rucc_base/intern.rs
1//! String interning.
2//!
3//! Identifiers are compared constantly: on every macro lookup, every scope lookup, every
4//! typedef disambiguation. Interning turns those comparisons into an integer compare and
5//! turns the storage into one arena instead of a `String` per occurrence. The lexer interns
6//! during the scan rather than after it, per `spec/06-lexer-and-parser.md`, so an identifier
7//! is never materialised as a `String` at all.
8//!
9//! # Reserved names
10//!
11//! Every interner starts with the names in [`RESERVED`] already in it, in that order, which is
12//! what makes the constants in [`sym`] the symbols they are. The reason is that a pass past the
13//! lexer holds the interner through a shared reference and cannot add to it, and a pass that
14//! builds a type of its own still has to name it: the members of the target's `va_list` are
15//! named by the ABI and never by the source, so the names have to exist before anything is read.
16//!
17//! # Determinism
18//!
19//! [`Symbol`] ordering is allocation order, which is the order the source was read in. That
20//! is deterministic for a given input, and it is the reason the compiler can sort by symbol
21//! anywhere it needs a stable order without reaching for the string. Hashing a `Symbol` must
22//! never leak into output ordering, because hash order is not stable across runs, and
23//! `spec/02-the-goal.md` makes byte-identical output a requirement rather than a nicety.
24//!
25//! # Spellings that are not text
26//!
27//! A source file is UTF-8 and an identifier in it is text, but the body of a string literal is
28//! bytes and does not have to be text at all: `"\xff"` may be written as the byte itself, and
29//! the object it initialises is one byte long whatever that byte is. So [`Interner::intern_bytes`]
30//! takes a spelling that is not UTF-8 and [`Interner::resolve_bytes`] gives it back exactly,
31//! while [`Interner::resolve`] still hands back a `&str`, because almost everything that holds a
32//! symbol wants to print it. What it hands back for such a symbol is the lossy reading, with the
33//! bytes that are not characters replaced, which is right for a message and wrong for an object,
34//! and the object is what `resolve_bytes` is for.
35
36use std::collections::HashMap;
37use std::fmt;
38
39use crate::index::Idx;
40
41/// Marker for the symbol table, so that `Idx<SymbolTable>` cannot be confused with any
42/// other index.
43#[derive(Debug)]
44pub struct SymbolTable;
45
46/// An interned string.
47///
48/// Four bytes, `Copy`, and equal exactly when the strings are equal. Resolving one back to
49/// text needs the [`Interner`] it came from, which is deliberate: it makes accidentally
50/// printing an identifier in a hot path visible at the call site.
51#[derive(Debug, Clone, Copy, PartialEq, Eq, PartialOrd, Ord, Hash)]
52pub struct Symbol(Idx<SymbolTable>);
53
54impl Symbol {
55 /// The underlying index, for packing a symbol into a bitfield.
56 #[inline]
57 pub const fn raw(self) -> u32 {
58 self.0.raw()
59 }
60
61 /// The symbol a [`Symbol::raw`] came from, which is the other half of packing one away.
62 ///
63 /// # Panics
64 ///
65 /// Panics if `raw` is not an index this interner could have handed out, which catches a
66 /// field holding something other than a symbol rather than resolving to the wrong string.
67 #[inline]
68 #[must_use]
69 pub const fn from_raw(raw: u32) -> Symbol {
70 Symbol(Idx::new(raw))
71 }
72}
73
74/// The names every interner is built with, in the order they are interned.
75///
76/// The list is short on purpose. A name belongs here when the compiler has to write it down and
77/// the source is not the place it comes from, which so far is the target's type for a variable
78/// argument list and nothing else.
79pub const RESERVED: &[&str] = &[
80 "__va_list_tag",
81 "gp_offset",
82 "fp_offset",
83 "overflow_arg_area",
84 "reg_save_area",
85 "__va_list",
86 "__stack",
87 "__gr_top",
88 "__vr_top",
89 "__gr_offs",
90 "__vr_offs",
91];
92
93/// The symbols for the names in [`RESERVED`].
94///
95/// Each constant is the position of its name in that list, so the two are one table written
96/// twice and a test here holds them together.
97pub mod sym {
98 use super::Symbol;
99
100 /// `__va_list_tag`, the tag of the record a SysV x86-64 `va_list` is an array of one of.
101 pub const VA_LIST_TAG: Symbol = Symbol::from_raw(0);
102 /// `gp_offset`, how far into the saved general registers the list has read.
103 pub const GP_OFFSET: Symbol = Symbol::from_raw(1);
104 /// `fp_offset`, the same for the saved floating point registers.
105 pub const FP_OFFSET: Symbol = Symbol::from_raw(2);
106 /// `overflow_arg_area`, the arguments that were passed on the stack.
107 pub const OVERFLOW_ARG_AREA: Symbol = Symbol::from_raw(3);
108 /// `reg_save_area`, where the callee spilled the argument registers.
109 pub const REG_SAVE_AREA: Symbol = Symbol::from_raw(4);
110 /// `__va_list`, the tag of the record an AAPCS64 `va_list` is.
111 pub const VA_LIST: Symbol = Symbol::from_raw(5);
112 /// `__stack`, the arguments that were passed on the stack.
113 pub const STACK: Symbol = Symbol::from_raw(6);
114 /// `__gr_top`, the end of the saved general registers.
115 pub const GR_TOP: Symbol = Symbol::from_raw(7);
116 /// `__vr_top`, the end of the saved vector registers.
117 pub const VR_TOP: Symbol = Symbol::from_raw(8);
118 /// `__gr_offs`, how far back from `__gr_top` the list has read, in bytes and negative.
119 pub const GR_OFFS: Symbol = Symbol::from_raw(9);
120 /// `__vr_offs`, the same for `__vr_top`.
121 pub const VR_OFFS: Symbol = Symbol::from_raw(10);
122}
123
124/// An append-only set of strings, each mapped to a [`Symbol`].
125///
126/// Strings are never removed, which is what makes a `Symbol` valid for the lifetime of the
127/// compilation and what lets the storage be a plain growing buffer.
128pub struct Interner {
129 /// Every interned string, concatenated. One allocation that doubles, rather than one
130 /// allocation per identifier.
131 buf: String,
132 /// Where each symbol starts and ends in `buf`.
133 spans: Vec<(u32, u32)>,
134 /// Lookup from text to symbol. The key is a span into `buf` rather than an owned
135 /// `String`, which is why the map is keyed by the string and rebuilt through `resolve`.
136 map: HashMap<Box<str>, Symbol>,
137 /// The spelling of a symbol whose bytes are not UTF-8, which `buf` cannot hold because
138 /// `buf` is a `String`. A map rather than a column beside `spans`, because a compilation
139 /// has a handful of these at most and usually none: a raw byte in a string literal is the
140 /// only thing that puts one here.
141 raw: HashMap<Symbol, Box<[u8]>>,
142 /// Lookup from those bytes back to their symbol, so that interning the same spelling twice
143 /// is the same symbol. Kept apart from `map` because two spellings that are not text can
144 /// read the same lossily and still have to be told apart.
145 raw_map: HashMap<Box<[u8]>, Symbol>,
146}
147
148impl Default for Interner {
149 fn default() -> Self {
150 Self::new()
151 }
152}
153
154impl Interner {
155 /// An interner holding the reserved names and nothing else.
156 pub fn new() -> Self {
157 Self::with_capacity(RESERVED.len())
158 }
159
160 /// An interner with room for `cap` strings, to avoid regrowing on a large header set.
161 pub fn with_capacity(cap: usize) -> Self {
162 let cap = cap.max(RESERVED.len());
163 let mut interner = Self {
164 buf: String::with_capacity(cap * 8),
165 spans: Vec::with_capacity(cap),
166 map: HashMap::with_capacity(cap),
167 raw: HashMap::new(),
168 raw_map: HashMap::new(),
169 };
170 for name in RESERVED {
171 interner.intern(name);
172 }
173 interner
174 }
175
176 /// Interns `s`, returning the existing symbol if it has been seen.
177 ///
178 /// # Panics
179 ///
180 /// Panics if more than `Idx::MAX` distinct strings are interned.
181 pub fn intern(&mut self, s: &str) -> Symbol {
182 if let Some(&sym) = self.map.get(s) {
183 return sym;
184 }
185 let start = u32::try_from(self.buf.len()).expect("interner buffer overflow");
186 self.buf.push_str(s);
187 let end = u32::try_from(self.buf.len()).expect("interner buffer overflow");
188 let sym = Symbol(Idx::from_usize(self.spans.len()));
189 self.spans.push((start, end));
190 self.map.insert(s.into(), sym);
191 sym
192 }
193
194 /// Interns a spelling that may not be text, returning the existing symbol if it has been seen.
195 ///
196 /// A spelling that is UTF-8 is interned as itself, so nothing changes for the common case and
197 /// a byte spelling equal to a name is the same symbol as that name. One that is not gets a
198 /// symbol of its own whose text is the lossy reading, which is what [`Interner::resolve`]
199 /// hands back, and whose bytes are kept beside it for [`Interner::resolve_bytes`].
200 ///
201 /// # Panics
202 ///
203 /// Panics if more than `Idx::MAX` distinct spellings are interned.
204 pub fn intern_bytes(&mut self, bytes: &[u8]) -> Symbol {
205 if let Ok(text) = std::str::from_utf8(bytes) {
206 return self.intern(text);
207 }
208 if let Some(&sym) = self.raw_map.get(bytes) {
209 return sym;
210 }
211 // Pushed straight into the buffer rather than through `intern`, because the lossy
212 // reading may be a string that is already in there and this spelling is not that one.
213 let lossy = String::from_utf8_lossy(bytes);
214 let start = u32::try_from(self.buf.len()).expect("interner buffer overflow");
215 self.buf.push_str(&lossy);
216 let end = u32::try_from(self.buf.len()).expect("interner buffer overflow");
217 let sym = Symbol(Idx::from_usize(self.spans.len()));
218 self.spans.push((start, end));
219 self.raw.insert(sym, bytes.into());
220 self.raw_map.insert(bytes.into(), sym);
221 sym
222 }
223
224 /// The symbol `s` was interned as, and [`None`] when nothing has interned it.
225 ///
226 /// For a name the compiler knows and a program may or may not write: one it did not write
227 /// was never interned, and asking this is how a table of such names is matched against the
228 /// source without adding any of them to it.
229 #[must_use]
230 pub fn find(&self, s: &str) -> Option<Symbol> {
231 self.map.get(s).copied()
232 }
233
234 /// The text behind a symbol.
235 ///
236 /// # Panics
237 ///
238 /// Panics if the symbol came from a different interner. There is one interner per
239 /// compilation, so this is a bug rather than a condition to handle.
240 pub fn resolve(&self, sym: Symbol) -> &str {
241 let (start, end) = self.spans[sym.0.index()];
242 &self.buf[start as usize..end as usize]
243 }
244
245 /// The bytes behind a symbol, which is the spelling exactly as it was written.
246 ///
247 /// The same as `resolve(sym).as_bytes()` for every symbol that came from text, which is all
248 /// of them but the ones [`Interner::intern_bytes`] made from bytes that are not UTF-8.
249 ///
250 /// # Panics
251 ///
252 /// Panics if the symbol came from a different interner, as [`Interner::resolve`] does.
253 pub fn resolve_bytes(&self, sym: Symbol) -> &[u8] {
254 match self.raw.get(&sym) {
255 Some(bytes) => bytes,
256 None => self.resolve(sym).as_bytes(),
257 }
258 }
259
260 /// How many distinct strings have been interned, the reserved names included.
261 pub fn len(&self) -> usize {
262 self.spans.len()
263 }
264
265 /// Whether anything but the reserved names has been interned.
266 pub fn is_empty(&self) -> bool {
267 self.spans.len() <= RESERVED.len()
268 }
269
270 /// Total bytes of interned text, which is the number worth watching on a large build.
271 pub fn bytes(&self) -> usize {
272 self.buf.len()
273 }
274}
275
276impl fmt::Debug for Interner {
277 fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
278 // Dumping every identifier in a translation unit is never what anyone wanted from a
279 // `{:?}` on the session, so this reports the shape instead.
280 f.debug_struct("Interner")
281 .field("symbols", &self.spans.len())
282 .field("bytes", &self.buf.len())
283 .finish()
284 }
285}
286
287#[cfg(test)]
288mod tests {
289 use super::*;
290
291 #[test]
292 fn the_same_string_gets_the_same_symbol() {
293 let mut i = Interner::new();
294 let before = i.len();
295 let a = i.intern("static_assert");
296 let b = i.intern("static_assert");
297 assert_eq!(a, b);
298 assert_eq!(i.len() - before, 1);
299 }
300
301 #[test]
302 fn different_strings_get_different_symbols() {
303 let mut i = Interner::new();
304 let before = i.len();
305 assert_ne!(i.intern("int"), i.intern("long"));
306 assert_eq!(i.len() - before, 2);
307 }
308
309 #[test]
310 fn the_reserved_names_are_there_before_anything_is_read() {
311 let i = Interner::new();
312 assert_eq!(i.len(), RESERVED.len());
313 assert!(i.is_empty(), "the reserved names do not count as something having been read");
314 assert_eq!(i.resolve(sym::VA_LIST_TAG), "__va_list_tag");
315 assert_eq!(i.resolve(sym::GP_OFFSET), "gp_offset");
316 assert_eq!(i.resolve(sym::FP_OFFSET), "fp_offset");
317 assert_eq!(i.resolve(sym::OVERFLOW_ARG_AREA), "overflow_arg_area");
318 assert_eq!(i.resolve(sym::REG_SAVE_AREA), "reg_save_area");
319 assert_eq!(i.resolve(sym::VA_LIST), "__va_list");
320 assert_eq!(i.resolve(sym::STACK), "__stack");
321 assert_eq!(i.resolve(sym::GR_TOP), "__gr_top");
322 assert_eq!(i.resolve(sym::VR_TOP), "__vr_top");
323 assert_eq!(i.resolve(sym::GR_OFFS), "__gr_offs");
324 assert_eq!(i.resolve(sym::VR_OFFS), "__vr_offs");
325 }
326
327 #[test]
328 fn a_reserved_name_written_in_the_source_is_the_symbol_it_already_had() {
329 let mut i = Interner::new();
330 let before = i.len();
331 assert_eq!(i.intern("__va_list_tag"), sym::VA_LIST_TAG);
332 assert_eq!(i.len(), before);
333 }
334
335 #[test]
336 fn every_interner_agrees_on_where_the_reserved_names_are() {
337 let small = Interner::new();
338 let large = Interner::with_capacity(4096);
339 for (at, name) in RESERVED.iter().enumerate() {
340 let sym = Symbol::from_raw(u32::try_from(at).expect("eleven names fit in a u32"));
341 assert_eq!(small.resolve(sym), *name);
342 assert_eq!(large.resolve(sym), *name);
343 }
344 }
345
346 #[test]
347 fn resolves_back_to_the_text() {
348 let mut i = Interner::new();
349 let s = i.intern("__builtin_constant_p");
350 assert_eq!(i.resolve(s), "__builtin_constant_p");
351 }
352
353 #[test]
354 fn symbols_are_numbered_in_allocation_order() {
355 let mut i = Interner::new();
356 let first = i.intern("a");
357 let second = i.intern("b");
358 assert!(first < second, "symbol order must be allocation order, not hash order");
359 }
360
361 #[test]
362 fn the_empty_string_is_internable() {
363 let mut i = Interner::new();
364 let before = i.bytes();
365 let s = i.intern("");
366 assert_eq!(i.resolve(s), "");
367 assert_eq!(i.bytes(), before);
368 }
369
370 #[test]
371 fn a_spelling_that_is_text_is_the_same_symbol_however_it_was_interned() {
372 let mut i = Interner::new();
373 let text = i.intern("hello");
374 assert_eq!(i.intern_bytes(b"hello"), text);
375 assert_eq!(i.resolve_bytes(text), b"hello");
376 }
377
378 #[test]
379 fn a_spelling_that_is_not_text_keeps_its_bytes() {
380 let mut i = Interner::new();
381 let raw = i.intern_bytes(b"\"\xff\"");
382 assert_eq!(i.resolve_bytes(raw), b"\"\xff\"");
383 assert_eq!(i.intern_bytes(b"\"\xff\""), raw, "interning it twice is one symbol");
384 // The text is the lossy reading, which is what a message quoting it would print.
385 assert_eq!(i.resolve(raw), "\"\u{fffd}\"");
386 }
387
388 #[test]
389 fn two_spellings_that_read_the_same_lossily_are_still_two_symbols() {
390 let mut i = Interner::new();
391 let one = i.intern_bytes(b"\xff");
392 let other = i.intern_bytes(b"\xfe");
393 assert_eq!(i.resolve(one), i.resolve(other), "both read as the replacement character");
394 assert_ne!(one, other, "the bytes differ, so the spellings do");
395 assert_eq!(i.resolve_bytes(one), b"\xff");
396 assert_eq!(i.resolve_bytes(other), b"\xfe");
397 // And neither of them is the text that reads the same, which the source may also hold.
398 assert_ne!(i.intern("\u{fffd}"), one);
399 }
400
401 #[test]
402 fn a_symbol_is_four_bytes() {
403 assert_eq!(size_of::<Symbol>(), 4);
404 assert_eq!(size_of::<Option<Symbol>>(), 4);
405 }
406}