o040 GROUP_W = 16u32, // 0o020 GROUP_X = 8u32, // 0o010 OTHER_RWX = 7u32, // 0o007 OTHER_RW = 6u32, // 0o006 OTHER_RX = 5u32, // 0o005 OTHER_R = 4u32, // 0o004 OTHER_W = 2u32, // 0o002 OTHER_X = 1u32, // 0o001 SETUID = 2048u32, // 0o4000 SETGID = 1024u32, // 0o2000 STICKY = 512u32, // 0o1000 // file-type bits (S_IFMT mask = 0o170000 = 61440) UNKNOWN = 0u32, FIFO = 4096u32, // 0o010000 CHR = 8192u32, // 0o020000 DIR = 16384u32, // 0o040000 BLK = 24576u32, // 0o060000 REG = 32768u32, // 0o100000 LINK = 40960u32, // 0o120000 SOCK = 49152u32, // 0o140000 }; // stat_mask — which filestat fields the call populated. Mirrors // Hare's fs::stat_mask (ref/hare/fs/types.ha:129). newfstatat fills // every field, so [[stat]] / [[lstat]] / [[fstat]] always set all // seven bits OR-folded (see [[fillfilestat]]); per-bit testing is // the documented sparse-backend pattern (cf. Hare's fs::fs network // backends that only populate mtime+size). export type stat_mask = enum u32 { UID = 1u32, GID = 2u32, SIZE = 4u32, INODE = 8u32, ATIME = 16u32, MTIME = 32u32, CTIME = 64u32, }; // filestat — Hare's fs::filestat (ref/hare/fs/types.ha:141). 80 // bytes. Times are time.instant (ref/hare/time/instant.ha:9) — the // canonical Hare shape. See module-header note re: graduation to // lib/fs. export type filestat = struct { mask: stat_mask, // 0 (4) mode: mode, // 4 (4) uid: u32, // 8 (4) gid: u32, // 12 (4) sz: u64, // 16 (8) inode: u64, // 24 (8) atime: time.instant, // 32 (16) mtime: time.instant, // 48 (16) ctime: time.instant, // 64 (16) — ends at 80 }; // kstat — x86_64 kernel `struct stat` layout. Mirrors // arch/x86/include/uapi/asm/stat.h (`__kernel_ulong_t`-keyed // fields). 144 bytes. Module-internal; SYS_newfstatat writes into // this buffer and the public stat fns then copy the bits into the // Hare-shaped [[filestat]]. type kstat = struct { dev: u64, // 0 ino: u64, // 8 nlink: u64, // 16 mode: u32, // 24 uid: u32, // 28 gid: u32, // 32 pad0: u32, // 36 rdev: u64, // 40 sz: i64, // 48 blksize: i64, // 56 blocks: i64, // 64 atime_sec: i64, // 72 atime_nsec: i64, // 80 mtime_sec: i64, // 88 mtime_nsec: i64, // 96 ctime_sec: i64, // 104 ctime_nsec: i64, // 112 unused0: i64, // 120 unused1: i64, // 128 unused2: i64, // 136 — ends at 144 }; // emptypath — single-NUL byte used as the `pathname` arg to // newfstatat with AT_EMPTY_PATH. The kernel requires a non-NULL // pointer to a zero-length C string, NOT a null pointer. Bytes are // read-only from the kernel's view; ww has no module-level const so // this is a writable `let`. let emptypath: [1]u8 = [0u8]; // fillfilestat — copy a 144B kstat into the 80B Hare-shaped // filestat. Internal helper used by all three public entry points. // Mirrors Hare's st_to_filestat (ref/hare/os/+linux/dirfdfs.ha:259): // newfstatat populates every field, so the mask is the OR-fold of // all seven Hare stat_mask bits. fn fillfilestat(out: *filestat, k: *kstat) void = { out.mask = stat_mask.UID | stat_mask.GID | stat_mask.SIZE | stat_mask.INODE | stat_mask.ATIME | stat_mask.MTIME | stat_mask.CTIME; out.mode = k.mode: mode; out.uid = k.uid; out.gid = k.gid; out.sz = k.sz: u64; out.inode = k.ino; out.atime.sec = k.atime_sec; out.atime.nsec = k.atime_nsec; out.mtime.sec = k.mtime_sec; out.mtime.nsec = k.mtime_nsec; out.ctime.sec = k.ctime_sec; out.ctime.nsec = k.ctime_nsec; }; // stat — fill *out with metadata for `path`. Follows symlinks. // Returns ENAMETOOLONG (-36) as `oserror` if the path overflows // PATH_MAX. // // Mirrors Hare's sys::stat (ref/hare/sys/+linux/stat.ha:51) modulo // the out-param shape forced by the cgreturn 24B cap. Note: Hare's // higher-level fs::stat (ref/hare/fs/fs.ha:172) instead has lstat // semantics — we follow sys::stat's POSIX-stat behavior here. export fn stat(out: *filestat, path: str) (void | oserror) = { let cp: *u8 = kpath(path); if (cp == nil: *u8) { return -36i64: oserror; }; let k: kstat; let r: i64 = syscall4(nr.NEWFSTATAT, AT_FDCWD: i64, cp: i64, (&k): i64, 0i64); if (r < 0) { return r: oserror; }; fillfilestat(out, &k); }; // lstat — like [[stat]] but does NOT follow a terminal symlink. // Mirrors Hare's sys::lstat (ref/hare/sys/+linux/stat.ha:57). export fn lstat(out: *filestat, path: str) (void | oserror) = { let cp: *u8 = kpath(path); if (cp == nil: *u8) { return -36i64: oserror; }; let k: kstat; let r: i64 = syscall4(nr.NEWFSTATAT, AT_FDCWD: i64, cp: i64, (&k): i64, AT_SYMLINK_NOFOLLOW: i64); if (r < 0) { return r: oserror; }; fillfilestat(out, &k); }; // fstat — like [[stat]] but addresses the file by fd. Uses // newfstatat(fd, "", AT_EMPTY_PATH); the kernel resolves the fd // directly. Mirrors Hare's sys::fstat (ref/hare/sys/+linux/stat.ha:54). export fn fstat(out: *filestat, fd: i32) (void | oserror) = { let k: kstat; let r: i64 = syscall4(nr.NEWFSTATAT, fd: i64, (&emptypath[0]): i64, (&k): i64, AT_EMPTY_PATH: i64); if (r < 0) { return r: oserror; }; fillfilestat(out, &k); }; // exists — true if `path` resolves to anything (regular file, // directory, symlink, ...). Stat-shaped (Hare's `fs::exists`, // ref/hare/fs/fs.ha:196) — no separate syscall. Symlinks are // followed; a dangling symlink is `false`. ENAMETOOLONG is // swallowed as `false` — Hare's os::exists doc says "true if a // node exists at the given path, or false if not." // // Race warning: prefer "open and handle the error" over "exists // then open" in real code (Hare's docstring carries the same // note). The race is unavoidable in this shape. // // Goes through SYS_newfstatat directly rather than match'ing on // [[stat]]'s `(void | oserror)` return. Functionally identical; // the direct shape sidesteps a cstage/wwstage cgen disagreement // on the slot size of `(void | oserror)` (cstage 16B, wwstage 24B // — same class as STATUS #22, surfaced first time a match on this // shape combined with an 80B local-struct local frame). Use the // match shape once #22 lands. export fn exists(path: str) bool = { let cp: *u8 = kpath(path); if (cp == nil: *u8) { return false; }; let k: kstat; let r: i64 = syscall4(nr.NEWFSTATAT, AT_FDCWD: i64, cp: i64, (&k): i64, 0i64); return r >= 0i64; }; // rt — runtime primitives exposed to ww programs. // Mirrors Hare's rt:: module placement (ref/hare/rt/). package rt; // malloc — mmap-backed page allocator. Untyped: `malloc(n)` returns a // `*void`; callers cast to the target type. Diverges from Hare: Hare // exposes `alloc` / `free` as typed language builtins that the // compiler lowers to rt::malloc/rt::free; ww has no such builtins, // so the rt-symbol surface is exposed directly. Stdlib callers that // need a typed allocation pattern wrap this with a cast plus a stored // capacity (see [[strings.dup]], [[memio.dynamic]]). // // OOM: rt_malloc is a bare mmap(MAP_ANON|MAP_PRIVATE) wrapper with no // error path. The raw Linux mmap syscall returns a negative errno cast // to `*void` on failure (e.g. `(void*)-12` for ENOMEM); the // `MAP_FAILED` (`(void*)-1`) value is a libc-wrapper convention that // rt_malloc doesn't apply. Neither `== nil` nor `== (void*)-1` catches // it; any deref of such a return faults. Today the stdlib does not // check; OOM faults on first dereference. A typed fallible variant is // a future task (task #39). ref/hare/rt/malloc.ha:27. @symbol("rt_malloc") export fn malloc(n: u64) *void; // types — integer limits. Mirrors Hare's types::limits (I8_MAX, …) // platform-fixed for amd64. Numeric helpers live in lib/math, matching // Hare's split between types::limits and math::. package types; def I8_MAX: i8 = 127; def I16_MAX: i16 = 32767; def I32_MAX: i32 = 2147483647; def I64_MAX: i64 = 9223372036854775807; def I8_MIN: i8 = -128; def I16_MIN: i16 = -32768; def I32_MIN: i32 = -2147483648; def I64_MIN: i64 = -9223372036854775808; def U8_MAX: u8 = 255; def U16_MAX: u16 = 65535; def U32_MAX: u32 = 4294967295; def U64_MAX: u64 = 18446744073709551615; def U8_MIN: u8 = 0; def U16_MIN: u16 = 0; def U32_MIN: u32 = 0; def U64_MIN: u64 = 0; // size is 8B on amd64; no cast needed (size ∈ unsigned class per #113). def SIZE_MIN: size = U64_MIN; def SIZE_MAX: size = U64_MAX; // uintptr not in the unsigned class, so the cast is required (Hare's form). def UINTPTR_MIN: uintptr = U64_MIN: uintptr; def UINTPTR_MAX: uintptr = U64_MAX: uintptr; def RUNE_MIN: rune = '\0'; // bytes — slice operations over []u8. Mirrors Hare's bytes module // (ref/hare/bytes/) for the in-tree subset: search/equality/prefix // helpers used by lib/encoding, lib/bufio, lib/memio. // // Documented divergences from Hare: // - index_slice / rindex_slice use naive O(n·m); Hare specialises // 2/3/4-byte needles and falls back to two_way (Crochemore-Perrin) // for longer (ref/hare/bytes/index.ha:61, ref/hare/bytes/two_way.ha). // Correctness equivalent. // - peek_token dispatches index/rindex by branching on `reverse` // rather than a function-pointer `ifunc` (ref/hare/bytes/tokenize.ha:97). // ww has no fn pointers in scope yet — same pattern as lib/strings // `move`. Outwardly identical. // - tokenize / rtokenize zero the `delim` field on the constructed // tokenizer when `in` is empty, rather than mutating the variadic // param before the struct write (ref/hare/bytes/tokenize.ha:26-28). // Semantically identical; the variadic param is borrowed and // captured-by-value into the struct, so mutating either side // yields the same observable state. package bytes; import os; import types; // done — iteration sentinel returned by next_token / peek_token at // end-of-input. ref/hare/bytes/tokenize.ha uses the built-in `done` // token; ww spells it per-package the same way lib/encoding/utf8 does // (utf8.ww:36). Plain `void` (not `!void`): continuation signal. export type done = void; // tokenizer — cursor over an input slice. Layout mirrors // ref/hare/bytes/tokenize.ha:6-10. `p` is the cached peek-position; // I64_MAX (forward) / I64_MIN (reverse) are the unprimed sentinels. // p < 0 also identifies a reverse-direction iterator. export type tokenizer = struct { in: []u8, delim: []u8, p: i64, }; // equal — true iff `a` and `b` have the same length and contents. // ref/hare/bytes/equal.ha:9. export fn equal(a: []u8, b: []u8) bool = { if (a.len != b.len) { return false; }; let i: i32 = 0; for (i < a.len) { if (a[i] != b[i]) { return false; }; i += 1; }; return true; }; // index — first offset of `needle` in `s`. u8 needle scans for the // byte; []u8 needle scans for the substring. void if absent. // ref/hare/bytes/index.ha:6. export fn index(s: []u8, needle: (u8 | []u8)) (i32 | void) = { match (needle) { case let c: u8 => { let i: i32 = 0; for (i < s.len) { if (s[i] == c) { return i; }; i += 1; }; return; }; case let sub: []u8 => { if (sub.len == 0) { return 0; }; if (sub.len > s.len) { return; }; let last: i32 = s.len - sub.len; let i: i32 = 0; for (i <= last) { let j: i32 = 0; let ok: bool = true; for (j < sub.len) { if (s[i + j] != sub[j]) { ok = false; j = sub.len; } else { j += 1; }; }; if (ok) { return i; }; i += 1; }; return; }; }; return; }; // rindex — last offset of `needle` in `s`. Empty []u8 needle returns // s.len (ref/hare/bytes/index.ha:103 — Hare's loop yields r-0 at i=0). // ref/hare/bytes/index.ha:86. export fn rindex(s: []u8, needle: (u8 | []u8)) (i32 | void) = { match (needle) { case let c: u8 => { let i: i32 = s.len - 1; for (i >= 0) { if (s[i] == c) { return i; }; i -= 1; }; return; }; case let sub: []u8 => { if (sub.len == 0) { return s.len; }; if (sub.len > s.len) { return; }; let i: i32 = s.len - sub.len; for (i >= 0) { let j: i32 = 0; let ok: bool = true; for (j < sub.len) { if (s[i + j] != sub[j]) { ok = false; j = sub.len; } else { j += 1; }; }; if (ok) { return i; }; i -= 1; }; return; }; }; return; }; // contains — true iff any of `needles` (byte or sub-slice) appears in `s`. // ref/hare/bytes/contains.ha:6. export fn contains(s: []u8, needles: (u8 | []u8)...) bool = { let i: i32 = 0; for (i < needles.len) { match (needles[i]) { case let b: u8 => { match (index(s, b)) { case let bo: i32 => return true; case void => void; }; }; case let n: []u8 => { match (index(s, n)) { case let bo: i32 => return true; case void => void; }; }; }; i += 1; }; return false; }; // ltrim — borrowed view of `in` with leading bytes in `trim` stripped. // `trim` must be non-empty. ref/hare/bytes/trim.ha:7. export fn ltrim(in: []u8, trim: u8...) []u8 = { os.assert(trim.len > 0, "bytes.ltrim called with empty trim set"); let i: i32 = 0; for (i < in.len && contains(trim, in[i])) { i += 1; }; let r: []u8; r.ptr = in.ptr + (i: u64); r.len = in.len - i; r.cap = r.len; return r; }; // rtrim — borrowed view of `in` with trailing bytes in `trim` stripped. // `trim` must be non-empty. ref/hare/bytes/trim.ha:17. Hare's loop uses // `size` underflow at i==0 to terminate; ww indices are signed i32, so // the equivalent termination is spelled `i >= 0` explicitly. export fn rtrim(in: []u8, trim: u8...) []u8 = { os.assert(trim.len > 0, "bytes.rtrim called with empty trim set"); let i: i32 = in.len - 1; for (i >= 0 && contains(trim, in[i])) { i -= 1; }; let r: []u8; r.ptr = in.ptr; r.len = i + 1; r.cap = r.len; return r; }; // trim — borrowed view of `in` with both ends in `trim` stripped. // ref/hare/bytes/trim.ha:27. export fn trim(in: []u8, trim: u8...) []u8 = { return ltrim(rtrim(in, trim...), trim...); }; // hasprefix — true iff `s` starts with `pre`. // ref/hare/bytes/contains.ha:21. export fn hasprefix(s: []u8, pre: []u8) bool = { if (pre.len > s.len) { return false; }; let i: i32 = 0; for (i < pre.len) { if (s[i] != pre[i]) { return false; }; i += 1; }; return true; }; // hassuffix — true iff `s` ends with `suf`. // ref/hare/bytes/contains.ha:35. export fn hassuffix(s: []u8, suf: []u8) bool = { if (suf.len > s.len) { return false; }; let off: i32 = s.len - suf.len; let i: i32 = 0; for (i < suf.len) { if (s[off + i] != suf[i]) { return false; }; i += 1; }; return true; }; // reverse — in-place reverse of `s`. ref/hare/bytes/reverse.ha:5. export fn reverse(s: []u8) void = { let i: i32 = 0; let j: i32 = s.len - 1; for (i < j) { let t: u8 = s[i]; s[i] = s[j]; s[j] = t; i += 1; j -= 1; }; }; // zero — set every byte of `s` to 0. ref/hare/bytes/zero.ha:5. export fn zero(s: []u8) void = { let i: i32 = 0; for (i < s.len) { s[i] = 0u8; i += 1; }; }; // tokenize — iterator yielding tokens from `in` separated by any byte // in `delim`. Leading / trailing / adjacent delims yield empty tokens. // `delim` is borrowed; caller keeps it valid for the tokenizer's // lifetime. ref/hare/bytes/tokenize.ha:22. export fn tokenize(in: []u8, delim: u8...) tokenizer = { os.assert(delim.len > 0, "bytes.tokenize called with empty slice"); os.assert((in.len: i64) < types.I64_MAX, "bytes.tokenize: input length exceeds I64_MAX"); let t: tokenizer; t.in = in; t.delim = delim; if (in.len == 0) { t.delim.len = 0; t.delim.cap = 0; }; t.p = types.I64_MAX; return t; }; // rtokenize — reverse-direction tokenize. First next_token yields the // last token, last next_token yields the first. ref/hare/bytes/tokenize.ha:40. export fn rtokenize(in: []u8, delim: u8...) tokenizer = { os.assert(delim.len > 0, "bytes.rtokenize called with empty slice"); os.assert((in.len: i64) < types.I64_MAX, "bytes.rtokenize: input length exceeds I64_MAX"); let t: tokenizer; t.in = in; t.delim = delim; if (in.len == 0) { t.delim.len = 0; t.delim.cap = 0; }; t.p = types.I64_MIN; return t; }; // peek_token — next token without advancing the cursor. Returns done // once `s.delim` has been zeroed by a prior past-end next_token. // ref/hare/bytes/tokenize.ha:91. export fn peek_token(s: *tokenizer) ([]u8 | done) = { if (s.delim.len == 0) { let d: done; return d; }; let reverse: bool = s.p < 0i64; let known: bool = false; if (reverse) { if (s.p != types.I64_MIN) { known = true; }; } else { if (s.p != types.I64_MAX) { known = true; }; }; if (!known) { let i: i64 = types.I64_MAX; if (reverse) { i = types.I64_MIN; }; let dlen: i64 = 0i64; let slen: i64 = s.in.len: i64; let k: i32 = 0; for (k < s.delim.len) { let d: u8 = s.delim[k]; let ix_found: bool = false; let ix_val: i32 = 0; if (reverse) { match (rindex(s.in, d)) { case let v: i32 => { ix_found = true; ix_val = v; }; case void => void; }; } else { match (index(s.in, d)) { case let v: i32 => { ix_found = true; ix_val = v; }; case void => void; }; }; if (ix_found) { if (!reverse) { if ((ix_val: i64) < i) { i = ix_val: i64; dlen = 1i64; }; } else { if ((ix_val: i64) > i) { i = ix_val: i64; dlen = 1i64; }; }; } else { if (!reverse) { if (slen < i) { i = slen; }; } else { if (0i64 > i) { i = 0i64; }; }; }; k += 1; }; if (reverse) { if (i == slen) { s.p = -(slen + 1i64); } else { s.p = i + dlen - slen - 1i64; }; } else { s.p = i; }; }; let r: []u8; if (reverse) { let start: i32 = (s.in.len: i64 + s.p + 1i64): i32; r.ptr = s.in.ptr + (start: u64); r.len = s.in.len - start; r.cap = r.len; } else { let end: i32 = s.p: i32; r.ptr = s.in.ptr; r.len = end; r.cap = end; }; return r; }; // next_token — current token, then advance past it and the delim. // Once the input is exhausted, returns done and zeros `s.delim` so // subsequent peeks short-circuit. ref/hare/bytes/tokenize.ha:59. export fn next_token(s: *tokenizer) ([]u8 | done) = { let b: []u8; match (peek_token(s)) { case let v: []u8 => { b = v; }; case done => { let d: done; return d; }; }; let slen: i64 = s.in.len: i64; let reverse: bool = s.p < 0i64; if (reverse) { if (slen + s.p + 1i64 == 0i64) { s.delim.len = 0; s.delim.cap = 0; s.in.len = 0; s.in.cap = 0; } else { let end: i32 = (slen + s.p + 1i64 - 1i64): i32; s.in.len = end; s.in.cap = end; }; s.p = types.I64_MIN; } else { if (s.p == slen) { s.delim.len = 0; s.delim.cap = 0; s.in.len = 0; s.in.cap = 0; } else { let adv: u64 = (s.p: u64) + 1u64; let adv_i32: i32 = (s.p: i32) + 1; s.in.ptr = s.in.ptr + adv; s.in.len = s.in.len - adv_i32; s.in.cap = s.in.cap - adv_i32; }; s.p = types.I64_MAX; }; return b; }; // remaining_tokens — the unconsumed portion of `s.in`. Read-only view. // ref/hare/bytes/tokenize.ha:145. export fn remaining_tokens(s: *tokenizer) []u8 = { return s.in; }; // rt_ensure is the runtime slice-growth helper invoked by the // `append(s, v)` builtin. We bind it directly because the builtin's // expansion stores only 8 bytes of the new element (cgen emits a // single MOVQ), losing the .len/.cap fields of a []u8 element (24B). // Mirrors the same workaround in lib/shlex.shlex (appendstr, 16B) and // lib/getopt.getopt (appendoption, 24B); collapses in one go when the // append builtin learns to store the full element width. @symbol("rt_ensure") fn rtensure(s: *void, membsz: u64) void; // appendslice — grow `*slice` by one and store `item` (24B). Mirror // of [[shlex.appendstr]] / [[getopt.appendoption]]. Bypasses the // `append` builtin's first-8B-only-store gap for a slice-element. fn appendslice(slice: *[][]u8, item: []u8) void = { let newlen: i32 = slice.len + 1; slice.len = newlen; rtensure(slice: *void, 24u64); let dst: *[]u8 = &slice.ptr[newlen - 1]; dst.ptr = item.ptr; dst.len = item.len; dst.cap = item.cap; }; // splitn — split `in` on any byte in `delim`, returning up to `n` // tokens via forward iteration. The trailing slot (when more than // `n - 1` tokens exist) holds the unconsumed remainder. // // The caller frees the returned slice via // `os.free(r.ptr: *void, (r.cap: u64) * 24u64)`. Element bytes are // borrowed from `in`. // // Hare's `([][]u8 | nomem)` collapses to `[][]u8` here: ww os.alloc // has no recoverable failure path. Same precedent as // shlex.split / getopt.tryparse. // // ref/hare/bytes/tokenize.ha:156. export fn splitn(in: []u8, delim: []u8, n: i32) [][]u8 = { os.assert(delim.len > 0, "bytes.splitn must not be called with an empty delimiter"); let toks: [][]u8; toks.ptr = nil: *[]u8; toks.len = 0; toks.cap = 0; let tok: tokenizer = tokenize(in, delim...); let i: i32 = 0; for (i < n - 1) { match (next_token(&tok)) { case let s: []u8 => { appendslice(&toks, s); }; case done => { return toks; }; }; i += 1; }; match (peek_token(&tok)) { case done => void; case let pk: []u8 => { let r: []u8 = remaining_tokens(&tok); appendslice(&toks, r); }; }; return toks; }; // rsplitn — reverse-direction counterpart to [[splitn]]: tokens are // collected from the end of `in`. The trailing slot holds the // unconsumed prefix (everything before the n-th-from-last delim hit). // // When the input has fewer than n tokens, the `done` short-circuit // returns toks UN-reversed (in last-token-first order). Mirrors Hare // at ref/hare/bytes/tokenize.ha:196-199 where the in-place reverse // step is gated behind the n-1 loop running to completion. Only the // "loop ran to completion AND peek saw a remainder" path applies the // reverse; both early-exit paths skip it. // // ref/hare/bytes/tokenize.ha:186. export fn rsplitn(in: []u8, delim: []u8, n: i32) [][]u8 = { os.assert(delim.len > 0, "bytes.rsplitn called with empty delimiter"); let toks: [][]u8; toks.ptr = nil: *[]u8; toks.len = 0; toks.cap = 0; let tok: tokenizer = rtokenize(in, delim...); let i: i32 = 0; for (i < n - 1) { match (next_token(&tok)) { case let s: []u8 => { appendslice(&toks, s); }; case done => { return toks; }; }; i += 1; }; match (peek_token(&tok)) { case done => void; case let pk: []u8 => { let r: []u8 = remaining_tokens(&tok); appendslice(&toks, r); }; }; // In-place reverse so callers see argv-order, matching Hare // (ref/hare/bytes/tokenize.ha:207). Element copy is field-wise // through `*[]u8` because `toks[i] = toks[j]` (full 24B slice // store) lands in the multi-word-store gap noted at // cmd/w6c/cgen.c:6515-6523. let a: i32 = 0; let b: i32 = toks.len - 1; for (a < b) { let pa: *[]u8 = &toks.ptr[a]; let pb: *[]u8 = &toks.ptr[b]; let tp: *u8 = pa.ptr; let tl: i32 = pa.len; let tc: i32 = pa.cap; pa.ptr = pb.ptr; pa.len = pb.len; pa.cap = pb.cap; pb.ptr = tp; pb.len = tl; pb.cap = tc; a += 1; b -= 1; }; return toks; }; // split — full split of `in` on `delim` (no token cap). Mirrors // `splitn(in, delim, types::SIZE_MAX)`. ww uses `types.I32_MAX` // because the index type is i32 (lib/CLAUDE.md). // // ref/hare/bytes/tokenize.ha:225. export fn split(in: []u8, delim: []u8) [][]u8 = { return splitn(in, delim, types.I32_MAX); }; // encoding/utf8 — UTF-8 encode/decode. Hare port; see // ref/hare/encoding/utf8/{types,rune,encode,decode,decodetable}.ha. // // The decoder is Hoehrmann's branchless DFA, originally published // at . Hare's // ref/hare/encoding/utf8/decodetable.ha:4 restructures Hoehrmann's // flat table to 2D `[8][256]i8`; we flatten back to 1D `[2048]i8` // because ww cgen does not yet ship 2D arrays (task #20). // // Surface deviation from ref/hare/encoding/utf8: // // - `encoderune` takes a caller-supplied `out: []u8` and returns // the byte count. Hare returns a slice into a `static let buf`; // the caller-buffer form mirrors lib/encoding/hex.encode and // skips the static-buffer/slice-return pair. // // Deferred (no in-tree caller, follow-up tasks): `appendrune`, // `strencode`, `strdecode`. Hare's string-iteration surface // (`strings::iterator`/`strings::next` — ref/hare/strings/iter.ha) // lives under lib/strings, not here. // ref/hare/encoding/utf8/types.ha:6 — incomplete trailing sequence. // Plain `void` (not `!void`): a truncated tail is a control-flow // signal, not an error caller can ignore. package utf8; export type more = void; // ref/hare/encoding/utf8/types.ha:9 — invalid UTF-8 sequence. export type invalid = !void; // ref/hare/encoding/utf8/types.ha:12 — fixed message; `invalid` carries // no payload, so the rendering is constant. export fn strerror(err: invalid) str = { return "Invalid UTF-8"; }; // `done` is not a built-in singleton in ww (Hare ships it as part of // the type system). Plain `void` (not `!void`): end-of-input is a // continuation signal, not an error. lib/io spells its EOF the same // way (lib/io/io.ww:8-11). export type done = void; // ref/hare/encoding/utf8/decodetable.ha:4 — Hoehrmann's UTF-8 DFA, // flat 1D `[2048]i8`. Layout: dfa[state*256 + byte] gives the next // state (>0), the accept transition (0 — emit rune), or invalid (-1). // Values match ref/hare/encoding/utf8/decodetable.ha verbatim. let dfa: [2048]i8 = [ // state 0 — initial byte: ASCII accepts (0), continuation/illegal // byte rejects (-1), legal multibyte start emits a state. 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 3i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 4i8, 2i8, 2i8, 5i8, 6i8, 6i8, 6i8, 7i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, // state 1 — expecting one continuation byte (0x80..0xBF). -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, 0i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, // state 2 — expecting one continuation byte (full 0x80..0xBF range). -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, // state 3 — first byte was 0xE0; continuation byte must be 0xA0..0xBF // (rejects overlong 3-byte encodings). -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, // state 4 — first byte was 0xED; continuation byte must be 0x80..0x9F // (rejects UTF-16 surrogate codepoints U+D800..U+DFFF). -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, 1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, // state 5 — first byte was 0xF0; continuation byte must be 0x90..0xBF // (rejects overlong 4-byte encodings). -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, // state 6 — middle continuation byte of a 4-byte sequence (0x80..0xBF). -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, // state 7 — first byte was 0xF4; continuation byte must be 0x80..0x8F // (rejects codepoints above U+10FFFF). -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, 2i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, -1i8, ]; // ref/hare/encoding/utf8/decode.ha:17 — payload-bit masks. Hare's // [2][8]u8 flattened to 1D [16]u8; row 0 (offsets 0..7) is the // continuation-byte mask (always 0x3F), row 1 (offsets 8..15) is the // initial-byte payload mask indexed by the transition class. let masks: [16]u8 = [ 0x3fu8, 0x3fu8, 0x3fu8, 0x3fu8, 0x3fu8, 0x3fu8, 0x3fu8, 0x3fu8, 0x7fu8, 0x1fu8, 0x0fu8, 0x0fu8, 0x0fu8, 0x07u8, 0x07u8, 0x07u8, ]; // ref/hare/encoding/utf8/decode.ha:6 — incremental decoder state. export type decoder = struct { offs: i32, src: []u8, }; // ref/hare/encoding/utf8/decode.ha:12. export fn decode(src: []u8) decoder = { let d: decoder; d.src = src; d.offs = 0; return d; }; // ref/hare/encoding/utf8/decode.ha:27. Returns the next rune from a // decoder, `done` at end-of-input, `more` on truncated trailing // sequence, `invalid` on malformed input (overlong, surrogate, // out-of-range, bad continuation). // // Algorithm is verbatim Hoehrmann (see file header). One structural // rewrite: Hare encodes the "initial vs continuation byte" decision // as the branchless `(state - 1): uint >> 31`, which assumes a 32-bit // uint. ww's uint is 64-bit (cmd/wcc/type.c:58), so the shift answer // would be 0x1_ffff_ffff rather than 1. We spell the same predicate // with an explicit conditional. export fn next(d: *decoder) (rune | done | more | invalid) = { if (d.offs == d.src.len) { let dn: done; return dn; }; let nx: i32 = 0; let state: i32 = 0; let r: u32 = 0u32; for (d.offs < d.src.len) { let b: u8 = d.src[d.offs]; let bi: i32 = b: i32; let row: i32 = state * 256 + bi; let cell: i8 = dfa[row]; nx = cell: i32; let mi: i32 = 0; if (state == 0) { mi = 1; }; let m: u8 = masks[mi * 8 + (nx & 7)]; r = (r << 6u32) | ((b & m): u32); if (nx <= 0) { d.offs += 1; if (nx == 0) { return r: rune; }; let e: invalid; return e; }; state = nx; d.offs += 1; }; let mr: more; return mr; }; // ref/hare/encoding/utf8/decode.ha:207. Strict whole-input check. // The hot path: tight DFA loop, no rune assembly. Bails the moment // the table returns -1 so malformed inputs don't pay for the rest // of the buffer. export fn validate(src: []u8) (void | invalid) = { let state: i32 = 0; let i: i32 = 0; for (i < src.len) { if (state < 0) { break; }; let bi: i32 = src[i]: i32; let cell: i8 = dfa[state * 256 + bi]; state = cell: i32; i += 1; }; if (state == 0) { return; }; let e: invalid; return e; }; // ref/hare/encoding/utf8/rune.ha:5. Encoded byte length of `r` as // UTF-8. Callers in ww use this to size the buffer they hand to // [[encoderune]]; values >0x10FFFF or negative are not legal Unicode // codepoints and Hare aborts on them in `encoderune` itself, so we // keep `runesz` infallible (matches Hare). export fn runesz(r: rune) i32 = { let ch: u32 = r: u32; if (ch < 128u32) { return 1; }; if (ch < 2048u32) { return 2; }; if (ch < 65536u32) { return 3; }; return 4; }; // ref/hare/encoding/utf8/rune.ha:15. Expected byte length of the // codepoint that starts with `c`, or `invalid` if `c` cannot start // a legal UTF-8 sequence. Constants written in decimal because ww // doesn't accept Hare's `0b1000_0000` binary syntax: 0x80=128, // 0xC2=194, 0xE0=224, 0xF0=240, 0xF8=248. export fn utf8sz(c: u8) (i32 | invalid) = { if (c < 128u8) { return 1; }; if (c < 194u8) { let e: invalid; return e; }; if (c >= 248u8) { let e: invalid; return e; }; if (c < 224u8) { return 2; }; if (c < 240u8) { return 3; }; return 4; }; // ref/hare/encoding/utf8/encode.ha:7. Encode `r` into `out` (caller- // supplied; must hold at least [[runesz]](r) bytes) and return the // byte count. ABORT if `r` is a UTF-16 surrogate or above U+10FFFF — // same precondition Hare asserts at ref/hare/encoding/utf8/encode.ha:9. // // Surface deviation: Hare returns `[]u8` (slice into a static buf). // ww uses the caller-buffer form (matches lib/encoding/hex.encode); // caller can reuse a [4]u8 stack scratch across encodes. export fn encoderune(out: []u8, r: rune) i32 = { let ch: u32 = r: u32; if (ch >= 0xD800u32) { if (ch <= 0xDFFFu32) { abort("utf8.encoderune: surrogate codepoint"); }; }; if (ch > 0x10FFFFu32) { abort("utf8.encoderune: codepoint > U+10FFFF"); }; let n: i32 = 0; let first: u8 = 0u8; if (ch < 0x80u32) { first = 0u8; n = 1; } else if (ch < 0x800u32) { first = 0xC0u8; n = 2; } else if (ch < 0x10000u32) { first = 0xE0u8; n = 3; } else { first = 0xF0u8; n = 4; }; let v: u32 = ch; let i: i32 = n - 1; for (i > 0) { out[i] = ((v: u8) & 0x3Fu8) | 0x80u8; v = v >> 6u32; i -= 1; }; out[0] = (v: u8) | first; return n; }; // ref/hare/encoding/utf8/decode.ha:52. Walks back from `d.offs` to a // byte that could start a codepoint (state-0 dfa cell != -1), re-decodes // forward from there, and confirms the forward decode lands back at the // original offset. Returns `done` at start-of-input; `invalid` if no // initial byte appears within 4 steps (no legal UTF-8 codepoint exceeds // 4 bytes), if the forward decode returns `more`/`invalid`, or if it // lands at a different offset than expected. Returns `more` when the // walk reaches byte 0 without finding any initial byte. // // Hare's `for (d.offs < len(d.src); d.offs -= 1)` relies on size_t // wrap-around to exit when offs underflows past 0; ww's offs is i32, // so we spell the same exit as `d.offs >= 0`. Hare's `defer d.offs = t` // is inlined in each match arm — ww has no defer. export fn prev(d: *decoder) (rune | done | more | invalid) = { if (d.offs == 0) { let dn: done; return dn; }; let n: i32 = d.offs; d.offs -= 1; for (d.offs >= 0) { let b: u8 = d.src[d.offs]; let bi: i32 = b: i32; let cell: i8 = dfa[bi]; if (cell: i32 != -1) { let t: i32 = d.offs; match (next(d)) { case let r: rune => { let landed: i32 = d.offs; d.offs = t; if (landed != n) { let e: invalid; return e; }; return r; }; case let dn: done => { d.offs = t; let e: invalid; return e; }; case let m: more => { d.offs = t; let e: invalid; return e; }; case let e: invalid => { d.offs = t; let e2: invalid; return e2; }; }; }; if (n - d.offs == 4) { let e: invalid; return e; }; d.offs -= 1; }; let mr: more; return mr; }; // ref/hare/encoding/utf8/decode.ha:74. Borrowed view of the bytes from // the decoder's current position to the end of its source. export fn remaining(d: *decoder) []u8 = { let r: []u8; r.ptr = d.src.ptr + (d.offs: u64); r.len = d.src.len - d.offs; r.cap = d.src.len - d.offs; return r; }; // ref/hare/encoding/utf8/decode.ha:80. Borrowed view of the bytes // between two decoders' positions. Precondition (Hare asserts both): // the decoders share the same source, and `begin.offs <= end.offs`. export fn slice(begin: *decoder, end: *decoder) []u8 = { if (begin.src.ptr != end.src.ptr) { abort("utf8.slice: decoders from different sources"); }; if (begin.offs > end.offs) { abort("utf8.slice: begin past end"); }; let r: []u8; r.ptr = begin.src.ptr + (begin.offs: u64); r.len = end.offs - begin.offs; r.cap = end.offs - begin.offs; return r; }; // ref/hare/encoding/utf8/decode.ha:203. Byte position of the decoder // in its source. export fn position(d: *decoder) i32 = { return d.offs; }; // strings — operations over str ({ptr,len}). Hare port; see // ref/hare/strings/. // // Documented divergences from Hare: // // - `byteindex` / `rbyteindex` rune arms encode via // `utf8.encoderune`; the legacy impls scanned for `r: u8` (an // undocumented ASCII-only restriction that silently dropped // to the wrong byte for U+80..U+7FF and higher). // - `dup(s: str) str` — Hare returns `(str | nomem)`. ww's // `os.alloc` aborts on OOM (no `nomem` type), so we return plain // `str`. Empty input returns `{nil, 0}`; Hare returns the static // empty string — same observable result. // - `iterator` is flattened (`offs`, `src`, `reverse` fields). // Hare uses anonymous-embedded `utf8::decoder` // (ref/hare/strings/iter.ha:6-9); ww has no anonymous-embed // syntax, so `next`/`prev`/`slice` copy `offs`/`src` into a // local `utf8.decoder` for the call (and `next`/`prev` write // `offs` back). // - Hare's private `move()` helper dispatches on a `forward: bool` // using a function-pointer `let fun = if (forward) &utf8::next // else &utf8::prev`. ww has no fn-pointers in scope yet, so the // dispatch is a branch on `forward` selecting the call site. package strings; import bytes; import encoding.utf8; import os; import rt; import types; // toutf8 — borrowed []u8 view of `s`. ref/hare/strings/utf8.ha:29. // `cap` equals `len`; the slice does not own a separate allocation. export fn toutf8(s: str) []u8 = { let r: []u8; r.ptr = s.ptr; r.len = s.len; r.cap = s.len; return r; }; // frombytes — borrowed str view of `in`. Pure reinterpret per // CLAUDE.md rule 9 carve-out; ref/hare/strings/utf8.ha:10. export fn frombytes(in: []u8) str = { let r: str; r.ptr = in.ptr; r.len = in.len; return r; }; // compare — three-way bytewise codepoint-order comparison. Return is // a sign (neg/zero/pos), not an index, so it tracks Hare's `int` // rather than the str-index i32 (#8). ref/hare/strings/compare.ha:12. export fn compare(a: str, b: str) int = { let n: i32 = a.len; if (b.len < n) { n = b.len; }; let i: i32 = 0; for (i < n) { if (a[i] != b[i]) { return (a[i]: int) - (b[i]: int); }; i += 1; }; return (a.len: int) - (b.len: int); }; // dup — allocate a fresh copy of `s`. Caller releases with // `os.free(r.ptr, r.len: u64)`. ref/hare/strings/dup.ha:7. export fn dup(s: str) str = { let r: str; r.ptr = nil; r.len = 0; if (s.len == 0) { return r; }; let buf: []u8 = alloc([], s.len: u64)!; let i: i32 = 0; for (i < s.len) { buf[i] = s[i]; i += 1; }; buf.len = s.len; return frombytes(buf); }; // dupall — fresh `[]str` whose elements are independent copies of // `s`'s elements. Caller releases via [[freeall]]. // ref/hare/strings/dup.ha:26 (#6). // // Hare gates the per-element dup behind `?` and rolls back via // `defer if (!ok) freeall(newsl)`. ww has no `defer if`; more // importantly, ww's [[dup]] is still unchecked (returns plain `str`, // aborts via os.alloc on OOM — see top-of-file divergence note), // so the only nomem propagation point is the initial slice alloc. // With no inner failure path, the rollback is structurally a no-op // and is omitted; it returns once dup graduates to `(str | nomem)` // (#46). The pre-allocated slice has `cap == s.len`, so appendstr's // rt_ensure call never reaches the grow branch. // // Empty input bypasses the alloc: rt_malloc(0) is an mmap of 0 bytes // which returns -EINVAL, and the alloc-slice `?` shortcut routes // that through nomem — Hare's heap allocator hands back a sentinel // instead (#47). Return `{nil, 0, 0}` directly so callers get the // Hare-observable shape (len==0, freeall is a no-op via cap==0). export fn dupall(s: []str) ([]str | nomem) = { if (s.len == 0) { let r: []str; r.ptr = nil: *str; r.len = 0; r.cap = 0; return r; }; let newsl: []str = alloc([], s.len)?; let i: i32 = 0; for (i < s.len) { appendstr(&newsl, dup(s[i])); i += 1; }; return newsl; }; // freeall — release each element + the slice header. The natural // disposer for any `[]str` of dup'd elements (e.g. shlex.split). // ref/hare/strings/dup.ha:38. // // Empty elements (`{nil, 0}` from a zero-length dup) are skipped: // os.free on a nil pointer at len 0 tickles the rt_free guard. The // slice header itself is freed at `cap * size(str)` — the literal // would drift under #1's str-layout bump, so route through the // typ.ww SSoT. A never-grown slice (cap == 0) skips the header free. export fn freeall(s: []str) void = { let i: i32 = 0; for (i < s.len) { if (s[i].len > 0) { os.free(s[i].ptr: *void, s[i].len: u64); }; i += 1; }; if (s.cap > 0) { os.free(s.ptr: *void, (s.cap: u64) * size(str): u64); }; }; // concat — fresh allocation containing each element of `strs` in // order. Caller releases with `os.free(r.ptr, r.len: u64)`. // ref/hare/strings/concat.ha:5. Hare's `nomem` return is dropped: // `os.alloc` aborts on OOM. export fn concat(strs: str...) str = { let total: i32 = 0; let i: i32 = 0; for (i < strs.len) { total += strs[i].len; i += 1; }; let r: str; r.ptr = nil; r.len = 0; if (total == 0) { return r; }; let buf: []u8 = alloc([], total: u64)!; let off: i32 = 0; i = 0; for (i < strs.len) { let j: i32 = 0; for (j < strs[i].len) { buf[off + j] = strs[i][j]; j += 1; }; off += strs[i].len; i += 1; }; buf.len = total; return frombytes(buf); }; // join — fresh allocation with `delim` placed between each element of // `strs`. Caller releases with `os.free(r.ptr, r.len: u64)`. // ref/hare/strings/concat.ha:46. Hare's `nomem` return is dropped: // `os.alloc` aborts on OOM. export fn join(delim: str, strs: str...) str = { let total: i32 = 0; let i: i32 = 0; for (i < strs.len) { total += strs[i].len; if (i + 1 < strs.len) { total += delim.len; }; i += 1; }; let r: str; r.ptr = nil; r.len = 0; if (total == 0) { return r; }; let buf: []u8 = alloc([], total: u64)!; let off: i32 = 0; i = 0; for (i < strs.len) { let j: i32 = 0; for (j < strs[i].len) { buf[off + j] = strs[i][j]; j += 1; }; off += strs[i].len; if (i + 1 < strs.len) { j = 0; for (j < delim.len) { buf[off + j] = delim[j]; j += 1; }; off += delim.len; }; i += 1; }; buf.len = total; return frombytes(buf); }; // utf8bytelenbounded — walk `it` forward `end` runes and return the // resulting byte offset. ref/hare/strings/sub.ha:10. Aborts on // short input per Hare's contract for the rune-wise [[sub]]. fn utf8bytelenbounded(it: *iterator, end: i32) i32 = { let i: i32 = 0; for (i < end) { match (next(it)) { case let r: rune => void; case utf8.done => abort("strings.sub: index exceeds string length"); }; i += 1; }; return it.offs; }; // sub — borrowed substring [start, end) where start/end are rune // indices. ref/hare/strings/sub.ha:30. Hare's 2-arg `sub(s, start)` // defaulting end=END is omitted: ww has no default-parameter syntax // (filed as #37). Byte-indexed counterpart: [[bytesub]]. export fn sub(s: str, start: i32, end: i32) str = { os.assert(start <= end, "strings.sub: start is higher than end"); let it: iterator = iter(s); let starti: i32 = utf8bytelenbounded(&it, start); let endi: i32 = utf8bytelenbounded(&it, end - start); let r: str; r.ptr = s.ptr + (starti: u64); r.len = endi - starti; return r; }; // bytesub — borrowed substring [start, end) where start/end are byte // offsets. ref/hare/strings/sub.ha:59 (#7). Returns `utf8.invalid` if // either endpoint lands on a continuation byte (would split a // codepoint); the equivalent Hare predicate is `s[i] & 0xc0 == 0x80` // at ref/hare/strings/sub.ha:72-73. export fn bytesub(s: str, start: i32, end: i32) (str | utf8.invalid) = { os.assert(start <= end, "strings.bytesub: start is higher than end"); os.assert(end <= s.len, "strings.bytesub: end exceeds string length"); if (start < s.len) { if ((s[start] & 0xC0u8) == 0x80u8) { let e: utf8.invalid; return e; }; }; if (end < s.len) { if ((s[end] & 0xC0u8) == 0x80u8) { let e: utf8.invalid; return e; }; }; let r: str; r.ptr = s.ptr + (start: u64); r.len = end - start; return r; }; // runebytes — encode `r` into caller's `scratch` (must hold 4 bytes) // and return the borrowed slice trimmed to the encoded length. Hare // inlines the same shape at ref/hare/strings/index.ha:132. fn runebytes(scratch: []u8, r: rune) []u8 = { let n: i32 = utf8.encoderune(scratch, r); let s: []u8; s.ptr = scratch.ptr; s.len = n; s.cap = n; return s; }; // hasprefix — true iff `in` begins with `prefix`. // ref/hare/strings/suffix.ha:8. export fn hasprefix(in: str, prefix: (str | rune)) bool = { let scratch: [4]u8; let p: []u8 = match (prefix) { case let s: str => yield toutf8(s); case let r: rune => yield runebytes(scratch[0:4], r); }; return bytes.hasprefix(toutf8(in), p); }; // hassuffix — true iff `in` ends with `suff`. // ref/hare/strings/suffix.ha:26. export fn hassuffix(in: str, suff: (str | rune)) bool = { let scratch: [4]u8; let s: []u8 = match (suff) { case let v: str => yield toutf8(v); case let r: rune => yield runebytes(scratch[0:4], r); }; return bytes.hassuffix(toutf8(in), s); }; // byteindex — byte-wise offset of `needle` in `haystack`, or void if // absent. ref/hare/strings/index.ha:127. Rune arm encodes via // utf8.encoderune (Hare passes the encoded slice straight to // bytes::index). export fn byteindex(haystack: str, needle: (str | rune)) (i32 | void) = { let scratch: [4]u8; let n: []u8 = match (needle) { case let s: str => yield toutf8(s); case let r: rune => yield runebytes(scratch[0:4], r); }; return bytes.index(toutf8(haystack), n); }; // rbyteindex — byte-wise offset of the last `needle` in `haystack`. // ref/hare/strings/index.ha:138. export fn rbyteindex(haystack: str, needle: (str | rune)) (i32 | void) = { let scratch: [4]u8; let n: []u8 = match (needle) { case let s: str => yield toutf8(s); case let r: rune => yield runebytes(scratch[0:4], r); }; return bytes.rindex(toutf8(haystack), n); }; // indexstring — str-arm of [[index]]. Dual-rune-iterator walk: at each // candidate rune index `i`, compare `haystack` from that position // against `needle` rune-by-rune until needle is exhausted (match) or // a mismatch / haystack-exhaustion breaks the inner loop. Mirrors // ref/hare/strings/index.ha:59 (#10). Hare copies `rest_iter = s_iter` // directly via struct assignment; ww re-seats `rest_iter` field-wise // because the let-init struct-copy form diverges between cstage and // wwstage on this iterator type (993_ww_ww + 995_self_rebuild fail, // filed as #41) and rule #10 (CLAUDE.md) forbids stage asymmetry. fn indexstring(haystack: str, needle: str) (i32 | void) = { let s_iter: iterator = iter(haystack); let i: i32 = 0; for (true) { let rest_iter: iterator; rest_iter.src = s_iter.src; rest_iter.offs = s_iter.offs; rest_iter.reverse = s_iter.reverse; let needle_iter: iterator = iter(needle); let matched: bool = false; for (true) { let rest_done: bool = false; let rest_r: rune; match (next(&rest_iter)) { case let r: rune => rest_r = r; case utf8.done => rest_done = true; }; let needle_done: bool = false; let needle_r: rune; match (next(&needle_iter)) { case let r: rune => needle_r = r; case utf8.done => needle_done = true; }; if (rest_done && !needle_done) { break; }; if (needle_done) { matched = true; break; }; if (rest_r != needle_r) { break; }; }; if (matched) { return i; }; match (next(&s_iter)) { case let r: rune => i += 1; case utf8.done => return; }; }; return; }; // index — rune-wise offset of `needle`'s first occurrence in // `haystack`, or void if absent. ref/hare/strings/index.ha:10. The // str-arm delegates to [[indexstring]] (dual-iterator rune-by-rune // walk per Hare's `index_string`, #10); the rune-arm mirrors Hare's // `index_rune` (ref/hare/strings/index.ha:31). export fn index(haystack: str, needle: (str | rune)) (i32 | void) = { match (needle) { case let s: str => return indexstring(haystack, s); case let r: rune => { let it: iterator = iter(haystack); let i: i32 = 0; for (true) { match (next(&it)) { case let n: rune => { if (n == r) { return i; }; i += 1; }; case utf8.done => return; }; }; }; }; return; }; // rindex — rune-wise offset of `needle`'s last occurrence in // `haystack`, or void if absent. ref/hare/strings/index.ha:22. The // str-arm reuses `rbyteindex`; the rune-arm walks forward tracking // the most recent matching rune index (Hare's `rindex_rune` with // `riter` returns a byte-offset value for multibyte strings, which // disagrees with the rune-wise docstring; we keep the docstring's // contract). export fn rindex(haystack: str, needle: (str | rune)) (i32 | void) = { match (needle) { case let s: str => { match (rbyteindex(haystack, s)) { case void => return; case let bo: i32 => { let it: iterator = iter(haystack); let i: i32 = 0; for (position(&it) < bo) { match (next(&it)) { case let r: rune => i += 1; case utf8.done => break; }; }; return i; }; }; }; case let r: rune => { let it: iterator = iter(haystack); let i: i32 = 0; let last: i32 = -1; for (true) { match (next(&it)) { case let n: rune => { if (n == r) { last = i; }; i += 1; }; case utf8.done => break; }; }; if (last < 0) { return; }; return last; }; }; return; }; // contains — true iff any of `needles` occurs in `haystack`. // ref/hare/strings/contains.ha:9. export fn contains(haystack: str, needles: (str | rune)...) bool = { let i: i32 = 0; for (i < needles.len) { match (needles[i]) { case let s: str => { match (byteindex(haystack, s)) { case let bo: i32 => return true; case void => void; }; }; case let r: rune => { match (byteindex(haystack, r)) { case let bo: i32 => return true; case void => void; }; }; }; i += 1; }; return false; }; // trimprefix — `s` with `prefix` stripped from the front, or `s` // unchanged if it doesn't start with `prefix`. Borrowed view. // ref/hare/strings/trim.ha:60. export fn trimprefix(input: str, prefix: str) str = { if (!hasprefix(input, prefix)) { return input; }; let r: str; r.ptr = input.ptr + (prefix.len: u64); r.len = input.len - prefix.len; return r; }; // trimsuffix — symmetric. ref/hare/strings/trim.ha:69. export fn trimsuffix(input: str, suffix: str) str = { if (!hassuffix(input, suffix)) { return input; }; let r: str; r.ptr = input.ptr; r.len = input.len - suffix.len; return r; }; // whitespace — ASCII whitespace set used by the 0-arg ltrim/rtrim/trim // branches (#9). ref/hare/strings/trim.ha:6. let whitespace: [4]u8 = [0x20u8, 0x0Au8, 0x09u8, 0x0Du8]; // ltrim — strip leading runes that occur in `trim`. Borrowed view. // 0-arg strips ASCII whitespace via [[bytes.ltrim]] (#9). // ref/hare/strings/trim.ha:11. The spread expression is inlined // because `let ws: []u8 = whitespace[0:4]` produces a slice whose // ptr doesn't track the module-level array storage (filed as #40); // `b.flush = flushdefault[0:1]` in lib/bufio is the same shape via // the working field-assign path. export fn ltrim(input: str, trim: rune...) str = { if (trim.len == 0) { return frombytes(bytes.ltrim(toutf8(input), whitespace[0:4]...)); }; let it: iterator = iter(input); for (true) { match (next(&it)) { case let r: rune => { let j: i32 = 0; let found: bool = false; for (j < trim.len) { if (r == trim[j]) { found = true; j = trim.len; } else { j += 1; }; }; if (!found) { match (prev(&it)) { case let r2: rune => void; case utf8.done => void; }; break; }; }; case utf8.done => break; }; }; return iterstr(&it); }; // rtrim — strip trailing runes that occur in `trim`. Borrowed view. // 0-arg strips ASCII whitespace via [[bytes.rtrim]] (#9). Spread is // inlined to dodge #40 — see [[ltrim]]. // ref/hare/strings/trim.ha:32. export fn rtrim(input: str, trim: rune...) str = { if (trim.len == 0) { return frombytes(bytes.rtrim(toutf8(input), whitespace[0:4]...)); }; let it: iterator = riter(input); for (true) { match (next(&it)) { case let r: rune => { let j: i32 = 0; let found: bool = false; for (j < trim.len) { if (r == trim[j]) { found = true; j = trim.len; } else { j += 1; }; }; if (!found) { match (prev(&it)) { case let r2: rune => void; case utf8.done => void; }; break; }; }; case utf8.done => break; }; }; return iterstr(&it); }; // trim — strip from both ends. ref/hare/strings/trim.ha:54. export fn trim(input: str, trim: rune...) str = { return ltrim(rtrim(input, trim...), trim...); }; // iterator — UTF-8 rune cursor over a `str`. Layout flattens Hare's // anonymous-embedded `utf8::decoder` (ref/hare/strings/iter.ha:6-9) to // explicit fields. `reverse` selects walk direction: forward iterators // (`iter`) advance through utf8.next; reverse iterators (`riter`) advance // through utf8.prev. May be copied to save state. export type iterator = struct { offs: i32, src: []u8, reverse: bool, }; // iter — initialize a forward iterator at the start of `src`. // ref/hare/strings/iter.ha:24. export fn iter(src: str) iterator = { let r: iterator; r.src = toutf8(src); r.offs = 0; r.reverse = false; return r; }; // riter — initialize a reverse iterator at the end of `src`. `next` // on a reverse iterator walks back through the string. // ref/hare/strings/iter.ha:32. export fn riter(src: str) iterator = { let r: iterator; r.src = toutf8(src); r.offs = src.len; r.reverse = true; return r; }; // move — private dispatch shared by next/prev. `forward` selects // utf8.next vs utf8.prev. Aborts on more/invalid per Hare's // ref/hare/strings/iter.ha:51-58 ("Invalid UTF-8 string (this should // not happen)"). Hare picks the utf8 function via a fn-pointer; ww // branches on `forward` at each call site instead. fn move(forward: bool, it: *iterator) (rune | utf8.done) = { let d: utf8.decoder; d.src = it.src; d.offs = it.offs; if (forward) { match (utf8.next(&d)) { case let r: rune => { it.offs = d.offs; return r; }; case let dn: utf8.done => return dn; case let m: utf8.more => abort("strings.move: invalid UTF-8"); case let e: utf8.invalid => abort("strings.move: invalid UTF-8"); }; } else { match (utf8.prev(&d)) { case let r: rune => { it.offs = d.offs; return r; }; case let dn: utf8.done => return dn; case let m: utf8.more => abort("strings.move: invalid UTF-8"); case let e: utf8.invalid => abort("strings.move: invalid UTF-8"); }; }; }; // next — advance the iterator one rune. Forward iterators step // through utf8.next; reverse iterators (riter) step backward through // utf8.prev. Returns utf8.done at end-of-walk. ref/hare/strings/iter.ha:45. export fn next(it: *iterator) (rune | utf8.done) = { return move(!it.reverse, it); }; // prev — step back one rune. Dual to next: on a forward iterator // this walks utf8.prev; on a reverse iterator (riter) it walks // utf8.next. ref/hare/strings/iter.ha:49. export fn prev(it: *iterator) (rune | utf8.done) = { return move(it.reverse, it); }; // iterstr — borrowed view of the bytes remaining in the iterator's // walk direction. Forward iter: bytes from offs to end; reverse iter: // bytes from start to offs. ref/hare/strings/iter.ha:63. export fn iterstr(it: *iterator) str = { let r: []u8; if (it.reverse) { r = it.src[0:it.offs]; } else { r = it.src[it.offs:it.src.len]; }; return frombytes(r); }; // slice — borrowed substring between two iterator positions. // ref/hare/strings/iter.ha:75. Hare passes `*iterator` directly where // `*utf8::decoder` is expected via anonymous-embed coercion; ww has // no anonymous embed, so we reconstruct a local utf8.decoder for each // endpoint and forward — same pattern as `move` above. export fn slice(begin: *iterator, end: *iterator) str = { let b: utf8.decoder; b.src = begin.src; b.offs = begin.offs; let e: utf8.decoder; e.src = end.src; e.offs = end.offs; return frombytes(utf8.slice(&b, &e)); }; // position — byte-wise offset of the iterator in its source. // ref/hare/strings/iter.ha:82. export fn position(it: *iterator) i32 = { return it.offs; }; // tokenizer — re-export of bytes.tokenizer. ref/hare/strings/tokenize.ha:7. // First cross-module type alias in tree; needs #22's transitive // alias-chain unwrap (cstage type_chase_named + wwstage // structlookupchain) to walk struct fields through the chain. export type tokenizer = bytes.tokenizer; // tokenize — yield substrings of `s` split on any byte in `delim`. // Leading / trailing / adjacent delims yield empty tokens. `s` and // `delim` are borrowed; caller keeps them live for the tokenizer's // lifetime. ref/hare/strings/tokenize.ha:32. ASCII-only delim // asserted per Hare lines 35-37: a multibyte rune in delim would // split on a single continuation byte and yield invalid UTF-8. export fn tokenize(s: str, delim: str) tokenizer = { let d: []u8 = toutf8(delim); let i: i32 = 0; for (i < d.len) { os.assert((d[i] & 0x80u8) == 0u8, "strings.tokenize cannot tokenize on non-ASCII delimiters"); i += 1; }; return bytes.tokenize(toutf8(s), d...); }; // rtokenize — reverse-direction counterpart to [[tokenize]]. First // next_token yields the last token, last yields the first. // ref/hare/strings/tokenize.ha:44. export fn rtokenize(s: str, delim: str) tokenizer = { let d: []u8 = toutf8(delim); let i: i32 = 0; for (i < d.len) { os.assert((d[i] & 0x80u8) == 0u8, "strings.rtokenize cannot tokenize on non-ASCII delimiters"); i += 1; }; return bytes.rtokenize(toutf8(s), d...); }; // next_token — current token, advancing the cursor. // ref/hare/strings/tokenize.ha:62. export fn next_token(s: *tokenizer) (str | bytes.done) = { let b: *bytes.tokenizer = s: *bytes.tokenizer; match (bytes.next_token(b)) { case let v: []u8 => return frombytes(v); case bytes.done => { let d: bytes.done; return d; }; }; }; // peek_token — current token without advancing. // ref/hare/strings/tokenize.ha:71. export fn peek_token(s: *tokenizer) (str | bytes.done) = { let b: *bytes.tokenizer = s: *bytes.tokenizer; match (bytes.peek_token(b)) { case let v: []u8 => return frombytes(v); case bytes.done => { let d: bytes.done; return d; }; }; }; // remaining_tokens — unconsumed portion of the input ahead of the // cursor. ref/hare/strings/tokenize.ha:79. export fn remaining_tokens(s: *tokenizer) str = { let b: *bytes.tokenizer = s: *bytes.tokenizer; return frombytes(bytes.remaining_tokens(b)); }; // rt_ensure is the runtime slice-growth helper invoked by the // `append(s, v)` builtin. Direct bind for the same reason as // lib/shlex.shlex (appendstr, 16B): the builtin's expansion stores // only 8B of the new element, losing the `.len` half of a `str`. @symbol("rt_ensure") fn rtensure(s: *void, membsz: u64) void; // appendstr — grow `*slice` by one and store `item` (16B). Mirror of // lib/shlex.shlex appendstr. Collapses when the append builtin learns // to store the full element width. fn appendstr(slice: *[]str, item: str) void = { let newlen: i32 = slice.len + 1; slice.len = newlen; rtensure(slice: *void, size(str): u64); let dst: *str = &slice.ptr[newlen - 1]; dst.ptr = item.ptr; dst.len = item.len; }; // splitn — split `in` on any byte in `delim`, returning up to `n` // tokens via forward iteration. The trailing slot (when more than // `n - 1` tokens exist) holds the unconsumed remainder. Strings // within the result are borrowed from `in`. // // The caller frees the returned slice via // `os.free(r.ptr: *void, (r.cap: u64) * size(str): u64)`. // // Hare's `([]str | nomem)` collapses to `[]str` here: ww os.alloc // has no recoverable failure path. Same precedent as // shlex.split / bytes.splitn. // // ref/hare/strings/tokenize.ha:172. export fn splitn(in: str, delim: str, n: i32) []str = { let toks: []str; toks.ptr = nil: *str; toks.len = 0; toks.cap = 0; let tok: tokenizer = tokenize(in, delim); let i: i32 = 0; for (i < n - 1) { match (next_token(&tok)) { case let s: str => { appendstr(&toks, s); }; case bytes.done => { return toks; }; }; i += 1; }; match (peek_token(&tok)) { case bytes.done => void; case let pk: str => { let r: str = remaining_tokens(&tok); appendstr(&toks, r); }; }; return toks; }; // rsplitn — reverse-direction counterpart to [[splitn]]: tokens are // collected from the end of `in`. The trailing slot holds the // unconsumed prefix (everything before the n-th-from-last delim hit). // // When the input has fewer than n tokens, the `done` short-circuit // returns toks UN-reversed (in last-token-first order). Mirrors Hare // at ref/hare/strings/tokenize.ha:219-224 where the in-place reverse // step is gated behind the n-1 loop running to completion. // // ref/hare/strings/tokenize.ha:200. export fn rsplitn(in: str, delim: str, n: i32) []str = { let toks: []str; toks.ptr = nil: *str; toks.len = 0; toks.cap = 0; let tok: tokenizer = rtokenize(in, delim); let i: i32 = 0; for (i < n - 1) { match (next_token(&tok)) { case let s: str => { appendstr(&toks, s); }; case bytes.done => { return toks; }; }; i += 1; }; match (peek_token(&tok)) { case bytes.done => void; case let pk: str => { let r: str = remaining_tokens(&tok); appendstr(&toks, r); }; }; // In-place reverse so callers see argv-order, matching Hare // (ref/hare/strings/tokenize.ha:220). Element copy is field-wise // through `*str` because `toks[i] = toks[j]` (full 16B str store) // lands in the multi-word-store gap noted at cmd/w6c/cgen.c:6515. let a: i32 = 0; let b: i32 = toks.len - 1; for (a < b) { let pa: *str = &toks.ptr[a]; let pb: *str = &toks.ptr[b]; let tp: *u8 = pa.ptr; let tl: i32 = pa.len; pa.ptr = pb.ptr; pa.len = pb.len; pb.ptr = tp; pb.len = tl; a += 1; b -= 1; }; return toks; }; // split — full split of `in` on `delim` (no token cap). Mirrors // `splitn(in, delim, types::SIZE_MAX)`. ww uses `types.I32_MAX` // because the index type is i32 (lib/CLAUDE.md). // // ref/hare/strings/tokenize.ha:242. export fn split(in: str, delim: str) []str = { return splitn(in, delim, types.I32_MAX); }; // lpad — left-pad `s` with `p` rune until the result reaches `maxlen` // bytes. Length comparison is BYTES, mirroring Hare's `len(s) >= maxlen` // at ref/hare/strings/pad.ha:9. A multibyte `p` whose encoded width // doesn't divide `maxlen - s.len` evenly leaves a trailing pad byte // pair sliced mid-codepoint at byte `maxlen-1`, exactly as Hare's // `res[..maxlen]` does (ref/hare/strings/pad.ha:20). When // `(maxlen - s.len) * pad.len >= maxlen` (multibyte pad overflows the // budget), `s` is entirely sliced off — same as Hare. Caller releases // with `os.free(r.ptr, r.len: u64)`. Hare's `nomem` return is dropped: // `os.alloc` aborts on OOM. Buf size == r.len keeps the free-contract // shape of [[dup]] / [[concat]] / [[join]]; Hare's `alloc([], maxlen)!` // over-allocs via append then slices, but Hare's slice-free recovers // the true capacity from the heap allocator (rt/ensure.ha:24), which // ww's munmap-based `os.free` cannot do. export fn lpad(s: str, p: rune, maxlen: i32) str = { if (s.len >= maxlen) { return dup(s); }; let scratch: [4]u8; let pad: []u8 = runebytes(scratch[0:4], p); let buf: []u8 = alloc([], maxlen: u64)!; let padwrite: i32 = (maxlen - s.len) * pad.len; if (padwrite > maxlen) { padwrite = maxlen; }; let off: i32 = 0; for (off < padwrite) { buf[off] = pad.ptr[off % pad.len]; off += 1; }; let k: i32 = 0; let srem: i32 = maxlen - off; if (srem > s.len) { srem = s.len; }; for (k < srem) { buf[off + k] = s[k]; k += 1; }; buf.len = maxlen; return frombytes(buf); }; // replace — fresh allocation of `s` with every non-overlapping // occurrence of `needle` replaced by `target`. Caller releases with // `os.free(r.ptr, r.len: u64)`. ref/hare/strings/replace.ha:8 (#4). // // Hare delegates to [[multireplace]] with a single pair; ww has no // `(str, str)` variadic shape today (#39), so this is a standalone // two-pass implementation: pass 1 counts matches to size the result, // pass 2 copies chunks and `target` into a single fresh buffer. // Single nomem path (the `alloc([], total)?`) preserves Hare's // signature without a per-write `append(...)?` (ww's append builtin // aborts on OOM, #11). Empty `needle` would hasprefix-match every // position with a zero stride — same infinite loop Hare exhibits at // ref/hare/strings/replace.ha:31; not gated. export fn replace(s: str, needle: str, target: str) (str | nomem) = { let sb: []u8 = toutf8(s); let nb: []u8 = toutf8(needle); let tb: []u8 = toutf8(target); let count: i32 = 0; let i: i32 = 0; for (i < sb.len) { if (bytes.hasprefix(sb[i:sb.len], nb)) { count += 1; i += nb.len; } else { i += 1; }; }; let total: i32 = sb.len + count * (tb.len - nb.len); if (total == 0) { let r: str; r.ptr = nil; r.len = 0; return r; }; let res: []u8 = alloc([], total)?; let off: i32 = 0; i = 0; for (i < sb.len) { if (bytes.hasprefix(sb[i:sb.len], nb)) { let j: i32 = 0; for (j < tb.len) { res.ptr[off + j] = tb.ptr[j]; j += 1; }; off += tb.len; i += nb.len; } else { res.ptr[off] = sb.ptr[i]; off += 1; i += 1; }; }; res.len = total; return frombytes(res); }; // rpad — right-pad `s` with `p` rune until the result reaches `maxlen` // bytes. Symmetric with [[lpad]]. ref/hare/strings/pad.ha:39. export fn rpad(s: str, p: rune, maxlen: i32) str = { if (s.len >= maxlen) { return dup(s); }; let scratch: [4]u8; let pad: []u8 = runebytes(scratch[0:4], p); let buf: []u8 = alloc([], maxlen: u64)!; let k: i32 = 0; for (k < s.len) { buf[k] = s[k]; k += 1; }; let padwrite: i32 = maxlen - s.len; let i: i32 = 0; for (i < padwrite) { buf[s.len + i] = pad.ptr[i % pad.len]; i += 1; }; buf.len = maxlen; return frombytes(buf); }; // selfhost/cmd/w6a/opcodes.ww — types + constants shared across the // w6a port. Mirrors cmd/w6a/a.h and cmd/w6c/6.out.h. package w6a; // ---- registers + operand kinds (from 6.out.h) ------------------------- // These must stay numerically aligned with the C enum so that ww-cgen // output (which reads them via `D_AX(SB)` etc.) lands on the same // integers when read by ww-w6a. def D_NONE: i32 = 0; def D_AX: i32 = 1; def D_CX: i32 = 2; def D_DX: i32 = 3; def D_BX: i32 = 4; def D_SP: i32 = 5; def D_BP: i32 = 6; def D_SI: i32 = 7; def D_DI: i32 = 8; def D_R8: i32 = 9; def D_R9: i32 = 10; def D_R10: i32 = 11; def D_R11: i32 = 12; def D_R12: i32 = 13; def D_R13: i32 = 14; def D_R14: i32 = 15; def D_R15: i32 = 16; def D_X0: i32 = 17; def D_X1: i32 = 18; def D_X2: i32 = 19; def D_X3: i32 = 20; def D_X4: i32 = 21; def D_X5: i32 = 22; def D_X6: i32 = 23; def D_X7: i32 = 24; def D_X8: i32 = 25; def D_X9: i32 = 26; def D_X10: i32 = 27; def D_X11: i32 = 28; def D_X12: i32 = 29; def D_X13: i32 = 30; def D_X14: i32 = 31; def D_X15: i32 = 32; def D_PSP: i32 = 33; def D_PFP: i32 = 34; def D_PSB: i32 = 35; def D_CONST: i32 = 36; def D_BRANCH: i32 = 37; def D_EXTERN: i32 = 38; def D_INDIR: i32 = 39; // ---- opcodes ---------------------------------------------------------- def A_NOP: i32 = 0; def A_TEXT: i32 = 1; def A_DATA: i32 = 2; def A_GLOBL: i32 = 3; def A_END: i32 = 4; def A_MOVQ: i32 = 5; def A_MOVL: i32 = 6; def A_MOVB: i32 = 7; def A_MOVZBQ: i32 = 8; def A_MOVSXD: i32 = 9; def A_MOVW: i32 = 62; def A_MOVZWQ: i32 = 63; def A_MOVSWQ: i32 = 64; def A_MOVSBQ: i32 = 65; def A_MOVSD: i32 = 10; def A_ADDSD: i32 = 11; def A_SUBSD: i32 = 12; def A_MULSD: i32 = 13; def A_DIVSD: i32 = 14; def A_UCOMISD: i32 = 15; def A_CVTTSD2SI: i32 = 16; def A_CVTSI2SD: i32 = 17; def A_MOVSS: i32 = 18; def A_ADDSS: i32 = 19; def A_SUBSS: i32 = 20; def A_MULSS: i32 = 21; def A_DIVSS: i32 = 22; def A_UCOMISS: i32 = 23; def A_CVTTSS2SI: i32 = 24; def A_CVTSI2SS: i32 = 25; def A_CVTSD2SS: i32 = 26; def A_CVTSS2SD: i32 = 27; def A_ADDQ: i32 = 28; def A_SUBQ: i32 = 29; def A_IMULQ: i32 = 30; def A_IDIVQ: i32 = 31; def A_DIVQ: i32 = 32; def A_NEGQ: i32 = 33; def A_NOTQ: i32 = 34; def A_ANDQ: i32 = 35; def A_ORQ: i32 = 36; def A_XORQ: i32 = 37; def A_SHLQ: i32 = 38; def A_SHRQ: i32 = 39; def A_CMPQ: i32 = 40; def A_PUSHQ: i32 = 41; def A_POPQ: i32 = 42; def A_LEAQ: i32 = 43; def A_CALL: i32 = 44; def A_RET: i32 = 45; def A_JMP: i32 = 46; def A_JE: i32 = 47; def A_JNE: i32 = 48; def A_JL: i32 = 49; def A_JLE: i32 = 50; def A_JG: i32 = 51; def A_JGE: i32 = 52; def A_JB: i32 = 53; def A_JBE: i32 = 54; def A_JA: i32 = 55; def A_JAE: i32 = 56; def A_JZ: i32 = 57; def A_JNZ: i32 = 58; // 67 (next free above A_CQO=66): appended so the existing A_MOV*/ // A_SYSCALL/A_DATAW/A_DATAR/A_CQO numbers stay put. Jump on // parity (PF=1): UCOMISD unordered (#97). def A_JP: i32 = 67; def A_SYSCALL: i32 = 59; // Writable data + reloc-only data. Mirror cmd/w6c/6.out.h. // A_DATAW: bytes land in .data (RW) instead of .text. // A_DATAR: record an R_X86_64_64 reloc at a .data slot, patched // to a target symbol's runtime VA at link time. def A_DATAW: i32 = 60; def A_DATAR: i32 = 61; // REX.W 99 — sign-extend RAX into RDX:RAX. Pairs with IDIVQ for // signed division; pendant to the MOVQ $0, DX zero-fill that pairs // with DIVQ. def A_CQO: i32 = 66; // ---- structs (mirror cmd/w6a/a.h) -------------------------------------- type aoperand = struct { atype: i32, // D_NONE / D_AX..D_R15 / D_CONST / D_INDIR / D_EXTERN / D_BRANCH reg: i32, offset: i64, asym: str, }; // `from` and `to` are pointer-to-aoperand (rather than embedded). // The C cgen doesn't support chained-dot through embedded value // fields, so allocating each operand once per prog lets us write // `p.to.atype` directly. type aprog = struct { as_: i32, from: *aoperand, to: *aoperand, line: i32, label: str, link: *aprog, bytes: *u8, // payload for A_DATA nbytes: u64, }; type asym = struct { name: str, defined: i32, istext: i32, isdata: i32, // mutually exclusive with istext; DATAW symbols isglobal: i32, addr: u64, // offset within its section (.text or .data) idx: i32, snext: *asym, }; type areloc = struct { off: u64, section: i32, // 0 = .text, 1 = .data kind: i32, asy: *asym, addend: i64, rnext: *areloc, }; type afixup = struct { off: u64, // where the rel32 lands in .text label: str, fnext: *afixup, }; type asm_ = struct { file: str, src: *u8, srclen: u64, pos: u64, line: i32, head: *aprog, tail: *aprog, text: *u8, textcap: u64, textlen: u64, // Writable .data. Empty unless any DATAW directive was seen; // obj.ww emits the extra section conditionally so .o output // stays byte-identical for inputs that don't use DATAW (test // 991 byte-diff invariant). data: *u8, datacap: u64, datalen: u64, syms: *asym, relocs: *areloc, fixups: *afixup, errs: i32, }; // selfhost/cmd/w6a/lex.ww — port of cmd/w6a/lex.c. // // Character-level helpers for w6a's line-oriented parser. The parser // itself is in parse.ww; here we keep tokenisers for identifiers and // numbers so parse.ww stays focused on syntax. package w6a; export fn isidstart(c: i32) bool = { if (c == 95) { return true; }; if (c >= 65) { if (c <= 90) { return true; }; }; // A-Z if (c >= 97) { if (c <= 122) { return true; }; }; // a-z return false; }; export fn isidcont(c: i32) bool = { if (isidstart(c)) { return true; }; if (c >= 48) { if (c <= 57) { return true; }; }; // 0-9 if (c == 46) { return true; }; // . return false; }; // parsenum — read a leading [+-]?[0x|0X|0]?digits from p[0..n-1]. // Returns (value, consumed). Stops at first non-digit. // Plain Plan 9-style: $123 / $0x1f / $-7. Decimal default; 0x prefix // for hex; 0 prefix for octal when followed by a digit (else just 0). export fn parsenum(p: *u8, n: u64) (i64, u64) = { let i: u64 = 0u64; let neg: bool = false; if (i < n) { if (p[i] == 45u8) { neg = true; i += 1u64; } else { if (p[i] == 43u8) { i += 1u64; }; }; }; let base: i64 = 10i64; if (i + 1u64 < n) { if (p[i] == 48u8) { if (p[i + 1u64] == 120u8) { base = 16i64; i += 2u64; } else { if (p[i + 1u64] == 88u8) { base = 16i64; i += 2u64; } else { if (p[i + 1u64] >= 48u8) { if (p[i + 1u64] <= 55u8) { base = 8i64; i += 1u64; };};};}; }; }; let v: i64 = 0i64; let scan: bool = true; for (scan) { if (i >= n) { scan = false; } else { let c: u8 = p[i]; let d: i64 = -1i64; if (c >= 48u8) { if (c <= 57u8) { d = (c - 48u8): i64; }; }; if (d < 0i64) { if (base == 16i64) { if (c >= 97u8) { if (c <= 102u8) { d = (c - 97u8): i64 + 10i64; }; }; if (c >= 65u8) { if (c <= 70u8) { d = (c - 65u8): i64 + 10i64; }; }; }; }; if (d < 0i64) { scan = false; } else { if (d >= base) { scan = false; } else { v = v * base + d; i += 1u64; }; }; }; }; if (neg) { v = -v; }; return v, i; }; // selfhost/cmd/w6a/parse.ww — port of cmd/w6a/parse.c. // // Line-oriented parser for the asm subset emitted by w6c. // Grammar: // line := blank | comment | label | text | instr // blank := /^\s*$/ // comment := /^\s*\/\/.*$/ // label := /^IDENT:$/ // text := TEXT name,$framesize // instr := \tMNEM\t[OP1[, OP2]] // OP := $NUM | REG | NUM(REG) | (REG) | name(SB) | label package w6a; import os; import strings; import lex; import opcodes; fn streqlit(p: *u8, n: u64, lit: str) bool = { if (n != lit.len: u64) { return false; }; let i: u64 = 0u64; for (i < n) { let li: i32 = i: i32; if (p[i] != lit[li]) { return false; }; i += 1u64; }; return true; }; // opcodelookup — name (length-bounded *u8) → A_*. Returns 0 (A_NOP) // if not found. fn opcodelookup(p: *u8, n: u64) i32 = { if (streqlit(p, n, "MOVQ")) { return A_MOVQ; }; if (streqlit(p, n, "MOVL")) { return A_MOVL; }; if (streqlit(p, n, "MOVW")) { return A_MOVW; }; if (streqlit(p, n, "MOVB")) { return A_MOVB; }; if (streqlit(p, n, "MOVZBQ")) { return A_MOVZBQ; }; if (streqlit(p, n, "MOVZWQ")) { return A_MOVZWQ; }; if (streqlit(p, n, "MOVSXD")) { return A_MOVSXD; }; if (streqlit(p, n, "MOVSWQ")) { return A_MOVSWQ; }; if (streqlit(p, n, "MOVSBQ")) { return A_MOVSBQ; }; if (streqlit(p, n, "MOVSD")) { return A_MOVSD; }; if (streqlit(p, n, "ADDSD")) { return A_ADDSD; }; if (streqlit(p, n, "SUBSD")) { return A_SUBSD; }; if (streqlit(p, n, "MULSD")) { return A_MULSD; }; if (streqlit(p, n, "DIVSD")) { return A_DIVSD; }; if (streqlit(p, n, "UCOMISD")) { return A_UCOMISD; }; if (streqlit(p, n, "CVTTSD2SI")) { return A_CVTTSD2SI; }; if (streqlit(p, n, "CVTSI2SD")) { return A_CVTSI2SD; }; if (streqlit(p, n, "MOVSS")) { return A_MOVSS; }; if (streqlit(p, n, "ADDSS")) { return A_ADDSS; }; if (streqlit(p, n, "SUBSS")) { return A_SUBSS; }; if (streqlit(p, n, "MULSS")) { return A_MULSS; }; if (streqlit(p, n, "DIVSS")) { return A_DIVSS; }; if (streqlit(p, n, "UCOMISS")) { return A_UCOMISS; }; if (streqlit(p, n, "CVTTSS2SI")) { return A_CVTTSS2SI; }; if (streqlit(p, n, "CVTSI2SS")) { return A_CVTSI2SS; }; if (streqlit(p, n, "CVTSD2SS")) { return A_CVTSD2SS; }; if (streqlit(p, n, "CVTSS2SD")) { return A_CVTSS2SD; }; if (streqlit(p, n, "ADDQ")) { return A_ADDQ; }; if (streqlit(p, n, "SUBQ")) { return A_SUBQ; }; if (streqlit(p, n, "IMULQ")) { return A_IMULQ; }; if (streqlit(p, n, "IDIVQ")) { return A_IDIVQ; }; if (streqlit(p, n, "DIVQ")) { return A_DIVQ; }; if (streqlit(p, n, "CQO")) { return A_CQO; }; if (streqlit(p, n, "NEGQ")) { return A_NEGQ; }; if (streqlit(p, n, "NOTQ")) { return A_NOTQ; }; if (streqlit(p, n, "ANDQ")) { return A_ANDQ; }; if (streqlit(p, n, "ORQ")) { return A_ORQ; }; if (streqlit(p, n, "XORQ")) { return A_XORQ; }; if (streqlit(p, n, "SHLQ")) { return A_SHLQ; }; if (streqlit(p, n, "SHRQ")) { return A_SHRQ; }; if (streqlit(p, n, "CMPQ")) { return A_CMPQ; }; if (streqlit(p, n, "PUSHQ")) { return A_PUSHQ; }; if (streqlit(p, n, "POPQ")) { return A_POPQ; }; if (streqlit(p, n, "LEAQ")) { return A_LEAQ; }; if (streqlit(p, n, "CALL")) { return A_CALL; }; if (streqlit(p, n, "RET")) { return A_RET; }; if (streqlit(p, n, "JMP")) { return A_JMP; }; if (streqlit(p, n, "JE")) { return A_JE; }; if (streqlit(p, n, "JNE")) { return A_JNE; }; if (streqlit(p, n, "JL")) { return A_JL; }; if (streqlit(p, n, "JLE")) { return A_JLE; }; if (streqlit(p, n, "JG")) { return A_JG; }; if (streqlit(p, n, "JGE")) { return A_JGE; }; if (streqlit(p, n, "JB")) { return A_JB; }; if (streqlit(p, n, "JBE")) { return A_JBE; }; if (streqlit(p, n, "JA")) { return A_JA; }; if (streqlit(p, n, "JAE")) { return A_JAE; }; if (streqlit(p, n, "JZ")) { return A_JZ; }; if (streqlit(p, n, "JNZ")) { return A_JNZ; }; if (streqlit(p, n, "JP")) { return A_JP; }; if (streqlit(p, n, "SYSCALL")) { return A_SYSCALL; }; if (streqlit(p, n, "TEXT")) { return A_TEXT; }; if (streqlit(p, n, "DATA")) { return A_DATA; }; if (streqlit(p, n, "DATAW")) { return A_DATAW; }; if (streqlit(p, n, "DATAR")) { return A_DATAR; }; return A_NOP; }; // reglookup — name → D_*. Returns D_NONE if not found. fn reglookup(p: *u8, n: u64) i32 = { if (streqlit(p, n, "AX")) { return D_AX; }; if (streqlit(p, n, "BX")) { return D_BX; }; if (streqlit(p, n, "CX")) { return D_CX; }; if (streqlit(p, n, "DX")) { return D_DX; }; if (streqlit(p, n, "SP")) { return D_SP; }; if (streqlit(p, n, "BP")) { return D_BP; }; if (streqlit(p, n, "SI")) { return D_SI; }; if (streqlit(p, n, "DI")) { return D_DI; }; if (streqlit(p, n, "R8")) { return D_R8; }; if (streqlit(p, n, "R9")) { return D_R9; }; if (streqlit(p, n, "R10")) { return D_R10; }; if (streqlit(p, n, "R11")) { return D_R11; }; if (streqlit(p, n, "R12")) { return D_R12; }; if (streqlit(p, n, "R13")) { return D_R13; }; if (streqlit(p, n, "R14")) { return D_R14; }; if (streqlit(p, n, "R15")) { return D_R15; }; if (streqlit(p, n, "X0")) { return D_X0; }; if (streqlit(p, n, "X1")) { return D_X1; }; if (streqlit(p, n, "X2")) { return D_X2; }; if (streqlit(p, n, "X3")) { return D_X3; }; if (streqlit(p, n, "X4")) { return D_X4; }; if (streqlit(p, n, "X5")) { return D_X5; }; if (streqlit(p, n, "X6")) { return D_X6; }; if (streqlit(p, n, "X7")) { return D_X7; }; if (streqlit(p, n, "X8")) { return D_X8; }; if (streqlit(p, n, "X9")) { return D_X9; }; if (streqlit(p, n, "X10")) { return D_X10; }; if (streqlit(p, n, "X11")) { return D_X11; }; if (streqlit(p, n, "X12")) { return D_X12; }; if (streqlit(p, n, "X13")) { return D_X13; }; if (streqlit(p, n, "X14")) { return D_X14; }; if (streqlit(p, n, "X15")) { return D_X15; }; if (streqlit(p, n, "SB")) { return D_PSB; }; if (streqlit(p, n, "FP")) { return D_PFP; }; return D_NONE; }; export fn init(a: *asm_, file: str, src: *u8, len: u64) void = { a.file = file; a.src = src; a.srclen = len; a.pos = 0u64; a.line = 1; a.head = nil; a.tail = nil; a.text = nil; a.textcap = 0u64; a.textlen = 0u64; a.syms = nil; a.relocs = nil; a.fixups = nil; a.errs = 0; }; // `streq(str,str)` lives in asm.ww — same bundle, single definition. export fn intern(a: *asm_, name: str) *asym = { let s: *asym = a.syms; for (s != nil) { if (streq(s.name, name)) { return s; }; s = s.snext; }; let n: *asym = alloc(asym { name = name, snext = a.syms })!; a.syms = n; return n; }; fn perr(a: *asm_, msg: str) void = { os.write(2, "w6a: ".ptr, 4u64); let f: str = a.file; os.write(2, f.ptr, f.len: u64); os.write(2, ": ".ptr, 2u64); os.write(2, msg.ptr, msg.len: u64); os.write(2, "\n".ptr, 1u64); a.errs += 1; }; // dupstr — copy n bytes from p into a fresh heap str. fn dupstr(p: *u8, n: u64) str = { let view: str; view.ptr = p; view.len = n: i32; return strings.dup(view); }; // ---- line iteration & whitespace -------------------------------------- // Read next line into a fresh heap buffer; returns (ptr, len) or (nil,0) // at EOF. Advances a.pos past the newline. fn nextline(a: *asm_) (*u8, u64) = { if (a.pos >= a.srclen) { return nil, 0u64; }; let start: u64 = a.pos; for (a.pos < a.srclen) { if (a.src[a.pos] == 10u8) { a.pos = a.pos; a.pos += 0u64; } // no-op; explicit break via condition else { a.pos += 1u64; continue; }; // hit newline let n: u64 = a.pos - start; let buf: []u8 = alloc([], n + 1u64)!; let i: u64 = 0u64; for (i < n) { buf[i] = a.src[start + i]; i += 1u64; }; buf[n] = 0u8; a.pos += 1u64; // skip newline return buf.ptr, n; }; // EOF without trailing newline let n: u64 = a.pos - start; if (n == 0u64) { return nil, 0u64; }; let buf: []u8 = alloc([], n + 1u64)!; let i: u64 = 0u64; for (i < n) { buf[i] = a.src[start + i]; i += 1u64; }; buf[n] = 0u8; return buf.ptr, n; }; fn skipws(p: *u8, off: u64, n: u64) u64 = { let i: u64 = off; for (i < n) { if (p[i] != 32u8) { if (p[i] != 9u8) { return i; }; }; i += 1u64; }; return i; }; // parseoperand — parse one operand from p[off..n), populate out. // Returns new offset (clamped to n on error). fn parseoperand(a: *asm_, p: *u8, offin: u64, n: u64, out: *aoperand) u64 = { let off: u64 = skipws(p, offin, n); out.atype = D_NONE; out.reg = 0; out.offset = 0i64; let empty: str; empty.ptr = nil; empty.len = 0; out.asym = empty; if (off >= n) { return off; }; let c0: u8 = p[off]; // $NUM if (c0 == 36u8) { // '$' off += 1u64; let v: i64; let used: u64; v, used = parsenum(p + off, n - off); out.atype = D_CONST; out.offset = v; return off + used; }; // (REG) if (c0 == 40u8) { // '(' off += 1u64; let rstart: u64 = off; for (off < n) { if (p[off] == 41u8) { off = off; off += 0u64; } // no-op marker else { off += 1u64; continue; }; let rn: u64 = off - rstart; let r: i32 = reglookup(p + rstart, rn); if (r == 0) { perr(a, "bad register in indirect"); return n; }; out.atype = D_INDIR; out.reg = r; out.offset = 0i64; return off + 1u64; // past ')' }; perr(a, "missing ')' in indirect"); return n; }; // number(REG) — possibly signed — or bare $NUM-less constant let cur: u64 = off; let isnum: bool = false; if (cur < n) { if (p[cur] == 45u8) { isnum = true; } else { if (p[cur] >= 48u8) { if (p[cur] <= 57u8) { isnum = true; }; }; }; }; if (isnum) { let v: i64; let used: u64; v, used = parsenum(p + off, n - off); let after: u64 = off + used; if (after < n) { if (p[after] == 40u8) { // '(' let rstart: u64 = after + 1u64; let cur2: u64 = rstart; for (cur2 < n) { if (p[cur2] == 41u8) { cur2 = cur2; cur2 += 0u64; } else { cur2 += 1u64; continue; }; let rn: u64 = cur2 - rstart; let r: i32 = reglookup(p + rstart, rn); if (r == 0) { perr(a, "bad register"); return n; }; out.atype = D_INDIR; out.reg = r; out.offset = v; return cur2 + 1u64; }; perr(a, "missing ')'"); return n; };}; out.atype = D_CONST; out.offset = v; return after; }; // IDENT — register, symbol(SB), symbol+disp(SB), or branch label if (isidstart(c0: i32)) { let istart: u64 = off; for (off < n) { if (isidcont(p[off]: i32)) { off += 1u64; continue; }; off = off; off += 0u64; // loop break let in_: u64 = off - istart; // Optional `+disp` between the ident and `(SB)`. Used // by DATAR to address bytes within a previously-defined // .data slot (e.g. `DATAR s+8(SB),...`). let symdisp: i64 = 0i64; if (off < n) { if (p[off] == 43u8) { // '+' off += 1u64; let v: i64; let used: u64; v, used = parsenum(p + off, n - off); symdisp = v; off += used; };}; // IDENT(SB) — external if (off < n) { if (p[off] == 40u8) { // '(' let rstart: u64 = off + 1u64; let cur2: u64 = rstart; for (cur2 < n) { if (p[cur2] == 41u8) { cur2 = cur2; cur2 += 0u64; } else { cur2 += 1u64; continue; }; let rn: u64 = cur2 - rstart; let r: i32 = reglookup(p + rstart, rn); if (r == D_PSB) { out.atype = D_EXTERN; out.asym = dupstr(p + istart, in_); out.offset = symdisp; } else { out.atype = D_INDIR; out.reg = r; out.offset = 0i64; }; return cur2 + 1u64; }; perr(a, "missing ')'"); return n; };}; let r: i32 = reglookup(p + istart, in_); if (r != D_NONE) { out.atype = r; return off; }; out.atype = D_BRANCH; out.asym = dupstr(p + istart, in_); return off; }; // EOF inside ident let in_: u64 = off - istart; let r: i32 = reglookup(p + istart, in_); if (r != D_NONE) { out.atype = r; return off; }; out.atype = D_BRANCH; out.asym = dupstr(p + istart, in_); return off; }; perr(a, "unrecognised operand"); return n; }; // Append a fresh aprog to the list with given opcode and label. fn addprog(a: *asm_, opc: i32, lbl: str) *aprog = { let pr: *aprog = alloc(aprog { as_ = opc, line = a.line, label = lbl })!; pr.from = alloc(aoperand { })!; pr.to = alloc(aoperand { })!; if (a.head == nil) { a.head = pr; } else { a.tail.link = pr; }; a.tail = pr; return pr; }; export fn parse(a: *asm_) i32 = { let pending: str; pending.ptr = nil; pending.len = 0; for (true) { let line: *u8; let n: u64; line, n = nextline(a); if (line == nil) { return a.errs; }; // skip leading ws let i: u64 = skipws(line, 0u64, n); // blank or //-comment if (i >= n) { a.line += 1; continue; }; if (i + 1u64 < n) { if (line[i] == 47u8) { if (line[i + 1u64] == 47u8) { a.line += 1; continue; };}; }; // Label? IDENT: starting at column 0 (no leading tab). // Only if the identifier is followed by ':'. Otherwise, fall // through to mnemonic parsing so e.g. `TEXT foo,$0` (which // also starts with an idchar in column 0) gets parsed. if (line[0u64] != 9u8) { if (isidstart(line[i]: i32)) { let q: u64 = i; let scanid: bool = true; for (scanid) { if (q >= n) { scanid = false; } else { if (isidcont(line[q]: i32)) { q += 1u64; } else { scanid = false; }; }; }; if (q < n) { if (line[q] == 58u8) { // ':' let nm: str = dupstr(line + i, q - i); // Pending label gets a NOP prog so addresses pin. if (pending.len > 0) { let np: *aprog = addprog(a, A_NOP, pending); }; pending = nm; a.line += 1; continue; };}; // not a label — fall through to mnemonic parse }; }; // MNEMONIC at the start of the rest. Scan to first ws/EOL. let mstart: u64 = i; let m: u64 = mstart; let scan: bool = true; for (scan) { if (m >= n) { scan = false; } else { if (line[m] == 32u8) { scan = false; } else { if (line[m] == 9u8) { scan = false; } else { m += 1u64; }; }; }; }; let mlen: u64 = m - mstart; let opc: i32 = opcodelookup(line + mstart, mlen); if (opc == 0) { if (mlen > 0u64) { perr(a, "unknown opcode"); }; pending.ptr = nil; pending.len = 0; a.line += 1; continue; }; let pr: *aprog = addprog(a, opc, pending); pending.ptr = nil; pending.len = 0; // Skip ws after mnemonic let r0: u64 = skipws(line, m, n); if (opc == A_TEXT) { // TEXT name,$framesize — find first ',' as the end of name. let q: u64 = r0; let commapos: u64 = n; let scant: bool = true; for (scant) { if (q >= n) { scant = false; } else { if (line[q] == 44u8) { commapos = q; scant = false; } else { q += 1u64; }; }; }; let toop: *aoperand = pr.to; toop.atype = D_EXTERN; toop.asym = dupstr(line + r0, commapos - r0); if (commapos < n) { let p2: u64 = commapos + 1u64; p2 = skipws(line, p2, n); if (p2 < n) { if (line[p2] == 36u8) { p2 += 1u64; }; }; let v: i64; let used: u64; v, used = parsenum(line + p2, n - p2); let fromop: *aoperand = pr.from; fromop.atype = D_CONST; fromop.offset = v; }; a.line += 1; continue; }; if (opc == A_DATA || opc == A_DATAW) { // DATA / DATAW name(SB),"escaped bytes" — same syntax, // different destination section (.text vs .data). let q: u64 = r0; let lparen: u64 = n; let scand: bool = true; for (scand) { if (q >= n) { scand = false; } else { if (line[q] == 40u8) { lparen = q; scand = false; } else { q += 1u64; }; }; }; let toop: *aoperand = pr.to; toop.atype = D_EXTERN; toop.asym = dupstr(line + r0, lparen - r0); // Skip past `(SB)` to land just after ')'. let p2: u64 = lparen; let scand2: bool = true; for (scand2) { if (p2 >= n) { scand2 = false; } else { if (line[p2] == 41u8) { p2 += 1u64; scand2 = false; } else { p2 += 1u64; }; }; }; // Skip ws / ',' / tab between `)` and the `"`. let scand3: bool = true; for (scand3) { if (p2 >= n) { scand3 = false; } else { if (line[p2] == 32u8) { p2 += 1u64; } else { if (line[p2] == 44u8) { p2 += 1u64; } else { if (line[p2] == 9u8) { p2 += 1u64; } else { scand3 = false; }; }; }; }; }; if (p2 >= n) { perr(a, "DATA missing payload"); a.line += 1; continue; }; if (line[p2] != 34u8) { perr(a, "DATA expects \"...\""); a.line += 1; continue; }; p2 += 1u64; // past opening " // Parse escape sequence into a fresh growable buffer. let cap: u64 = 32u64; let blen: u64 = 0u64; let dbuf: []u8 = alloc([], cap)!; for (p2 < n) { if (line[p2] == 34u8) { p2 = p2; p2 += 0u64; p2 = n + 1u64; } else { let ch: u8 = line[p2]; p2 += 1u64; if (ch == 92u8) { // '\' if (p2 < n) { let e: u8 = line[p2]; p2 += 1u64; if (e == 110u8) { ch = 10u8; } // 'n' else { if (e == 116u8) { ch = 9u8; } else { if (e == 114u8) { ch = 13u8; } else { if (e == 92u8) { ch = 92u8; } else { if (e == 34u8) { ch = 34u8; } else { if (e == 48u8) { ch = 0u8; } else { if (e == 120u8) { // 'x' if (p2 + 1u64 < n) { let hi: u8 = line[p2]; let lo: u8 = line[p2 + 1u64]; p2 += 2u64; let h: u8 = 0u8; let l: u8 = 0u8; if (hi <= 57u8) { h = hi - 48u8; } else { h = (hi | 32u8) - 97u8 + 10u8; }; if (lo <= 57u8) { l = lo - 48u8; } else { l = (lo | 32u8) - 97u8 + 10u8; }; ch = (h << 4u8) | l; }; } else { ch = e; };};};};};};}; }; }; if (blen + 1u64 > cap) { let ncap: u64 = cap * 2u64; let nb: []u8 = alloc([], ncap)!; let bi: u64 = 0u64; for (bi < blen) { nb[bi] = dbuf[bi]; bi += 1u64; }; dbuf = nb; cap = ncap; }; dbuf[blen] = ch; blen += 1u64; }; }; pr.bytes = dbuf.ptr; pr.nbytes = blen; a.line += 1; continue; }; // Generic instruction: 0/1/2 operands separated by ','. // Find top-level comma. let comma: i64 = -1i64; let q: u64 = r0; for (q < n) { if (line[q] == 44u8) { if (comma < 0i64) { comma = q: i64; }; }; q += 1u64; }; if (comma >= 0i64) { let cu: u64 = comma: u64; parseoperand(a, line, r0, cu, pr.from); parseoperand(a, line + (cu + 1u64), 0u64, n - (cu + 1u64), pr.to); } else { if (r0 < n) { parseoperand(a, line, r0, n, pr.to); };}; a.line += 1; }; return a.errs; }; // selfhost/cmd/w6a/asm.ww — port of cmd/w6a/asm.c. // // Encode the parsed aprog list into amd64 machine bytes, appending to // asm_.text. Relocations for CALL/branch targets that resolve to // externals are queued in asm_.relocs. // // Encoding subset matches what w6c emits — see cmd/w6a/asm.c for the // authoritative list. Helpers (rcode/rhi/modrm/emitrex etc.) are // fully ported; encode itself is still a stub pending the full // switch over A_*. package w6a; import os; import rt; import mem; import opcodes; // ---- text buffer growth ------------------------------------------------ export fn emitbyte(a: *asm_, b: u8) void = { if (a.textlen + 1u64 > a.textcap) { let nc: u64 = a.textcap; if (nc == 0u64) { nc = 4096u64; }; nc = nc * 2u64; let nb: []u8 = alloc([], nc)!; let i: u64 = 0u64; for (i < a.textlen) { nb[i] = a.text[i]; i += 1u64; }; a.text = nb.ptr; a.textcap = nc; }; a.text[a.textlen] = b; a.textlen += 1u64; }; export fn emitu32(a: *asm_, v: u32) void = { emitbyte(a, (v & 255u32): u8); emitbyte(a, ((v >> 8u32) & 255u32): u8); emitbyte(a, ((v >> 16u32) & 255u32): u8); emitbyte(a, ((v >> 24u32) & 255u32): u8); }; export fn addreloc(a: *asm_, off: u64, kind: i32, s: *asym, add: i64) void = { let r: *areloc = alloc(areloc { off = off, section = 0, kind = kind, asy = s, addend = add, rnext = a.relocs })!; a.relocs = r; }; // Record a relocation that lives in the .data section. Used by // DATAR to patch a 64-bit slot with a symbol's runtime VA. obj.ww // separates these into .rela.data when emitting the .o. export fn addrelocdata(a: *asm_, off: u64, kind: i32, s: *asym, add: i64) void = { let r: *areloc = alloc(areloc { off = off, section = 1, kind = kind, asy = s, addend = add, rnext = a.relocs })!; a.relocs = r; }; // Append one byte to the writable .data buffer. Mirrors emitbyte // but targets a.data instead of a.text. export fn emitdatabyte(a: *asm_, b: u8) void = { if (a.datalen + 1u64 > a.datacap) { let nc: u64 = a.datacap; if (nc == 0u64) { nc = 256u64; }; nc = nc * 2u64; let nb: []u8 = alloc([], nc)!; let i: u64 = 0u64; for (i < a.datalen) { nb[i] = a.data[i]; i += 1u64; }; a.data = nb.ptr; a.datacap = nc; }; a.data[a.datalen] = b; a.datalen += 1u64; }; // ---- register codes ---------------------------------------------------- // Low 3 bits of register encoding. fn rcode(r: i32) i32 = { if (r == D_AX) { return 0; }; if (r == D_CX) { return 1; }; if (r == D_DX) { return 2; }; if (r == D_BX) { return 3; }; if (r == D_SP) { return 4; }; if (r == D_BP) { return 5; }; if (r == D_SI) { return 6; }; if (r == D_DI) { return 7; }; if (r == D_R8) { return 0; }; if (r == D_R9) { return 1; }; if (r == D_R10) { return 2; }; if (r == D_R11) { return 3; }; if (r == D_R12) { return 4; }; if (r == D_R13) { return 5; }; if (r == D_R14) { return 6; }; if (r == D_R15) { return 7; }; if (r == D_X0) { return 0; }; if (r == D_X1) { return 1; }; if (r == D_X2) { return 2; }; if (r == D_X3) { return 3; }; if (r == D_X4) { return 4; }; if (r == D_X5) { return 5; }; if (r == D_X6) { return 6; }; if (r == D_X7) { return 7; }; if (r == D_X8) { return 0; }; if (r == D_X9) { return 1; }; if (r == D_X10) { return 2; }; if (r == D_X11) { return 3; }; if (r == D_X12) { return 4; }; if (r == D_X13) { return 5; }; if (r == D_X14) { return 6; }; if (r == D_X15) { return 7; }; return 0; }; // 1 if r needs the REX high bit (R8..R15 or X8..X15). fn rhi(r: i32) i32 = { if (r >= D_R8) { if (r <= D_R15) { return 1; }; }; if (r >= D_X8) { if (r <= D_X15) { return 1; }; }; return 0; }; fn isxmm(r: i32) bool = { if (r >= D_X0) { if (r <= D_X15) { return true; }; }; return false; }; // ModR/M byte builder. fn modrmbyte(mod: i32, reg: i32, rm: i32) u8 = { return (((mod & 3) << 6) | ((reg & 7) << 3) | (rm & 7)): u8; }; // REX prefix; W=1 for 64-bit operand size. fn emitrex(a: *asm_, regbit: i32, rmbit: i32, w: i32) void = { let b: u8 = 64u8; // 0x40 if (w != 0) { b = b | 8u8; }; if (regbit != 0) { b = b | 4u8; }; if (rmbit != 0) { b = b | 1u8; }; if (b != 64u8) { emitbyte(a, b); } else { if (w != 0) { emitbyte(a, b); }; }; }; // ModR/M + (optional) SIB + displacement for [base+disp]. // Special-cases SP (needs SIB) and BP (forces explicit disp). fn emitmodrmmem(a: *asm_, regfield: i32, base: i32, disp: i64) void = { let rm: i32 = rcode(base); let needsib: bool = (rm == 4); let forceddisp: bool = false; if (rm == 5) { if (disp == 0i64) { forceddisp = true; }; }; let mod: i32 = 2; if (disp == 0i64) { if (!forceddisp) { mod = 0; } else { mod = 1; }; } else { if (disp >= -128i64) { if (disp <= 127i64) { mod = 1; }; }; }; emitbyte(a, modrmbyte(mod, regfield, rm)); if (needsib) { emitbyte(a, 36u8); // 0x24: scale=0 idx=4(none) base=4 }; if (mod == 1) { emitbyte(a, (disp: u64 & 255u64): u8); } else { if (mod == 2) { emitu32(a, disp: u32); };}; }; // reg→reg "src, dst" generic encoding (89 /r, 01 /r, etc.). fn encoderr(a: *asm_, opcode: u8, src: i32, dst: i32) void = { emitrex(a, rhi(src), rhi(dst), 1); emitbyte(a, opcode); emitbyte(a, modrmbyte(3, rcode(src), rcode(dst))); }; // reg→mem(base, disp) (e.g. MOVQ src reg into mem; opcode = 0x89). fn encoderm(a: *asm_, opcode: u8, srcreg: i32, base: i32, disp: i64) void = { emitrex(a, rhi(srcreg), rhi(base), 1); emitbyte(a, opcode); emitmodrmmem(a, rcode(srcreg), base, disp); }; // mem(base, disp) → reg (e.g. MOVQ mem into reg; opcode = 0x8B). fn encodemr(a: *asm_, opcode: u8, dstreg: i32, base: i32, disp: i64) void = { emitrex(a, rhi(dstreg), rhi(base), 1); emitbyte(a, opcode); emitmodrmmem(a, rcode(dstreg), base, disp); }; // OPCODE /n imm32 reg form (e.g. ADDQ $imm, reg). fn encoderiimm32(a: *asm_, opcode: u8, subop: i32, dst: i32, imm: i32) void = { emitrex(a, 0, rhi(dst), 1); emitbyte(a, opcode); emitbyte(a, modrmbyte(3, subop, rcode(dst))); emitu32(a, imm: u32); }; // Unary on reg: F7 /n reg, etc. fn encodeunary(a: *asm_, opcode: u8, subop: i32, dst: i32) void = { emitrex(a, 0, rhi(dst), 1); emitbyte(a, opcode); emitbyte(a, modrmbyte(3, subop, rcode(dst))); }; // SSE2 helpers. Plan 9 syntax: source first, destination second. // For ADDSD-style ops we put dst in the reg field, src in r/m. fn sserr(a: *asm_, prefix: u8, op2: u8, regop: i32, rmop: i32) void = { if (prefix != 0u8) { emitbyte(a, prefix); }; emitrex(a, rhi(regop), rhi(rmop), 0); emitbyte(a, 15u8); // 0x0F emitbyte(a, op2); emitbyte(a, modrmbyte(3, rcode(regop), rcode(rmop))); }; fn ssemrload(a: *asm_, prefix: u8, op2: u8, regop: i32, base: i32, disp: i64) void = { if (prefix != 0u8) { emitbyte(a, prefix); }; emitrex(a, rhi(regop), rhi(base), 0); emitbyte(a, 15u8); emitbyte(a, op2); emitmodrmmem(a, rcode(regop), base, disp); }; // REX.W variant of sse_rr (CVTTSD2SI / CVTSI2SD). fn sserrw(a: *asm_, prefix: u8, op2: u8, regop: i32, rmop: i32) void = { if (prefix != 0u8) { emitbyte(a, prefix); }; emitrex(a, rhi(regop), rhi(rmop), 1); emitbyte(a, 15u8); emitbyte(a, op2); emitbyte(a, modrmbyte(3, rcode(regop), rcode(rmop))); }; // ---- label resolution / fixups ---------------------------------------- fn streq(a: str, b: str) bool = { if (a.len != b.len) { return false; }; let i: i32 = 0; for (i < a.len) { if (a[i] != b[i]) { return false; }; i += 1; }; return true; }; fn resolvelabel(a: *asm_, name: str) u64 = { let s: *asym = a.syms; for (s != nil) { if (s.defined != 0) { if (streq(s.name, name)) { return s.addr; }; }; s = s.snext; }; return 0u64; }; fn labeldefined(a: *asm_, name: str) bool = { let s: *asym = a.syms; for (s != nil) { if (s.defined != 0) { if (streq(s.name, name)) { return true; }; }; s = s.snext; }; return false; }; // ---- fixup helper ----------------------------------------------------- fn addfixup(a: *asm_, off: u64, label: str) void = { let f: *afixup = alloc(afixup { off = off, label = label, fnext = a.fixups })!; a.fixups = f; }; fn isgpr(t: i32) bool = { if (t >= D_AX) { if (t <= D_R15) { return true; }; }; return false; }; // `intern` lives in parse.ww — flat-scope concat lets us call it // directly without an @symbol declaration here. // ---- encode ---------------------------------------------------------- export fn encode(a: *asm_) i32 = { let p: *aprog = a.head; for (p != nil) { // Define any pending label at the current PC. if (p.label.len > 0) { let s: *asym = intern(a, p.label); s.defined = 1; s.istext = 1; s.addr = a.textlen; }; let op: i32 = p.as_; if (op == A_NOP) { p = p.link; continue; }; if (op == A_TEXT) { let s: *asym = intern(a, p.to.asym); s.defined = 1; s.istext = 1; s.isglobal = 1; s.addr = a.textlen; p = p.link; continue; }; if (op == A_DATA) { let s: *asym = intern(a, p.to.asym); s.defined = 1; s.istext = 1; s.isglobal = 1; s.addr = a.textlen; let i: u64 = 0u64; for (i < p.nbytes) { emitbyte(a, p.bytes[i]); i += 1u64; }; p = p.link; continue; }; if (op == A_DATAW) { // Writable variant: bytes go into .data instead of // .text. obj.ww emits the extra section conditionally // on datalen > 0 so .o output stays byte-identical // for inputs that don't use DATAW. let s: *asym = intern(a, p.to.asym); s.defined = 1; s.isdata = 1; s.isglobal = 1; s.addr = a.datalen; let i: u64 = 0u64; for (i < p.nbytes) { emitdatabyte(a, p.bytes[i]); i += 1u64; }; p = p.link; continue; }; if (op == A_DATAR) { // DATAR slot+off(SB), target(SB) — record an // R_X86_64_64 relocation at slot+off in .data // pointing at target. Slot must already be defined // by a prior DATAW. let holder: *asym = intern(a, p.from.asym); if (holder.defined == 0) { p = p.link; continue; }; if (holder.isdata == 0) { p = p.link; continue; }; let target: *asym = intern(a, p.to.asym); let reloff: u64 = holder.addr + p.from.offset: u64; addrelocdata(a, reloff, 1 /* R_X86_64_64 */, target, 0i64); p = p.link; continue; }; if (op == A_RET) { emitbyte(a, 195u8); // 0xC3 p = p.link; continue; }; if (op == A_SYSCALL) { emitbyte(a, 15u8); emitbyte(a, 5u8); p = p.link; continue; }; if (op == A_PUSHQ) { if (rhi(p.to.atype) != 0) { emitbyte(a, 65u8); }; // 0x41 emitbyte(a, (80 + rcode(p.to.atype)): u8); // 0x50 p = p.link; continue; }; if (op == A_POPQ) { if (rhi(p.to.atype) != 0) { emitbyte(a, 65u8); }; emitbyte(a, (88 + rcode(p.to.atype)): u8); // 0x58 p = p.link; continue; }; if (op == A_NEGQ) { encodeunary(a, 247u8, 3, p.to.atype); p = p.link; continue; }; if (op == A_NOTQ) { encodeunary(a, 247u8, 2, p.to.atype); p = p.link; continue; }; if (op == A_IDIVQ) { encodeunary(a, 247u8, 7, p.to.atype); p = p.link; continue; }; if (op == A_DIVQ) { encodeunary(a, 247u8, 6, p.to.atype); p = p.link; continue; }; if (op == A_CQO) { emitbyte(a, 72u8); // REX.W (0x48) emitbyte(a, 153u8); // 0x99 p = p.link; continue; }; if (op == A_MOVQ) { let ft: i32 = p.from.atype; let tt: i32 = p.to.atype; if (ft == D_CONST) { if (isgpr(tt)) { let v: i64 = p.from.offset; if (v >= -2147483648i64) { if (v <= 2147483647i64) { encoderiimm32(a, 199u8, 0, tt, v: i32); p = p.link; continue; };}; // movabs r64, imm64: REX.W B8+rd imm64 emitrex(a, 0, rhi(tt), 1); emitbyte(a, (184 + rcode(tt)): u8); let k: i32 = 0; for (k < 8) { emitbyte(a, ((v: u64 >> (k: u64 * 8u64)) & 255u64): u8); k += 1; }; p = p.link; continue; };}; if (isgpr(ft)) { if (isgpr(tt)) { encoderr(a, 137u8, ft, tt); // 0x89 p = p.link; continue; };}; if (ft == D_INDIR) { if (isgpr(tt)) { encodemr(a, 139u8, tt, p.from.reg, p.from.offset); // 0x8B p = p.link; continue; };}; if (isgpr(ft)) { if (tt == D_INDIR) { encoderm(a, 137u8, ft, p.to.reg, p.to.offset); p = p.link; continue; };}; if (ft == D_CONST) { if (tt == D_INDIR) { emitrex(a, 0, rhi(p.to.reg), 1); emitbyte(a, 199u8); emitmodrmmem(a, 0, p.to.reg, p.to.offset); emitu32(a, p.from.offset: u32); p = p.link; continue; };}; if (ft == D_EXTERN) { if (isgpr(tt)) { // RIP-relative load: 48 8B /r mod=00 rm=5 disp32 emitrex(a, rhi(tt), 0, 1); emitbyte(a, 139u8); emitbyte(a, modrmbyte(0, rcode(tt), 5)); let reloff: u64 = a.textlen; emitu32(a, 0u32); let s: *asym = intern(a, p.from.asym); addreloc(a, reloff, 2, s, -4i64); p = p.link; continue; };}; if (isgpr(ft)) { if (tt == D_EXTERN) { // RIP-relative store: 48 89 /r mod=00 rm=5 disp32 emitrex(a, rhi(ft), 0, 1); emitbyte(a, 137u8); emitbyte(a, modrmbyte(0, rcode(ft), 5)); let reloff: u64 = a.textlen; emitu32(a, 0u32); let s: *asym = intern(a, p.to.asym); addreloc(a, reloff, 2, s, -4i64); p = p.link; continue; };}; os.write(2, "w6a: unsupported MOVQ shape\n".ptr, 27u64); a.errs += 1; p = p.link; continue; }; if (op == A_MOVB) { let ft: i32 = p.from.atype; let tt: i32 = p.to.atype; if (isgpr(ft)) { if (tt == D_INDIR) { emitrex(a, rhi(ft), rhi(p.to.reg), 0); emitbyte(a, 136u8); // 0x88 emitmodrmmem(a, rcode(ft), p.to.reg, p.to.offset); p = p.link; continue; };}; if (ft == D_INDIR) { if (isgpr(tt)) { emitrex(a, rhi(tt), rhi(p.from.reg), 0); emitbyte(a, 138u8); // 0x8A emitmodrmmem(a, rcode(tt), p.from.reg, p.from.offset); p = p.link; continue; };}; os.write(2, "w6a: unsupported MOVB shape\n".ptr, 27u64); a.errs += 1; p = p.link; continue; }; if (op == A_MOVW) { // 16-bit MOV: 0x66 operand-size prefix + the 32-bit // MOV opcodes 0x89 / 0x8B. No REX.W. let ft: i32 = p.from.atype; let tt: i32 = p.to.atype; if (isgpr(ft)) { if (tt == D_INDIR) { emitbyte(a, 102u8); // 0x66 emitrex(a, rhi(ft), rhi(p.to.reg), 0); emitbyte(a, 137u8); // 0x89 emitmodrmmem(a, rcode(ft), p.to.reg, p.to.offset); p = p.link; continue; };}; if (ft == D_INDIR) { if (isgpr(tt)) { emitbyte(a, 102u8); // 0x66 emitrex(a, rhi(tt), rhi(p.from.reg), 0); emitbyte(a, 139u8); // 0x8B emitmodrmmem(a, rcode(tt), p.from.reg, p.from.offset); p = p.link; continue; };}; os.write(2, "w6a: unsupported MOVW shape\n".ptr, 27u64); a.errs += 1; p = p.link; continue; }; if (op == A_MOVZWQ) { // MOVZX r64, r/m16 — 0F B7 /r with REX.W. let ft: i32 = p.from.atype; let tt: i32 = p.to.atype; if (ft == D_INDIR) { if (isgpr(tt)) { emitrex(a, rhi(tt), rhi(p.from.reg), 1); emitbyte(a, 15u8); emitbyte(a, 183u8); // 0xB7 emitmodrmmem(a, rcode(tt), p.from.reg, p.from.offset); p = p.link; continue; };}; os.write(2, "w6a: unsupported MOVZWQ shape\n".ptr, 29u64); a.errs += 1; p = p.link; continue; }; if (op == A_MOVSWQ) { // MOVSX r64, r/m16 — 0F BF /r with REX.W. let ft: i32 = p.from.atype; let tt: i32 = p.to.atype; if (ft == D_INDIR) { if (isgpr(tt)) { emitrex(a, rhi(tt), rhi(p.from.reg), 1); emitbyte(a, 15u8); emitbyte(a, 191u8); // 0xBF emitmodrmmem(a, rcode(tt), p.from.reg, p.from.offset); p = p.link; continue; };}; if (isgpr(ft)) { if (isgpr(tt)) { emitrex(a, rhi(tt), rhi(ft), 1); emitbyte(a, 15u8); emitbyte(a, 191u8); // 0xBF emitbyte(a, modrmbyte(3, rcode(tt), rcode(ft))); p = p.link; continue; };}; os.write(2, "w6a: unsupported MOVSWQ shape\n".ptr, 29u64); a.errs += 1; p = p.link; continue; }; if (op == A_MOVSBQ) { // MOVSX r64, r/m8 — 0F BE /r with REX.W. let ft: i32 = p.from.atype; let tt: i32 = p.to.atype; if (ft == D_INDIR) { if (isgpr(tt)) { emitrex(a, rhi(tt), rhi(p.from.reg), 1); emitbyte(a, 15u8); emitbyte(a, 190u8); // 0xBE emitmodrmmem(a, rcode(tt), p.from.reg, p.from.offset); p = p.link; continue; };}; if (isgpr(ft)) { if (isgpr(tt)) { emitrex(a, rhi(tt), rhi(ft), 1); emitbyte(a, 15u8); emitbyte(a, 190u8); // 0xBE emitbyte(a, modrmbyte(3, rcode(tt), rcode(ft))); p = p.link; continue; };}; os.write(2, "w6a: unsupported MOVSBQ shape\n".ptr, 29u64); a.errs += 1; p = p.link; continue; }; if (op == A_MOVZBQ) { let ft: i32 = p.from.atype; let tt: i32 = p.to.atype; if (ft == D_INDIR) { if (isgpr(tt)) { emitrex(a, rhi(tt), rhi(p.from.reg), 1); emitbyte(a, 15u8); emitbyte(a, 182u8); // 0xB6 emitmodrmmem(a, rcode(tt), p.from.reg, p.from.offset); p = p.link; continue; };}; os.write(2, "w6a: unsupported MOVZBQ shape\n".ptr, 29u64); a.errs += 1; p = p.link; continue; }; if (op == A_MOVL) { let ft: i32 = p.from.atype; let tt: i32 = p.to.atype; if (isgpr(ft)) { if (tt == D_INDIR) { emitrex(a, rhi(ft), rhi(p.to.reg), 0); emitbyte(a, 137u8); emitmodrmmem(a, rcode(ft), p.to.reg, p.to.offset); p = p.link; continue; };}; if (ft == D_INDIR) { if (isgpr(tt)) { emitrex(a, rhi(tt), rhi(p.from.reg), 0); emitbyte(a, 139u8); emitmodrmmem(a, rcode(tt), p.from.reg, p.from.offset); p = p.link; continue; };}; if (isgpr(ft)) { if (isgpr(tt)) { emitrex(a, rhi(ft), rhi(tt), 0); emitbyte(a, 137u8); emitbyte(a, modrmbyte(3, rcode(ft), rcode(tt))); p = p.link; continue; };}; os.write(2, "w6a: unsupported MOVL shape\n".ptr, 27u64); a.errs += 1; p = p.link; continue; }; if (op == A_MOVSXD) { let ft: i32 = p.from.atype; let tt: i32 = p.to.atype; if (ft == D_INDIR) { if (isgpr(tt)) { emitrex(a, rhi(tt), rhi(p.from.reg), 1); emitbyte(a, 99u8); // 0x63 emitmodrmmem(a, rcode(tt), p.from.reg, p.from.offset); p = p.link; continue; };}; if (isgpr(ft)) { if (isgpr(tt)) { emitrex(a, rhi(tt), rhi(ft), 1); emitbyte(a, 99u8); // 0x63 emitbyte(a, modrmbyte(3, rcode(tt), rcode(ft))); p = p.link; continue; };}; os.write(2, "w6a: unsupported MOVSXD shape\n".ptr, 29u64); a.errs += 1; p = p.link; continue; }; if (op == A_MOVSD) { let ft: i32 = p.from.atype; let tt: i32 = p.to.atype; if (isxmm(ft)) { if (isxmm(tt)) { sserr(a, 242u8, 16u8, tt, ft); p = p.link; continue; };}; if (ft == D_INDIR) { if (isxmm(tt)) { ssemrload(a, 242u8, 16u8, tt, p.from.reg, p.from.offset); p = p.link; continue; };}; if (isxmm(ft)) { if (tt == D_INDIR) { ssemrload(a, 242u8, 17u8, ft, p.to.reg, p.to.offset); p = p.link; continue; };}; os.write(2, "w6a: unsupported MOVSD shape\n".ptr, 28u64); a.errs += 1; p = p.link; continue; }; if (op == A_ADDSD) { sserr(a, 242u8, 88u8, p.to.atype, p.from.atype); p = p.link; continue; }; if (op == A_SUBSD) { sserr(a, 242u8, 92u8, p.to.atype, p.from.atype); p = p.link; continue; }; if (op == A_MULSD) { sserr(a, 242u8, 89u8, p.to.atype, p.from.atype); p = p.link; continue; }; if (op == A_DIVSD) { sserr(a, 242u8, 94u8, p.to.atype, p.from.atype); p = p.link; continue; }; if (op == A_UCOMISD) { sserr(a, 102u8, 46u8, p.to.atype, p.from.atype); p = p.link; continue; }; if (op == A_CVTTSD2SI) { sserrw(a, 242u8, 44u8, p.to.atype, p.from.atype); p = p.link; continue; }; if (op == A_CVTSI2SD) { sserrw(a, 242u8, 42u8, p.to.atype, p.from.atype); p = p.link; continue; }; if (op == A_MOVSS) { let ft: i32 = p.from.atype; let tt: i32 = p.to.atype; if (isxmm(ft)) { if (isxmm(tt)) { sserr(a, 243u8, 16u8, tt, ft); p = p.link; continue; };}; if (ft == D_INDIR) { if (isxmm(tt)) { ssemrload(a, 243u8, 16u8, tt, p.from.reg, p.from.offset); p = p.link; continue; };}; if (isxmm(ft)) { if (tt == D_INDIR) { ssemrload(a, 243u8, 17u8, ft, p.to.reg, p.to.offset); p = p.link; continue; };}; os.write(2, "w6a: unsupported MOVSS shape\n".ptr, 28u64); a.errs += 1; p = p.link; continue; }; if (op == A_ADDSS) { sserr(a, 243u8, 88u8, p.to.atype, p.from.atype); p = p.link; continue; }; if (op == A_SUBSS) { sserr(a, 243u8, 92u8, p.to.atype, p.from.atype); p = p.link; continue; }; if (op == A_MULSS) { sserr(a, 243u8, 89u8, p.to.atype, p.from.atype); p = p.link; continue; }; if (op == A_DIVSS) { sserr(a, 243u8, 94u8, p.to.atype, p.from.atype); p = p.link; continue; }; if (op == A_UCOMISS) { sserr(a, 0u8, 46u8, p.to.atype, p.from.atype); p = p.link; continue; }; if (op == A_CVTTSS2SI) { sserrw(a, 243u8, 44u8, p.to.atype, p.from.atype); p = p.link; continue; }; if (op == A_CVTSI2SS) { sserrw(a, 243u8, 42u8, p.to.atype, p.from.atype); p = p.link; continue; }; if (op == A_CVTSD2SS) { sserr(a, 242u8, 90u8, p.to.atype, p.from.atype); p = p.link; continue; }; if (op == A_CVTSS2SD) { sserr(a, 243u8, 90u8, p.to.atype, p.from.atype); p = p.link; continue; }; if (op == A_ADDQ) { let ft: i32 = p.from.atype; let tt: i32 = p.to.atype; if (ft == D_CONST) { if (isgpr(tt)) { encoderiimm32(a, 129u8, 0, tt, p.from.offset: i32); // 0x81 p = p.link; continue; };}; if (ft == D_CONST) { if (tt == D_INDIR) { emitrex(a, 0, rhi(p.to.reg), 1); emitbyte(a, 129u8); emitmodrmmem(a, 0, p.to.reg, p.to.offset); emitu32(a, p.from.offset: u32); p = p.link; continue; };}; if (isgpr(ft)) { if (tt == D_INDIR) { encoderm(a, 1u8, ft, p.to.reg, p.to.offset); p = p.link; continue; };}; if (ft == D_INDIR) { if (isgpr(tt)) { encodemr(a, 3u8, tt, p.from.reg, p.from.offset); p = p.link; continue; };}; encoderr(a, 1u8, ft, tt); p = p.link; continue; }; if (op == A_SUBQ) { let ft: i32 = p.from.atype; let tt: i32 = p.to.atype; if (ft == D_CONST) { if (isgpr(tt)) { encoderiimm32(a, 129u8, 5, tt, p.from.offset: i32); p = p.link; continue; };}; if (ft == D_CONST) { if (tt == D_INDIR) { emitrex(a, 0, rhi(p.to.reg), 1); emitbyte(a, 129u8); emitmodrmmem(a, 5, p.to.reg, p.to.offset); emitu32(a, p.from.offset: u32); p = p.link; continue; };}; if (isgpr(ft)) { if (tt == D_INDIR) { encoderm(a, 41u8, ft, p.to.reg, p.to.offset); // 0x29 p = p.link; continue; };}; if (ft == D_INDIR) { if (isgpr(tt)) { encodemr(a, 43u8, tt, p.from.reg, p.from.offset); // 0x2B p = p.link; continue; };}; encoderr(a, 41u8, ft, tt); p = p.link; continue; }; if (op == A_ANDQ) { // AND r/m64, imm32 — 0x81 /4 (REX.W). Without the // D_CONST path encoderr would silently emit 0x21 // with garbage reg fields. let ft: i32 = p.from.atype; let tt: i32 = p.to.atype; if (ft == D_CONST) { if (isgpr(tt)) { encoderiimm32(a, 129u8, 4, tt, p.from.offset: i32); p = p.link; continue; };}; encoderr(a, 33u8, ft, tt); // 0x21 p = p.link; continue; }; if (op == A_ORQ) { // OR r/m64, imm32 — 0x81 /1 (REX.W). Mirrors ANDQ. let ft: i32 = p.from.atype; let tt: i32 = p.to.atype; if (ft == D_CONST) { if (isgpr(tt)) { encoderiimm32(a, 129u8, 1, tt, p.from.offset: i32); p = p.link; continue; };}; encoderr(a, 9u8, ft, tt); // 0x09 p = p.link; continue; }; if (op == A_XORQ) { let ft: i32 = p.from.atype; let tt: i32 = p.to.atype; if (ft == D_CONST) { if (isgpr(tt)) { encoderiimm32(a, 129u8, 6, tt, p.from.offset: i32); p = p.link; continue; };}; encoderr(a, 49u8, ft, tt); // 0x31 p = p.link; continue; }; if (op == A_IMULQ) { emitrex(a, rhi(p.to.atype), rhi(p.from.atype), 1); emitbyte(a, 15u8); emitbyte(a, 175u8); // 0xAF emitbyte(a, modrmbyte(3, rcode(p.to.atype), rcode(p.from.atype))); p = p.link; continue; }; if (op == A_SHLQ) { encodeunary(a, 211u8, 4, p.to.atype); p = p.link; continue; }; // 0xD3 if (op == A_SHRQ) { encodeunary(a, 211u8, 5, p.to.atype); p = p.link; continue; }; if (op == A_CMPQ) { let ft: i32 = p.from.atype; let tt: i32 = p.to.atype; if (ft == D_CONST) { if (isgpr(tt)) { encoderiimm32(a, 129u8, 7, tt, p.from.offset: i32); p = p.link; continue; };}; encoderr(a, 57u8, ft, tt); // 0x39 p = p.link; continue; }; if (op == A_LEAQ) { let ft: i32 = p.from.atype; let tt: i32 = p.to.atype; if (ft == D_INDIR) { if (isgpr(tt)) { encodemr(a, 141u8, tt, p.from.reg, p.from.offset); // 0x8D p = p.link; continue; };}; if (ft == D_EXTERN) { if (isgpr(tt)) { emitrex(a, rhi(tt), 0, 1); emitbyte(a, 141u8); emitbyte(a, modrmbyte(0, rcode(tt), 5)); let reloff: u64 = a.textlen; emitu32(a, 0u32); let s: *asym = intern(a, p.from.asym); addreloc(a, reloff, 2, s, -4i64); p = p.link; continue; };}; p = p.link; continue; }; if (op == A_CALL) { let tt: i32 = p.to.atype; if (tt == D_EXTERN) { emitbyte(a, 232u8); // 0xE8 let reloff: u64 = a.textlen; emitu32(a, 0u32); let s: *asym = intern(a, p.to.asym); addreloc(a, reloff, 4, s, -4i64); p = p.link; continue; }; if (tt == D_BRANCH) { emitbyte(a, 232u8); addfixup(a, a.textlen, p.to.asym); emitu32(a, 0u32); p = p.link; continue; }; if (isgpr(tt)) { if (rhi(tt) != 0) { emitbyte(a, 65u8); }; emitbyte(a, 255u8); // 0xFF emitbyte(a, modrmbyte(3, 2, rcode(tt))); p = p.link; continue; }; p = p.link; continue; }; if (op == A_JMP) { emitbyte(a, 233u8); // 0xE9 addfixup(a, a.textlen, p.to.asym); emitu32(a, 0u32); p = p.link; continue; }; // Conditional jumps. 0x0F + cc + rel32. let cc: u8 = 0u8; let isjcc: bool = true; if (op == A_JE) { cc = 132u8; } // 0x84 else { if (op == A_JZ) { cc = 132u8; } else { if (op == A_JNE) { cc = 133u8; } else { if (op == A_JNZ) { cc = 133u8; } else { if (op == A_JL) { cc = 140u8; } else { if (op == A_JLE) { cc = 142u8; } else { if (op == A_JG) { cc = 143u8; } else { if (op == A_JGE) { cc = 141u8; } else { if (op == A_JB) { cc = 130u8; } else { if (op == A_JBE) { cc = 134u8; } else { if (op == A_JA) { cc = 135u8; } else { if (op == A_JAE) { cc = 131u8; } else { if (op == A_JP) { cc = 138u8; } // 0x8A, UCOMISD unordered (#97) else { isjcc = false; };};};};};};};};};};};};}; if (isjcc) { emitbyte(a, 15u8); emitbyte(a, cc); addfixup(a, a.textlen, p.to.asym); emitu32(a, 0u32); p = p.link; continue; }; os.write(2, "w6a: unsupported opcode\n".ptr, 23u64); a.errs += 1; p = p.link; }; // Second pass: patch fixups (forward label refs). let f: *afixup = a.fixups; for (f != nil) { if (!labeldefined(a, f.label)) { os.write(2, "w6a: undefined label '".ptr, 21u64); let lbl: str = f.label; os.write(2, lbl.ptr, lbl.len: u64); os.write(2, "'\n".ptr, 2u64); a.errs += 1; f = f.fnext; continue; }; let target: u64 = resolvelabel(a, f.label); let rel: i64 = target: i64 - (f.off: i64 + 4i64); let rel32: u32 = rel: u32; a.text[f.off] = (rel32 & 255u32): u8; a.text[f.off + 1u64] = ((rel32 >> 8u32) & 255u32): u8; a.text[f.off + 2u64] = ((rel32 >> 16u32) & 255u32): u8; a.text[f.off + 3u64] = ((rel32 >> 24u32) & 255u32): u8; f = f.fnext; }; return a.errs; }; // selfhost/cmd/w6a/obj.ww — port of cmd/w6a/obj.c. // // Emit a tiny ELF64 relocatable object. Layout (in file order): // [0] ELF header // [1] Section .text (program bytes) // [2] Section .rela.text (relocations) // [3] Section .symtab // [4] Section .strtab // [5] Section .shstrtab // [6] Section header table // // Symtab indices: 0 = STN_UNDEF, 1.. = our syms. Only GLOBAL symbols. package w6a; import os; import opcodes; // Local wrappers around os.writeall's tagged return — collapse the // (i64 | oserror) back to a boolean / int sentinel for the // length-checked / fire-and-forget write patterns below. fn wrn(fd: i32, p: *u8, n: u64, want: i64) bool = { let r: (i64 | os.oserror) = os.writeall(fd, p, n); match (r) { case let v: i64 => return v == want; case let e: os.oserror => return false; }; return false; }; fn wrdrop(fd: i32, p: *u8, n: u64) void = { let r: (i64 | os.oserror) = os.writeall(fd, p, n); match (r) { case let v: i64 => { }; case let e: os.oserror => { }; }; }; // ---- ELF constants ---------------------------------------------------- def ELFCLASS64: u8 = 2u8; def ELFDATA2LSB: u8 = 1u8; def EV_CURRENT_W: u32 = 1u32; def ET_REL_W: u16 = 1u16; def EM_X86_64_W: u16 = 62u16; def SHT_NULL_C: u32 = 0u32; def SHT_PROGBITS_C: u32 = 1u32; def SHT_SYMTAB_C: u32 = 2u32; def SHT_STRTAB_C: u32 = 3u32; def SHT_RELA_C: u32 = 4u32; def SHF_WRITE: u64 = 1u64; def SHF_ALLOC: u64 = 2u64; def SHF_EXECINSTR: u64 = 4u64; def SHF_INFO_LINK: u64 = 64u64; // 0x40 def STB_GLOBAL: u8 = 1u8; def STT_NOTYPE: u8 = 0u8; def STT_OBJECT: u8 = 1u8; def STT_FUNC: u8 = 2u8; // Sizes of fixed structures. def EHDR_SZ: u64 = 64u64; def SHDR_SZ: u64 = 64u64; def SYM_SZ: u64 = 24u64; def RELA_SZ: u64 = 24u64; // ---- LE byte writers (own the bytes — write into a *u8 + offset) ---- fn wru8(p: *u8, off: u64, v: u8) void = { p[off] = v; }; fn wru16(p: *u8, off: u64, v: u16) void = { p[off] = (v & 255u16): u8; p[off + 1u64] = ((v >> 8u16) & 255u16): u8; }; fn wru32(p: *u8, off: u64, v: u32) void = { p[off] = (v & 255u32): u8; p[off + 1u64] = ((v >> 8u32) & 255u32): u8; p[off + 2u64] = ((v >> 16u32) & 255u32): u8; p[off + 3u64] = ((v >> 24u32) & 255u32): u8; }; fn wru64(p: *u8, off: u64, v: u64) void = { wru32(p, off, (v & 4294967295u64): u32); wru32(p, off + 4u64, ((v >> 32u64) & 4294967295u64): u32); }; // ---- growable byte buffer --------------------------------------------- type buf = struct { p: *u8, n: u64, cap: u64, }; fn bufinit(b: *buf) void = { b.cap = 256u64; b.n = 0u64; let np: []u8 = alloc([], b.cap)!; b.p = np.ptr; }; fn bufgrow(b: *buf, need: u64) void = { if (b.n + need <= b.cap) { return; }; let nc: u64 = b.cap; for (nc < b.n + need) { nc = nc * 2u64; }; let np: []u8 = alloc([], nc)!; let i: u64 = 0u64; for (i < b.n) { np[i] = b.p[i]; i += 1u64; }; b.p = np.ptr; b.cap = nc; }; fn bufputb(b: *buf, src: *u8, n: u64) void = { bufgrow(b, n); let i: u64 = 0u64; for (i < n) { b.p[b.n + i] = src[i]; i += 1u64; }; b.n += n; }; // Write a NUL-terminated C-string copy of `s` into b. Returns offset // where it started (suitable for st_name / sh_name fields). fn bufputcstr(b: *buf, s: str) u32 = { let off: u32 = b.n: u32; bufgrow(b, s.len: u64 + 1u64); let i: i32 = 0; for (i < s.len) { b.p[b.n] = s[i]; b.n += 1u64; i += 1; }; b.p[b.n] = 0u8; b.n += 1u64; return off; }; // ---- emitelf --------------------------------------------------------- export fn emitelf(a: *asm_, fd: i32) i32 = { let shstr: buf; bufinit(&shstr); let str_: buf; bufinit(&str_); let sym: buf; bufinit(&sym); let rela: buf; bufinit(&rela); let relad: buf; bufinit(&relad); // Index 0 = empty. let zero: u8 = 0u8; bufputb(&shstr, &zero, 1u64); bufputb(&str_, &zero, 1u64); let hasdata: bool = a.datalen > 0u64; let hasdatarelocs: bool = false; let rscan: *areloc = a.relocs; for (rscan != nil) { if (rscan.section == 1) { hasdatarelocs = true; }; rscan = rscan.rnext; }; // Section indices (mirror cmd/w6a/obj.c): // without data, without data-relocs: // 1=.text 2=.rela.text 3=.symtab 4=.strtab 5=.shstrtab // with data, no data-relocs: // 1=.text 2=.rela.text 3=.data 4=.symtab 5=.strtab 6=.shstrtab // with data + data-relocs: // 1=.text 2=.rela.text 3=.data 4=.rela.data 5=.symtab // 6=.strtab 7=.shstrtab let SH_TEXT: u16 = 1u16; let SH_DATA: u16 = 0u16; let SH_RELAD: u16 = 0u16; let SH_SYMTAB: u16 = 3u16; if (hasdata) { SH_DATA = 3u16; if (hasdatarelocs) { SH_RELAD = 4u16; SH_SYMTAB = 5u16; } else { SH_SYMTAB = 4u16; }; }; let SH_STRTAB: u16 = SH_SYMTAB + 1u16; let SH_SHSTR: u16 = SH_STRTAB + 1u16; // Section name offsets. Append .data / .rela.data only when // used so the .shstrtab buffer stays byte-identical for the // no-DATAW case (test 991 byte-diff invariant). let shntext: u32 = bufputcstr(&shstr, ".text"); let shnrela: u32 = bufputcstr(&shstr, ".rela.text"); let shndata: u32 = 0u32; let shnrelad: u32 = 0u32; if (hasdata) { shndata = bufputcstr(&shstr, ".data"); }; if (hasdata) { if (hasdatarelocs) { shnrelad = bufputcstr(&shstr, ".rela.data"); };}; let shnsymtab: u32 = bufputcstr(&shstr, ".symtab"); let shnstrtab: u32 = bufputcstr(&shstr, ".strtab"); let shnshstrtab: u32 = bufputcstr(&shstr, ".shstrtab"); // Symbol 0 — STN_UNDEF (24 zero bytes). let zsym: [24]u8; let zi: i32 = 0; for (zi < 24) { zsym[zi] = 0u8; zi += 1; }; bufputb(&sym, zsym.ptr, 24u64); // Build symbols. let idx: i32 = 1; let s: *asym = a.syms; for (s != nil) { let entry: [24]u8; let ei: i32 = 0; for (ei < 24) { entry[ei] = 0u8; ei += 1; }; let stname: u32 = bufputcstr(&str_, s.name); wru32(entry.ptr, 0u64, stname); if (s.defined != 0) { if (s.isdata != 0) { wru8(entry.ptr, 4u64, ((STB_GLOBAL << 4u8) | STT_OBJECT)); wru16(entry.ptr, 6u64, SH_DATA); } else { wru8(entry.ptr, 4u64, ((STB_GLOBAL << 4u8) | STT_FUNC)); wru16(entry.ptr, 6u64, SH_TEXT); }; wru64(entry.ptr, 8u64, s.addr); } else { wru8(entry.ptr, 4u64, ((STB_GLOBAL << 4u8) | STT_NOTYPE)); wru16(entry.ptr, 6u64, 0u16); }; bufputb(&sym, entry.ptr, 24u64); s.idx = idx; idx += 1; s = s.snext; }; // Build relocations — split into text vs data buffers. let r: *areloc = a.relocs; for (r != nil) { let entry: [24]u8; wru64(entry.ptr, 0u64, r.off); let rinfo: u64 = (r.asy.idx: u64 << 32u64) | (r.kind: u64 & 4294967295u64); wru64(entry.ptr, 8u64, rinfo); wru64(entry.ptr, 16u64, r.addend: u64); if (r.section == 1) { bufputb(&relad, entry.ptr, 24u64); } else { bufputb(&rela, entry.ptr, 24u64); }; r = r.rnext; }; // File offsets. let off: u64 = EHDR_SZ; let offtext: u64 = off; off = off + a.textlen; let offrela: u64 = off; off = off + rela.n; let offdata: u64 = off; if (hasdata) { off = off + a.datalen; }; let offrelad: u64 = off; if (hasdata) { if (hasdatarelocs) { off = off + relad.n; };}; let offsym: u64 = off; off = off + sym.n; let offstr: u64 = off; off = off + str_.n; let offshstr: u64 = off; off = off + shstr.n; for ((off & 7u64) != 0u64) { off += 1u64; }; let offshdr: u64 = off; let NSECT: u16 = 6u16; if (hasdata) { if (hasdatarelocs) { NSECT = 8u16; } else { NSECT = 7u16; }; }; // ---- Ehdr ---- let eh: [64]u8; let i: i32 = 0; for (i < 64) { eh[i] = 0u8; i += 1; }; eh[0] = 127u8; // 0x7f eh[1] = 69u8; // 'E' eh[2] = 76u8; // 'L' eh[3] = 70u8; // 'F' eh[4] = ELFCLASS64; eh[5] = ELFDATA2LSB; eh[6] = EV_CURRENT_W: u8; wru16(eh.ptr, 16u64, ET_REL_W); wru16(eh.ptr, 18u64, EM_X86_64_W); wru32(eh.ptr, 20u64, EV_CURRENT_W); wru64(eh.ptr, 24u64, 0u64); // e_entry wru64(eh.ptr, 32u64, 0u64); // e_phoff wru64(eh.ptr, 40u64, offshdr); // e_shoff wru32(eh.ptr, 48u64, 0u32); // e_flags wru16(eh.ptr, 52u64, 64u16); // e_ehsize wru16(eh.ptr, 54u64, 0u16); // e_phentsize wru16(eh.ptr, 56u64, 0u16); // e_phnum wru16(eh.ptr, 58u64, 64u16); // e_shentsize wru16(eh.ptr, 60u64, NSECT); // e_shnum wru16(eh.ptr, 62u64, SH_SHSTR); // e_shstrndx if (!wrn(fd, eh.ptr, 64u64, 64i64)) { return -1; }; if (a.textlen > 0u64) { if (!wrn(fd, a.text, a.textlen, a.textlen: i64)) { return -1; }; }; if (rela.n > 0u64) { if (!wrn(fd, rela.p, rela.n, rela.n: i64)) { return -1; }; }; if (hasdata) { if (a.datalen > 0u64) { if (!wrn(fd, a.data, a.datalen, a.datalen: i64)) { return -1; }; }; if (hasdatarelocs) { if (relad.n > 0u64) { if (!wrn(fd, relad.p, relad.n, relad.n: i64)) { return -1; }; }; }; }; if (sym.n > 0u64) { if (!wrn(fd, sym.p, sym.n, sym.n: i64)) { return -1; }; }; if (str_.n > 0u64) { if (!wrn(fd, str_.p, str_.n, str_.n: i64)) { return -1; }; }; if (shstr.n > 0u64) { if (!wrn(fd, shstr.p, shstr.n, shstr.n: i64)) { return -1; }; }; // Pad to 8 before shdrs. let written: u64 = EHDR_SZ + a.textlen + rela.n + sym.n + str_.n + shstr.n; if (hasdata) { written += a.datalen; if (hasdatarelocs) { written += relad.n; }; }; for ((written & 7u64) != 0u64) { wrdrop(fd, &zero, 1u64); written += 1u64; }; // Section header table — 6 headers of 64 bytes each = 384 bytes. let shbuf: [64]u8; // SHT_NULL let sn: i32 = 0; for (sn < 64) { shbuf[sn] = 0u8; sn += 1; }; wrdrop(fd, shbuf.ptr, 64u64); // .text sn = 0; for (sn < 64) { shbuf[sn] = 0u8; sn += 1; }; wru32(shbuf.ptr, 0u64, shntext); wru32(shbuf.ptr, 4u64, SHT_PROGBITS_C); wru64(shbuf.ptr, 8u64, SHF_ALLOC | SHF_EXECINSTR); wru64(shbuf.ptr, 24u64, offtext); wru64(shbuf.ptr, 32u64, a.textlen); wru64(shbuf.ptr, 48u64, 1u64); // sh_addralign wrdrop(fd, shbuf.ptr, 64u64); // .rela.text sn = 0; for (sn < 64) { shbuf[sn] = 0u8; sn += 1; }; wru32(shbuf.ptr, 0u64, shnrela); wru32(shbuf.ptr, 4u64, SHT_RELA_C); wru64(shbuf.ptr, 8u64, SHF_INFO_LINK); wru64(shbuf.ptr, 24u64, offrela); wru64(shbuf.ptr, 32u64, rela.n); wru32(shbuf.ptr, 40u64, SH_SYMTAB: u32); // sh_link wru32(shbuf.ptr, 44u64, 1u32); // sh_info = .text idx wru64(shbuf.ptr, 48u64, 8u64); wru64(shbuf.ptr, 56u64, RELA_SZ); wrdrop(fd, shbuf.ptr, 64u64); if (hasdata) { // .data sn = 0; for (sn < 64) { shbuf[sn] = 0u8; sn += 1; }; wru32(shbuf.ptr, 0u64, shndata); wru32(shbuf.ptr, 4u64, SHT_PROGBITS_C); wru64(shbuf.ptr, 8u64, SHF_ALLOC | SHF_WRITE); wru64(shbuf.ptr, 24u64, offdata); wru64(shbuf.ptr, 32u64, a.datalen); wru64(shbuf.ptr, 48u64, 8u64); // sh_addralign wrdrop(fd, shbuf.ptr, 64u64); if (hasdatarelocs) { // .rela.data sn = 0; for (sn < 64) { shbuf[sn] = 0u8; sn += 1; }; wru32(shbuf.ptr, 0u64, shnrelad); wru32(shbuf.ptr, 4u64, SHT_RELA_C); wru64(shbuf.ptr, 8u64, SHF_INFO_LINK); wru64(shbuf.ptr, 24u64, offrelad); wru64(shbuf.ptr, 32u64, relad.n); wru32(shbuf.ptr, 40u64, SH_SYMTAB: u32); wru32(shbuf.ptr, 44u64, SH_DATA: u32); // applies to .data wru64(shbuf.ptr, 48u64, 8u64); wru64(shbuf.ptr, 56u64, RELA_SZ); wrdrop(fd, shbuf.ptr, 64u64); }; }; // .symtab sn = 0; for (sn < 64) { shbuf[sn] = 0u8; sn += 1; }; wru32(shbuf.ptr, 0u64, shnsymtab); wru32(shbuf.ptr, 4u64, SHT_SYMTAB_C); wru64(shbuf.ptr, 24u64, offsym); wru64(shbuf.ptr, 32u64, sym.n); wru32(shbuf.ptr, 40u64, SH_STRTAB: u32); // sh_link wru32(shbuf.ptr, 44u64, 1u32); // sh_info = one local (STN_UNDEF) wru64(shbuf.ptr, 48u64, 8u64); wru64(shbuf.ptr, 56u64, SYM_SZ); wrdrop(fd, shbuf.ptr, 64u64); // .strtab sn = 0; for (sn < 64) { shbuf[sn] = 0u8; sn += 1; }; wru32(shbuf.ptr, 0u64, shnstrtab); wru32(shbuf.ptr, 4u64, SHT_STRTAB_C); wru64(shbuf.ptr, 24u64, offstr); wru64(shbuf.ptr, 32u64, str_.n); wru64(shbuf.ptr, 48u64, 1u64); wrdrop(fd, shbuf.ptr, 64u64); // .shstrtab sn = 0; for (sn < 64) { shbuf[sn] = 0u8; sn += 1; }; wru32(shbuf.ptr, 0u64, shnshstrtab); wru32(shbuf.ptr, 4u64, SHT_STRTAB_C); wru64(shbuf.ptr, 24u64, offshstr); wru64(shbuf.ptr, 32u64, shstr.n); wru64(shbuf.ptr, 48u64, 1u64); wrdrop(fd, shbuf.ptr, 64u64); return 0; }; // selfhost/cmd/w6a/main.ww — port of cmd/w6a/main.c. // // w6a = amd64 assembler. Read .s, parse, encode, emit ELF .o. // // w6a_ww -o file.o file.s package main; import os; import rt; import strings; import opcodes; import lex; import parse; import asm; import obj; fn cstreq(a: *u8, lit: str) bool = { let n: u64 = lit.len: u64; let i: u64 = 0u64; for (i < n) { let li: i32 = i: i32; if (a[i] != lit[li]) { return false; }; i += 1u64; }; if (a[i] != 0u8) { return false; }; return true; }; fn cstrlen(p: *u8) u64 = { let n: u64 = 0u64; for (p[n] != 0u8) { n += 1u64; }; return n; }; // pathstr — view a NUL-terminated *u8 as a str. Bridges argv-style // callers to lib/os entrypoints (str post-task-#23). fn pathstr(p: *u8) str = { let r: str; r.ptr = p; r.len = cstrlen(p): i32; return r; }; // Slurp the whole file into a fresh buffer. fn slurp(path: *u8) (*u8, u64) = { let fd: i32 = os.open(pathstr(path), os.flag.RDONLY, 0i32); if (fd < 0) { return nil, 0u64; }; let szr: (i64 | os.oserror) = os.filesize(fd); let n: i64 = 0i64; match (szr) { case let v: i64 => n = v; case let e: os.oserror => { os.close(fd); return nil, 0u64; }; }; let nz: u64 = n: u64; let buf: []u8 = alloc([], nz + 1u64)!; buf.len = (nz + 1u64): i32; let rr: (i64 | os.oserror) = os.readall(fd, buf.ptr, nz); os.close(fd); let got: i64 = 0i64; match (rr) { case let v: i64 => got = v; case let e: os.oserror => return nil, 0u64; }; if (got != n) { return nil, 0u64; }; buf[nz] = 0u8; return buf.ptr, nz; }; export fn main(argc: i32, argv: **u8) i32 = { let src: *u8 = nil; let out: *u8 = nil; let i: i32 = 1; for (i < argc) { let a: *u8 = argv[i]; if (cstreq(a, "-o")) { i += 1; if (i >= argc) { os.write(2, "w6a: -o requires arg\n".ptr, 20u64); return 2; }; out = argv[i]; } else { if (a[0u64] == 45u8) { os.write(2, "w6a: unknown flag\n".ptr, 17u64); return 2; } else { if (src != nil) { os.write(2, "w6a: only one input\n".ptr, 19u64); return 2; }; src = a; }; }; i += 1; }; if (src == nil) { os.write(2, "usage: w6a_ww -o file.o file.s\n".ptr, 30u64); return 2; }; if (out == nil) { os.write(2, "w6a: missing -o\n".ptr, 15u64); return 2; }; let buf: *u8; let blen: u64; buf, blen = slurp(src); if (buf == nil) { os.write(2, "w6a: cannot read input\n".ptr, 22u64); return 1; }; let s: asm_; let nlen: u64 = cstrlen(src); let view: str; view.ptr = src; view.len = nlen: i32; let fname: str = strings.dup(view); init(&s, fname, buf, blen); if (parse(&s) != 0) { return 1; }; if (encode(&s) != 0) { return 1; }; // Open output for write. let fd: i32 = os.open(pathstr(out), os.flag.WRONLY | os.flag.CREATE | os.flag.TRUNC, 420i32); // 0o644 if (fd < 0) { os.write(2, "w6a: cannot open output\n".ptr, 23u64); return 1; }; let rc: i32 = emitelf(&s, fd); os.close(fd); return rc; };