Until now the only workflow was docs.yml — nothing gated a change on the compiler even building, on `x test` / `x test-tools`, or on the headline C-free self-rebuild reproducing the seed. Add two Forgejo Actions workflows on the same `docker` runner the docs job uses. The toolchain is macOS-first: the self-hosted compiler emits the Darwin libc standard-stream globals (`__stdoutp`/`__stderrp`), the one thing that stops its IR from linking on Linux. Everything else is portable — clang-16 assembles the seed cleanly and the C-free bootstrap reproduces it byte-for-byte on Linux too. So rather than require a macOS runner (none is registered), bridge that single gap with a tiny **C-free LLVM-IR shim** (tools/ci/linux_stdio_shim.ll) that defines the Darwin-named globals over glibc's stdout/stderr, injected into every clang link via LUDIC_CC. The language keeps its no-C-compiler guarantee. Workflows: - ci.yml — bootstrap the toolchain from the seed, then `x test` + `x test-tools` + the docs-cover-the-implementation checks, on push to main and PRs. - bootstrap.yml — `x bootstrap-cfree`: assert the seed rebuilds itself byte-for-byte (returns non-zero on drift). Make the suites host-aware so a Linux run is green without hiding anything: a new is_darwin()/skip() pair (tools/x/prelude.ludic) makes the cases that are genuinely macOS-ABI bound — the Cocoa-windowed `ludicc -o` link, the golden render hashes (blessed on macOS; text raster differs by a hair elsewhere), the Os known-folder/uname surface, Fs.list and the LSP workspace walk (both read the BSD dirent layout) — print a visible `skip` off Darwin instead of failing. On macOS every one of them still runs: suites stay 56 / 29 / 29 green there, and run 51 / 28 (+skips) on Linux, bootstrap-cfree byte-identical on both. The formatting gate is ludic-fmt *idempotence* (already in `x test-tools`), not `fmt(x) == x`: this codebase deliberately preserves hand alignment, so a strict "already formatted" check would fight that contract. A prebuilt CI image with clang-16 + python3 baked in is the obvious follow-up speed-up (ties into the packaging work in #33). Closes #32 Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
146 lines
5.5 KiB
Text
146 lines
5.5 KiB
Text
# prelude.ludic — the shared runtime for `x`, the Ludic task runner.
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#
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# `x` replaces every build/test/bootstrap shell script in the repo: it is a
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# single native binary (bin/x) that drives clang, the self-host compiler and the
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# unix tools the same way the old *.sh files did — only now it is written in
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# Ludic and compiled by Ludic. This fragment is the tiny standard library the
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# commands lean on: process control, file IO, string trimming and a colored
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# PASS/FAIL test harness. It carries no ECS, so it links as a plain CLI program.
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#
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# Everything runs relative to the current directory, so `x` must be invoked from
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# the repository root (the one-line bootstrap in README.md does exactly that).
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# ---- file IO ----------------------------------------------------------------
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# read a whole file into a fresh NUL-terminated buffer (null if it cannot open)
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function read_file(path: pointer) -> pointer {
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let f = file_open(path, "rb")
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if (f == null) { return null }
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file_seek(f, 0, 2)
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let n = file_tell(f)
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file_seek(f, 0, 0)
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let buf = bytes(n + 1)
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file_read(f, buf, n)
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buf[n] = 0
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file_close(f)
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return buf
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}
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# overwrite `path` with `s`; returns false if it could not be opened
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function write_file(path: pointer, s: pointer) -> bool {
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let f = file_open(path, "wb")
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if (f == null) { return false }
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file_write(f, s, len(s))
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file_close(f)
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return true
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}
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function file_exists(path: pointer) -> bool { return shq(`test -e {path}`) }
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function is_exec(path: pointer) -> bool { return shq(`test -x {path}`) }
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# is `a` newer than `b` (like the shell's `-nt`)?
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function newer(a: pointer, b: pointer) -> bool { return shq(`test {a} -nt {b}`) }
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# ---- process control --------------------------------------------------------
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# `run` returns the raw wait status; the program's exit code is the high byte.
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function exit_code(st: int) -> int { return (st >> 8) & 255 }
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# run a command, returning its exit code (0 = success)
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function sh(cmd: pointer) -> int { return exit_code(run(cmd)) }
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# run a command, true when it succeeded
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function shq(cmd: pointer) -> bool { return exit_code(run(cmd)) == 0 }
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# run `cmd` and return its stdout (stderr discarded). Never null.
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function capture(cmd: pointer) -> pointer {
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let tmp = "/tmp/x_capture.out"
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run(`{cmd} > {tmp} 2>/dev/null`)
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let s = read_file(tmp)
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if (s == null) { return "" }
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return s
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}
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# run `cmd`, join its output lines with single spaces and trim — the Ludic twin
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# of the shell idiom `$(cmd | tr '\n' ' ' | sed 's/ *$//')`.
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function capture_line(cmd: pointer) -> pointer {
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return capture(`{cmd} | tr '\n' ' ' | sed 's/ *$//'`)
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}
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# the last line of a command's output (for one-line error messages)
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function capture_tail(cmd: pointer) -> pointer {
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return capture(`{cmd} 2>&1 | tail -1`)
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}
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function getenv_or(name: pointer, dflt: pointer) -> pointer {
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let v = getenv(name)
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if (v == null) { return dflt }
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return v
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}
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# flatten a relative example path into a filesystem-safe token: '/' -> '_', so a
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# categorised path like "games/snake" yields a single-segment temp name
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# ("games_snake") that never implies a missing /tmp subdirectory.
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function flat(p: pointer) -> pointer {
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let n = len(p)
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let b = bytes(n + 1)
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for i in 0 .. n {
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var c = p[i]
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if (c == 47) { c = 95 } # '/' (47) -> '_' (95)
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b[i] = c
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}
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b[n] = 0
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return b
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}
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# ---- stdout helpers ---------------------------------------------------------
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# write `s` with no trailing newline (print() always adds one)
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function out(s: pointer) -> void { file_write(file_stdout(), s, len(s)) }
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function err(s: pointer) -> void { file_write(file_stderr(), s, len(s)) }
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# an ESC byte — the lexer has no \033, so build it by hand
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function esc() -> pointer { let b = bytes(2); b[0] = 27; b[1] = 0; return b }
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function c_green() -> pointer { return esc() + "[32m" }
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function c_red() -> pointer { return esc() + "[31m" }
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function c_reset() -> pointer { return esc() + "[0m" }
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# ---- the PASS/FAIL test harness ---------------------------------------------
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var PASS: int = 0
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var FAIL: int = 0
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function ok(msg: pointer) -> void {
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PASS = PASS + 1
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print(` {c_green()}PASS{c_reset()} {msg}`)
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}
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function bad(msg: pointer) -> void {
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FAIL = FAIL + 1
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print(` {c_red()}FAIL{c_reset()} {msg}`)
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}
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function bad2(msg: pointer, detail: pointer) -> void {
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bad(msg)
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print(` {detail}`)
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}
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# assert two strings equal, reporting the mismatch
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function check(label: pointer, got: pointer, want: pointer) -> void {
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if (got == want) { ok(label) }
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else { bad2(label, `expected [{want}] got [{got}]`) }
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}
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# ---- host platform ----------------------------------------------------------
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# A few cases exercise macOS-specific runtime ABI — Cocoa windowing, the BSD
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# utsname/dirent layout — or compare against renders blessed on macOS. The
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# self-hosted compiler and its C-free bootstrap are host-neutral (they produce
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# byte-identical IR on any host), so the bulk of the suite runs anywhere; only
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# these platform-bound cases are skipped — visibly, never silently — when the
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# suite runs off Darwin. That lets a Linux CI runner gate every portable
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# guarantee without red from the parts that are macOS-only today.
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function host_os() -> pointer { return capture_line("uname -s") }
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function is_darwin() -> bool { return host_os() == "Darwin" }
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function skip(msg: pointer) -> void { print(` skip {msg}`) }
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# print the "== N passed, M failed ==" footer and return the process exit code
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function report() -> int {
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print("")
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print(`== {string(PASS)} passed, {string(FAIL)} failed ==`)
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if (FAIL == 0) { return 0 }
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return 1
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}
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