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rucc_pp/
include.rs

1//! Reading a file, and the parts of `#include` that are not the directive itself.
2//!
3//! Design: `spec/05-preprocessor.md` section 5.4 and `spec/04-driver-and-cli.md` section 4.4.
4//!
5//! Phase 4 drives the lexer rather than being handed a finished token vector, and the reason
6//! is header names. `<stdio.h>` and a run of comparisons are the same bytes, and only the
7//! directive knows which one is possible, so [`rucc_lex::Lexer::header_name`] exists and has
8//! to be called at exactly the right moment. Scanning the file first and reconstructing the
9//! name from the tokens afterwards works until a header name contains `//`, or a backslash on
10//! a Windows path, and then it silently produces a different name.
11//!
12//! Driving the lexer also means a file is read one line at a time rather than all at once,
13//! which is what the memory mapped input and the header cache both want later.
14
15use std::path::{Path, PathBuf};
16
17use rucc_base::Interner;
18use rucc_diag::{BytePos, Diagnostic, SourceMap, Span};
19use rucc_lex::{Lexer, Options, PpToken, PpTokenKind, TokenFlags};
20use rucc_session::{FileSystem, SearchPath};
21
22use crate::token::Tok;
23
24/// Everything phase 4 needs from outside itself.
25///
26/// Grouped into one struct because `#include` needs all of it at once and threading five
27/// references through every directive handler is how a parameter list becomes unreadable.
28/// The lifetime is the compilation, and every field of it lives on the session.
29pub struct Context<'a> {
30    /// The one interner.
31    pub interner: &'a mut Interner,
32    /// Where an included file is added, and what a span is resolved against.
33    pub sources: &'a mut SourceMap,
34    /// Where a header is read from.
35    pub fs: &'a dyn FileSystem,
36    /// Where a header is looked for.
37    pub search: &'a SearchPath,
38    /// The dialect knobs phase 1 cares about.
39    pub lex: Options,
40    /// How deep `#include` may nest before it is called a cycle.
41    ///
42    /// A header that includes itself with no guard is the common way to reach this, and the
43    /// alternative to a limit is a stack overflow with no diagnostic at all.
44    pub max_include_depth: u32,
45}
46
47impl<'a> Context<'a> {
48    /// A context with GCC's include depth limit.
49    pub fn new(
50        interner: &'a mut Interner,
51        sources: &'a mut SourceMap,
52        fs: &'a dyn FileSystem,
53        search: &'a SearchPath,
54    ) -> Context<'a> {
55        Context { interner, sources, fs, search, lex: Options::new(), max_include_depth: 200 }
56    }
57}
58
59impl std::fmt::Debug for Context<'_> {
60    fn fmt(&self, f: &mut std::fmt::Formatter<'_>) -> std::fmt::Result {
61        f.debug_struct("Context")
62            .field("lex", &self.lex)
63            .field("max_include_depth", &self.max_include_depth)
64            .finish_non_exhaustive()
65    }
66}
67
68/// One open file, and what an `#include` written in it resolves against.
69#[derive(Debug)]
70pub(crate) struct Frame {
71    /// Where the file was included from, for the too deeply nested diagnostic.
72    pub(crate) at: Span,
73    /// The file itself, which is what `#pragma once` and the guard optimization remember it
74    /// by. A path rather than a device and inode pair, so two names for one file are two
75    /// files here, which is what a file system abstraction with no `stat` in it can say.
76    pub(crate) path: PathBuf,
77    /// The directory the file is in, which a quoted include looks in first.
78    pub(crate) dir: Option<PathBuf>,
79    /// Where an `#include_next` written in this file starts looking.
80    pub(crate) next: usize,
81}
82
83/// Pulls tokens out of the lexer one logical line at a time.
84///
85/// One token of lookahead, because a line ends when the next token says it starts a line and
86/// there is no other way to find that out.
87pub(crate) struct Reader<'a> {
88    lexer: Lexer<'a>,
89    pending: Option<PpToken>,
90}
91
92impl<'a> Reader<'a> {
93    pub(crate) fn new(src: &'a [u8], start: BytePos, opts: Options) -> Reader<'a> {
94        Reader { lexer: Lexer::new(src, start, opts), pending: None }
95    }
96
97    /// The next token, which is an end of file token forever once the file runs out.
98    pub(crate) fn next(&mut self, interner: &mut Interner) -> PpToken {
99        match self.pending.take() {
100            Some(token) => token,
101            None => self.lexer.next_token(interner),
102        }
103    }
104
105    /// Puts a token back, so the next call to [`Reader::next`] returns it again.
106    pub(crate) fn put_back(&mut self, token: PpToken) {
107        self.pending = Some(token);
108    }
109
110    /// Appends the rest of the current line to `out`, leaving the next line's first token
111    /// where the next call will find it.
112    pub(crate) fn line(&mut self, interner: &mut Interner, out: &mut Vec<PpToken>) {
113        loop {
114            let token = self.next(interner);
115            if token.is_eof() || token.flags.has(TokenFlags::START_OF_LINE) {
116                self.put_back(token);
117                return;
118            }
119            out.push(token);
120        }
121    }
122
123    /// Scans a header name here, which only an include directive may ask for.
124    ///
125    /// `None` when the line does not begin with `<` or `"`, which is the computed include
126    /// case and has to be answered by macro expansion instead.
127    pub(crate) fn header_name(&mut self, interner: &mut Interner) -> Option<PpToken> {
128        // Asking after the line has been read would scan the wrong bytes, and the borrow
129        // checker cannot see the difference, so the invariant is stated here instead.
130        debug_assert!(self.pending.is_none(), "the header name has to be asked for first");
131        self.lexer.header_name(interner)
132    }
133
134    pub(crate) fn take_diagnostics(&mut self) -> Vec<Diagnostic> {
135        self.lexer.take_diagnostics()
136    }
137}
138
139/// What the two spellings of a header name mean, and the name itself.
140#[derive(Debug, Clone, PartialEq, Eq)]
141pub(crate) struct Header {
142    pub(crate) name: String,
143    pub(crate) angled: bool,
144}
145
146/// Reads a header name out of the token the lexer produced for one.
147///
148/// The delimiters come off and nothing else happens: a header name is not a string literal,
149/// so a backslash in it is a backslash and `\t` names a file whose name contains a `t`
150/// preceded by a backslash, which is what a Windows path needs.
151pub(crate) fn header_from_token(spelling: &str) -> Option<Header> {
152    let angled = spelling.starts_with('<');
153    let close = if angled { '>' } else { '"' };
154    let inner = spelling.strip_prefix(if angled { '<' } else { '"' })?;
155    let inner = inner.strip_suffix(close).unwrap_or(inner);
156    if inner.is_empty() {
157        return None;
158    }
159    Some(Header { name: inner.to_owned(), angled })
160}
161
162/// Reads a header name out of the tokens a macro expanded to.
163///
164/// `#include MACRO` is the computed include, and the standard says only that the tokens are
165/// combined in an implementation defined manner. The manner is that spellings are
166/// concatenated with nothing between them, which is what GCC does in every case that occurs
167/// in real code and is the only choice that makes `<sys/types.h>` come back out as itself.
168pub(crate) fn header_from_tokens(spellings: &[&str]) -> Option<Header> {
169    let first = *spellings.first()?;
170    if first.starts_with('"') && spellings.len() == 1 {
171        return header_from_token(first);
172    }
173    if first != "<" {
174        return None;
175    }
176    let close = spellings.iter().rposition(|s| *s == ">")?;
177    if close < 2 {
178        return None;
179    }
180    let name: String = spellings[1..close].concat();
181    Some(Header { name, angled: true })
182}
183
184/// What a file name is called when the position it was asked about is in no file at all.
185///
186/// The same spelling the diagnostic renderer uses, so there is one word for this and not two.
187pub(crate) const UNKNOWN: &str = "<unknown>";
188
189/// A file name as the string literal `__FILE__` expands to.
190///
191/// A backslash and a double quote are escaped. That is not a nicety on Windows: `__FILE__` for
192/// `C:\src\a.c` has to be a literal that means that path, and leaving the backslashes alone
193/// would produce `\s` and `\a`, one of which is an unknown escape and the other of which is a
194/// bell character.
195pub(crate) fn quoted(name: &str) -> String {
196    let mut out = String::with_capacity(name.len() + 2);
197    out.push('"');
198    for ch in name.chars() {
199        if ch == '\\' || ch == '"' {
200            out.push('\\');
201        }
202        out.push(ch);
203    }
204    out.push('"');
205    out
206}
207
208/// The last component of a path, which is what `__FILE_NAME__` is.
209///
210/// Both separators are cut rather than the platform's own, because a header included as
211/// `sys/types.h` on Windows is found at a path with one of each in it.
212pub(crate) fn base_name(name: &str) -> &str {
213    match name.rfind(['/', '\\']) {
214        Some(at) => &name[at + 1..],
215        None => name,
216    }
217}
218
219/// The directory a file is in, for a quoted include written inside it.
220pub(crate) fn directory_of(name: &str) -> Option<PathBuf> {
221    Path::new(name).parent().map(Path::to_path_buf)
222}
223
224/// The spelling of a token, for the computed include path.
225pub(crate) fn spelling(token: Tok, interner: &Interner) -> &str {
226    match token.kind {
227        PpTokenKind::Punct(p) => p.as_str(),
228        _ => token.value.map_or("", |v| interner.resolve(v)),
229    }
230}
231
232#[cfg(test)]
233mod tests {
234    use super::*;
235
236    #[test]
237    fn a_header_name_keeps_everything_between_the_delimiters() {
238        assert_eq!(
239            header_from_token("<sys/types.h>"),
240            Some(Header { name: "sys/types.h".to_owned(), angled: true })
241        );
242        assert_eq!(
243            header_from_token("\"local.h\""),
244            Some(Header { name: "local.h".to_owned(), angled: false })
245        );
246    }
247
248    #[test]
249    fn a_backslash_in_a_header_name_is_a_backslash() {
250        // Not an escape. A header name is not a string literal, and `\t` here names a file.
251        let header = header_from_token("\"win32\\types.h\"").unwrap();
252        assert_eq!(header.name, "win32\\types.h");
253    }
254
255    #[test]
256    fn an_empty_header_name_is_not_a_header_name() {
257        assert_eq!(header_from_token("<>"), None);
258        assert_eq!(header_from_token("\"\""), None);
259    }
260
261    #[test]
262    fn a_computed_include_concatenates_the_spellings() {
263        let header = header_from_tokens(&["<", "sys", "/", "types", ".", "h", ">"]).unwrap();
264        assert_eq!(header.name, "sys/types.h");
265        assert!(header.angled);
266    }
267
268    #[test]
269    fn a_computed_include_can_expand_to_a_string_literal() {
270        let header = header_from_tokens(&["\"local.h\""]).unwrap();
271        assert_eq!(header.name, "local.h");
272        assert!(!header.angled);
273    }
274
275    #[test]
276    fn a_computed_include_that_is_neither_is_refused() {
277        assert_eq!(header_from_tokens(&[]), None);
278        assert_eq!(header_from_tokens(&["1"]), None);
279        assert_eq!(header_from_tokens(&["<", "a"]), None);
280        assert_eq!(header_from_tokens(&["<", ">"]), None);
281    }
282
283    #[test]
284    fn the_last_angle_bracket_closes_the_name() {
285        // `<a>b>` is not something anyone writes on purpose, but taking the first `>` would
286        // silently drop the rest, and taking the last one at least round trips.
287        let header = header_from_tokens(&["<", "a", ">", "b", ">"]).unwrap();
288        assert_eq!(header.name, "a>b");
289    }
290}