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rucc_driver/
preprocess.rs

1//! Running phase 4 and writing what came out, which is what `-E` asks for.
2//!
3//! Design: `spec/04-driver-and-cli.md` sections 4.3 and 4.4, and `spec/05-preprocessor.md`.
4//!
5//! This is the first phase the driver actually runs, so it is also where the file system
6//! implementation lives. Everything below the driver reads through the [`FileSystem`] trait,
7//! and [`OsFileSystem`] is the one implementation of it that talks to the disk. Keeping it
8//! here rather than in `rucc-session` is what keeps the layer rule true: a preprocessor test
9//! is a map from path to bytes and cannot accidentally read the machine it runs on.
10
11use std::io;
12use std::path::{Path, PathBuf};
13
14use rucc_diag::{Diagnostic, Severity, SourceBytes, SourceMap};
15use rucc_pp::{Context, Dependency, Predef, Preprocessor, PrintOptions};
16use rucc_session::{FileSystem, Options, Session};
17
18/// The file system the compiler reads through when it is a compiler rather than a library.
19#[derive(Debug, Clone, Copy, Default)]
20pub struct OsFileSystem;
21
22impl OsFileSystem {
23    /// The one value of this type.
24    #[must_use]
25    pub fn new() -> OsFileSystem {
26        OsFileSystem
27    }
28}
29
30impl FileSystem for OsFileSystem {
31    fn read(&self, path: &Path) -> io::Result<SourceBytes> {
32        // Bytes rather than a string. A source file that is not valid UTF-8 is a file this
33        // compiler still has to have an opinion about, and phase 1 is where that opinion
34        // belongs, not here. Whether the bytes are a mapping or a buffer is `map`'s decision
35        // and is invisible from here.
36        crate::map::read(path)
37    }
38
39    fn identity(&self, path: &Path) -> PathBuf {
40        // `canonicalize` is the portable spelling of what GCC does with the device and inode
41        // pair: it resolves the relative part, the `..` and the symlinks, so that every route
42        // to one header gives one answer. It fails only if the file is not there, and this is
43        // asked about files that have just been read, so the fallback is for a file that was
44        // deleted between the two calls and it does not matter what it says.
45        std::fs::canonicalize(path).unwrap_or_else(|_| rucc_session::path_key(path))
46    }
47}
48
49/// What preprocessing one file produced.
50#[derive(Debug, Clone, PartialEq, Eq)]
51pub struct Preprocessed {
52    /// The text to write, empty when the file could not be read.
53    pub text: String,
54    /// The diagnostics, already rendered, one per line, in the order they were reported.
55    pub messages: Vec<String>,
56    /// How many of them were errors.
57    pub errors: u32,
58    /// Every file an `#include` found, for the `-M` family.
59    ///
60    /// Collected whatever the command line asked for, because the cost of it is one path per
61    /// header and a field that is only filled in under a flag is a field that is wrong the first
62    /// time somebody reads it under a different one.
63    pub deps: Vec<Dependency>,
64}
65
66impl Preprocessed {
67    /// Whether anything went wrong badly enough that the output should not be used.
68    #[must_use]
69    pub fn failed(&self) -> bool {
70        self.errors > 0
71    }
72}
73
74/// Preprocesses one file and renders the result.
75///
76/// `name` is the path as the user wrote it, which is the name the output and every diagnostic
77/// about the file use. It is not canonicalised, because a message naming a path nobody typed
78/// is a message that is harder to act on.
79#[must_use]
80pub fn preprocess(opts: &Options, name: &str, fs: &dyn FileSystem) -> Preprocessed {
81    let mut sess = Session::new(opts.clone());
82    let bytes = match fs.read(Path::new(name)) {
83        Ok(bytes) => bytes,
84        Err(e) => return failure(format!("{name}: {e}")),
85    };
86    let Ok(file) = sess.sources.add_shared(name, bytes, None) else {
87        return failure(format!("{name}: the source map has no room left for this file"));
88    };
89
90    let mut pp = Preprocessor::with_prefix_map(opts.prefix_map.macros.clone());
91    let predef = Predef::for_options(opts);
92    let mut cx = Context::new(&mut sess.interner, &mut sess.sources, fs, &opts.search);
93    cx.lex = rucc_lex::Options::for_dialect(opts.std, opts.gnu_extensions);
94    if pp.predefine(&sess.target, &predef, &mut cx).is_err() {
95        return failure(format!("{name}: the source map has no room left for the built in macros"));
96    }
97    let mut tokens = Vec::new();
98    if pp.preinclude(&opts.preincludes, &mut tokens, &mut cx).is_err() {
99        return failure(format!("{name}: the source map has no room left for the command line"));
100    }
101    tokens.append(&mut pp.run(file, &mut cx));
102    // `-dM` replaces the output rather than adding to it. The run still happens, and it has
103    // to: the table at the end is the one the file left behind, so a `#define` inside an
104    // `#ifdef` that was false is correctly absent.
105    let text = if opts.dumps.macros {
106        rucc_pp::dump_macros(pp.macros(), &sess.interner)
107    } else {
108        rucc_pp::print(
109            file,
110            &tokens,
111            pp.line_directives(),
112            &sess.sources,
113            &sess.interner,
114            PrintOptions { line_markers: opts.line_markers },
115        )
116    };
117
118    let mut messages = Vec::new();
119    let mut errors = 0;
120    for diag in pp.take_diagnostics() {
121        // `-w`, for the reason it is read here in the compiler proper.
122        if !opts.warnings && diag.severity == Severity::Warning {
123            continue;
124        }
125        let fatal = diag.severity.is_fatal()
126            || (diag.severity == Severity::Warning && opts.warnings_are_errors);
127        if fatal {
128            errors += 1;
129        }
130        messages.push(render(&diag, &sess.sources, opts.warnings_are_errors));
131    }
132    Preprocessed { text, messages, errors, deps: pp.dependencies().to_vec() }
133}
134
135/// A result that is nothing but one message, for the failures that happen before there is
136/// anything to preprocess.
137fn failure(message: String) -> Preprocessed {
138    Preprocessed {
139        text: String::new(),
140        messages: vec![format!("rucc: error: {message}")],
141        errors: 1,
142        deps: Vec::new(),
143    }
144}
145
146/// One diagnostic as the lines it prints.
147///
148/// GCC's shape: the position, the severity, the message, then the code, then any notes
149/// underneath. The chain of includes that reached the file comes first, because a diagnostic
150/// in a header three levels down is unactionable without the path that got there.
151pub(crate) fn render(diag: &Diagnostic, sources: &SourceMap, warnings_are_errors: bool) -> String {
152    let mut out = String::new();
153    let mut chain = sources.include_stack(diag.span.lo);
154    chain.reverse();
155    for (at, from) in chain.iter().enumerate() {
156        let lead = if at == 0 { "In file included from" } else { "                 from" };
157        out.push_str(&format!("{lead} {}:\n", sources.render_position(from.lo)));
158    }
159    out.push_str(&line(diag, sources, warnings_are_errors));
160    for child in &diag.children {
161        out.push('\n');
162        out.push_str(&line(child, sources, false));
163    }
164    out
165}
166
167/// The one line a diagnostic or one of its notes prints.
168fn line(diag: &Diagnostic, sources: &SourceMap, warnings_are_errors: bool) -> String {
169    let severity = if diag.severity == Severity::Warning && warnings_are_errors {
170        // Not a relabelling for its own sake. A build that turned warnings into errors and
171        // then reads "warning" next to a failed compilation has to go looking for why it
172        // failed, and the answer is right here.
173        "error"
174    } else {
175        diag.severity.as_str()
176    };
177    let position = if diag.span.is_dummy() {
178        "rucc".to_owned()
179    } else {
180        sources.render_position(diag.span.lo)
181    };
182    match diag.code {
183        Some(code) => format!("{position}: {severity}: {} [{code}]", diag.message),
184        None => format!("{position}: {severity}: {}", diag.message),
185    }
186}
187
188#[cfg(test)]
189mod tests {
190    use rucc_session::MemoryFileSystem;
191    use rucc_target::Triple;
192
193    use super::*;
194
195    fn options() -> Options {
196        Options::new("x86_64-unknown-linux-gnu".parse::<Triple>().unwrap())
197    }
198
199    /// The path an include search produces for `name` under `dir`.
200    ///
201    /// The search joins the two with the platform's separator, so an expectation with a slash
202    /// written into it is an expectation about Unix rather than about the preprocessor, and it
203    /// fails on Windows for a reason that has nothing to do with what the test is checking.
204    fn at(dir: &str, name: &str) -> String {
205        Path::new(dir).join(name).display().to_string()
206    }
207
208    fn run(opts: &Options, files: &[(&str, &str)]) -> Preprocessed {
209        let mut fs = MemoryFileSystem::new();
210        for (path, text) in files {
211            fs.insert(*path, (*text).to_owned().into_bytes());
212        }
213        preprocess(opts, files[0].0, &fs)
214    }
215
216    #[test]
217    fn a_file_that_is_not_there_says_so_and_produces_nothing() {
218        let fs = MemoryFileSystem::new();
219        let result = preprocess(&options(), "/nope.c", &fs);
220        assert!(result.failed());
221        assert!(result.messages[0].contains("/nope.c"), "{:?}", result.messages);
222        assert!(result.text.is_empty());
223    }
224
225    #[test]
226    fn the_output_is_the_expanded_text_with_a_line_marker_on_top() {
227        let result = run(&options(), &[("/main.c", "#define N 2\nint a[N];\n")]);
228        assert_eq!(result.messages, Vec::<String>::new());
229        assert_eq!(result.text, "# 1 \"/main.c\"\n\nint a[2];\n");
230    }
231
232    #[test]
233    fn the_predefined_macros_are_there_without_being_asked_for() {
234        let result = run(&options(), &[("/main.c", "__SIZEOF_LONG__ __x86_64__\n")]);
235        assert_eq!(result.text, "# 1 \"/main.c\"\n8 1\n");
236    }
237
238    #[test]
239    fn dash_d_and_dash_u_reach_the_macro_table() {
240        let mut opts = options();
241        opts.defines.push("FOO=41+1".to_owned());
242        opts.defines.push("BAR".to_owned());
243        opts.undefines.push("__x86_64__".to_owned());
244        let result = run(&opts, &[("/main.c", "FOO BAR\n#ifdef __x86_64__\ngone\n#endif\n")]);
245        // `41+1` with no space in it, which is what it was written as on the command line and
246        // what GCC prints. The three tokens all came out of the one expansion of `FOO`, and a
247        // paste is only worth avoiding where a macro put two tokens together that the person
248        // did not write together.
249        assert_eq!(result.text, "# 1 \"/main.c\"\n41+1 1\n");
250    }
251
252    #[test]
253    fn dash_i_is_where_an_angled_include_looks() {
254        let mut opts = options();
255        opts.search.push_bracket("/inc");
256        let files = [("/main.c", "#include <one.h>\nint after;\n"), ("/inc/one.h", "int in_it;\n")];
257        let result = run(&opts, &files);
258        // A line marker's file name is a string literal, so a separator that is a backslash
259        // comes out escaped, which is what GCC does and what a reader of the output has to be
260        // able to parse back.
261        let one = at("/inc", "one.h").replace('\\', "\\\\");
262        let expected = format!(
263            "# 1 \"/main.c\"\n# 1 \"{one}\" 1\nint in_it;\n# 2 \"/main.c\" 2\nint after;\n"
264        );
265        assert_eq!(result.text, expected);
266    }
267
268    #[test]
269    fn dash_p_leaves_the_markers_out() {
270        let mut opts = options();
271        opts.line_markers = false;
272        opts.search.push_bracket("/inc");
273        let files = [("/main.c", "#include <one.h>\nint after;\n"), ("/inc/one.h", "int in_it;\n")];
274        assert_eq!(run(&opts, &files).text, "int in_it;\nint after;\n");
275    }
276
277    #[test]
278    fn a_diagnostic_says_where_it_is_and_carries_its_code() {
279        let result = run(&options(), &[("/main.c", "#error no\n")]);
280        assert_eq!(result.errors, 1);
281        assert!(
282            result.messages[0].starts_with("/main.c:1:8: error: no ["),
283            "{:?}",
284            result.messages
285        );
286    }
287
288    #[test]
289    fn a_diagnostic_in_a_header_prints_the_chain_that_reached_it() {
290        let mut opts = options();
291        opts.search.push_bracket("/inc");
292        let files = [
293            ("/main.c", "#include <one.h>\n"),
294            ("/inc/one.h", "#include <two.h>\n"),
295            ("/inc/two.h", "#error deep\n"),
296        ];
297        let result = run(&opts, &files);
298        let text = result.messages.join("\n");
299        assert!(text.starts_with("In file included from /main.c:1:1:\n"), "{text}");
300        assert!(
301            text.contains(&format!("                 from {}:1:1:\n", at("/inc", "one.h"))),
302            "{text}"
303        );
304        assert!(text.contains(&format!("{}:1:8: error: deep", at("/inc", "two.h"))), "{text}");
305    }
306
307    #[test]
308    fn werror_turns_a_warning_into_an_error_in_the_count_and_in_the_word() {
309        let source = "#warning careful\n";
310        let plain = run(&options(), &[("/main.c", source)]);
311        assert_eq!(plain.errors, 0);
312        assert!(plain.messages[0].contains("warning: careful"), "{:?}", plain.messages);
313
314        let mut opts = options();
315        opts.warnings_are_errors = true;
316        let strict = run(&opts, &[("/main.c", source)]);
317        assert_eq!(strict.errors, 1);
318        assert!(strict.messages[0].contains("error: careful"), "{:?}", strict.messages);
319    }
320
321    #[test]
322    fn dash_dm_prints_the_macros_the_file_left_behind_and_not_the_file() {
323        let source = "#define KEPT 1\n#define GONE 2\n#undef GONE\n#ifdef NEVER\n#define \
324                      HIDDEN 3\n#endif\nint x;\n";
325        let result = run(&options(), &[("/main.c", source)]);
326        assert_eq!(result.errors, 0);
327        assert!(result.text.contains("int x;"), "the output is the file without -dM");
328        assert!(!result.text.contains("#define"), "a directive line is not part of the output");
329
330        let mut opts = options();
331        opts.dumps.macros = true;
332        let dumped = run(&opts, &[("/main.c", source)]);
333        assert!(dumped.text.contains("#define KEPT 1\n"), "{}", dumped.text);
334        assert!(!dumped.text.contains("int x;"), "-dM replaces the output rather than adding");
335        // Undefined is gone, and a define the conditional skipped was never made. The dump is
336        // the table at the end of the run and not a list of the lines that were written.
337        assert!(!dumped.text.contains("GONE"), "{}", dumped.text);
338        assert!(!dumped.text.contains("HIDDEN"), "{}", dumped.text);
339        // The predefined set is in there too, because it is defined the same way everything
340        // else is, which is the whole reason this output can be diffed against GCC's.
341        assert!(dumped.text.contains("#define __x86_64__ 1\n"), "{}", dumped.text);
342    }
343
344    #[test]
345    fn the_dialect_reaches_the_predefined_set() {
346        let mut opts = options();
347        opts.std = rucc_session::Std::C99;
348        opts.gnu_extensions = false;
349        let result = run(&opts, &[("/main.c", "__STDC_VERSION__ __STRICT_ANSI__\n")]);
350        assert_eq!(result.text, "# 1 \"/main.c\"\n199901L 1\n");
351    }
352}