rucc_ir/module.rs
1//! The module: the target it is for, its functions, its globals, its aliases and its metadata.
2//!
3//! Design: `spec/08-ir.md` sections 8.1 and 8.8.
4//!
5//! A module is one translation unit, or after LTO the several that were linked into one. It
6//! owns the functions rather than pointing at them, so the whole of a compilation is one value
7//! that is dropped in one go, and a reference to anything in it is a four-byte index.
8//!
9//! # Globals are bytes, not values
10//!
11//! There are no aggregate types in the IR, so a global's initializer cannot be a typed
12//! constant the way it is in LLVM. It is a sized, aligned image described by a run of
13//! [`Datum`]s: zero bytes, literal bytes, a scalar of a given IR type, or the address of
14//! another symbol. That is what an object file wants anyway, it needs no type the type system
15//! does not have, and a large `static const` table costs one [`Datum`] rather than one per
16//! element.
17//!
18//! # What the module does not hold
19//!
20//! It does not hold an [`Interner`](rucc_base::Interner). Every name in here is a
21//! [`Symbol`], and resolving one back to text needs the interner it came from, which the
22//! printer takes as an argument the way `rucc_ast::print` does. A module that owned one could
23//! not be built from the same session as the AST it was lowered from.
24//!
25//! Function attributes are not here yet. They arrive with the printer, which is where their
26//! spelling has to be settled.
27
28use std::collections::HashMap;
29use std::fmt;
30use std::ops::{Index, IndexMut};
31
32use rucc_base::float::Format;
33use rucc_base::{Idx, IdxRange, Symbol};
34use rucc_target::TargetInfo;
35use rucc_tuple::TargetTuple;
36
37use crate::func::Func;
38#[cfg(test)]
39use crate::inst::TbaaNode;
40use crate::inst::{Imm, Meta, MetaNode};
41use crate::ty::Type;
42
43/// A function in a module.
44pub type FuncId = Idx<Func>;
45
46/// A global variable in a module.
47pub type GlobalId = Idx<Global>;
48
49/// An alias in a module.
50pub type AliasId = Idx<Alias>;
51
52/// A run of [`Datum`]s in a module's data pool, which is what a global's initializer is.
53pub type DataList = IdxRange<Datum>;
54
55/// Marker for the byte pool, so that a range into it cannot be confused with any other range.
56#[derive(Debug)]
57pub struct Byte;
58
59/// A run of literal bytes in a module's byte pool.
60pub type ByteRange = IdxRange<Byte>;
61
62/// How a symbol is seen outside the object it is defined in.
63///
64/// The set is the one C needs and no more. C++ vague linkage and the ODR variants are not
65/// here because nothing produces them.
66#[derive(Debug, Clone, Copy, PartialEq, Eq, PartialOrd, Ord, Hash, Default)]
67pub enum Linkage {
68 /// Defined here and visible to every other object. The default, and what a plain
69 /// definition at file scope gets.
70 #[default]
71 External,
72 /// Defined here and invisible outside it, which is what `static` at file scope means.
73 Internal,
74 /// Defined here, visible, and allowed to be replaced by a strong definition elsewhere.
75 /// `__attribute__((weak))`. A reference to one that nothing defines is a null address
76 /// rather than a link error.
77 Weak,
78 /// Defined here, visible, and allowed to be identical to a definition in another object,
79 /// with one of them kept and the rest discarded. What `extern inline` under the GNU
80 /// semantics and a compiler-generated helper get.
81 LinkOnce,
82 /// A tentative definition, which the linker merges with any other tentative definition of
83 /// the same name and any real definition. `int x;` at file scope under `-fcommon`.
84 Common,
85}
86
87impl Linkage {
88 /// The spelling in the textual form.
89 #[must_use]
90 pub const fn name(self) -> &'static str {
91 match self {
92 Self::External => "external",
93 Self::Internal => "internal",
94 Self::Weak => "weak",
95 Self::LinkOnce => "linkonce",
96 Self::Common => "common",
97 }
98 }
99
100 /// The linkage that spelling names.
101 #[must_use]
102 pub fn from_name(name: &str) -> Option<Self> {
103 Self::all().find(|linkage| linkage.name() == name)
104 }
105
106 /// Every linkage, in declaration order.
107 pub fn all() -> impl Iterator<Item = Self> {
108 [Self::External, Self::Internal, Self::Weak, Self::LinkOnce, Self::Common].into_iter()
109 }
110
111 /// Whether the symbol is invisible outside this object, so that a pass may rewrite every
112 /// use of it because it can see every use of it.
113 #[must_use]
114 pub const fn is_local(self) -> bool {
115 matches!(self, Self::Internal)
116 }
117
118 /// Whether the definition here may lose to one in another object at link time.
119 ///
120 /// The optimizer must not fold a use against the definition it can see when this is true,
121 /// because the definition that wins may be a different one.
122 #[must_use]
123 pub const fn may_be_replaced(self) -> bool {
124 matches!(self, Self::Weak | Self::LinkOnce | Self::Common)
125 }
126}
127
128/// What the dynamic linker is allowed to do with a symbol.
129///
130/// Orthogonal to [`Linkage`], which is about the static linker. A hidden symbol is still
131/// external as far as the object file is concerned; it just does not go in the dynamic symbol
132/// table, so nothing outside the shared object can interpose it.
133#[derive(Debug, Clone, Copy, PartialEq, Eq, PartialOrd, Ord, Hash, Default)]
134pub enum Visibility {
135 /// Exported and interposable, which is what a symbol in a shared library gets unless
136 /// something says otherwise.
137 #[default]
138 Default,
139 /// Not in the dynamic symbol table at all. `__attribute__((visibility("hidden")))` and
140 /// `-fvisibility=hidden`.
141 Hidden,
142 /// In the dynamic symbol table, but a reference from inside this shared object always
143 /// binds to the definition inside it.
144 Protected,
145}
146
147impl Visibility {
148 /// The spelling in the textual form.
149 #[must_use]
150 pub const fn name(self) -> &'static str {
151 match self {
152 Self::Default => "default",
153 Self::Hidden => "hidden",
154 Self::Protected => "protected",
155 }
156 }
157
158 /// The visibility that spelling names.
159 #[must_use]
160 pub fn from_name(name: &str) -> Option<Self> {
161 Self::all().find(|visibility| visibility.name() == name)
162 }
163
164 /// Every visibility, in declaration order.
165 pub fn all() -> impl Iterator<Item = Self> {
166 [Self::Default, Self::Hidden, Self::Protected].into_iter()
167 }
168}
169
170/// Which link the module is being compiled for.
171///
172/// Everything this compiler writes is position independent, so this is not about whether there are
173/// absolute addresses in the text. It is about whether the link that reads the object puts every
174/// name in the same program. An executable is such a link and a shared library is not, and that
175/// decides whether a name is one another object may define or replace, which is the question
176/// [`Self::replaceable`] answers and the reason the field is carried this far down.
177///
178/// `-fPIC` and `-fPIE` on the command line. The expensive answer is the one that has to be asked
179/// for, which is gcc's arrangement.
180#[derive(Debug, Clone, Copy, PartialEq, Eq, PartialOrd, Ord, Hash, Default)]
181pub enum Pic {
182 /// The link puts every name in one program. `-fPIE` and the default.
183 #[default]
184 Executable,
185 /// The output may end up in a shared library. `-fPIC`.
186 Library,
187}
188
189impl Pic {
190 /// Whether another object may define or replace a name with that linkage and that visibility.
191 ///
192 /// Nothing is replaceable in an executable. The definition in the executable is the one the
193 /// whole program uses, and a reference to a variable some library defines is answered by
194 /// making room for it in the executable and copying it there, so even a name this file only
195 /// declares ends up somewhere this file could have measured the distance to.
196 ///
197 /// In a shared library the exported names are, which is the whole of what exporting means: the
198 /// dynamic linker looks a name up in load order and the first definition it finds is the one
199 /// everything in the process uses, so a library that reached its own copy from the instruction
200 /// pointer would be the one part of the program not using it. Hidden and protected names are
201 /// not, since one is not in the table to be looked up and the other says a reference from
202 /// inside binds to the definition inside. `static` is not, for the reason it is never anything.
203 #[must_use]
204 pub const fn replaceable(self, linkage: Linkage, visibility: Visibility) -> bool {
205 match self {
206 Self::Executable => false,
207 Self::Library => match visibility {
208 Visibility::Hidden | Visibility::Protected => false,
209 Visibility::Default => !matches!(linkage, Linkage::Internal),
210 },
211 }
212 }
213}
214
215/// How a thread-local variable is reached.
216///
217/// The models are ordered from the most general to the fastest, and a model may always be
218/// replaced by a more general one. The frontend picks from the storage class and the
219/// visibility, `-ftls-model=` overrides it, and the linker may relax a general one into a
220/// faster one when it turns out the definition is in the executable.
221#[derive(Debug, Clone, Copy, PartialEq, Eq, PartialOrd, Ord, Hash, Default)]
222pub enum TlsModel {
223 /// Works for any variable in any object, at the cost of a call to `__tls_get_addr`.
224 #[default]
225 GlobalDynamic,
226 /// One call to `__tls_get_addr` for several variables that are known to share a module.
227 LocalDynamic,
228 /// The offset is loaded from the GOT. Needs the variable to be in a module loaded at
229 /// program start rather than by `dlopen`.
230 InitialExec,
231 /// The offset is a link-time constant. Only for a variable in the executable itself.
232 LocalExec,
233}
234
235impl TlsModel {
236 /// The spelling in the textual form.
237 #[must_use]
238 pub const fn name(self) -> &'static str {
239 match self {
240 Self::GlobalDynamic => "global_dynamic",
241 Self::LocalDynamic => "local_dynamic",
242 Self::InitialExec => "initial_exec",
243 Self::LocalExec => "local_exec",
244 }
245 }
246
247 /// The model that spelling names.
248 #[must_use]
249 pub fn from_name(name: &str) -> Option<Self> {
250 Self::all().find(|model| model.name() == name)
251 }
252
253 /// Every model, from the most general to the fastest.
254 pub fn all() -> impl Iterator<Item = Self> {
255 [Self::GlobalDynamic, Self::LocalDynamic, Self::InitialExec, Self::LocalExec].into_iter()
256 }
257}
258
259/// One piece of a global's initial image.
260///
261/// Sixteen bytes, so an initializer built out of them is a flat array and a table of a
262/// million bytes is one of these rather than a million.
263#[derive(Debug, Clone, Copy, PartialEq, Eq)]
264pub enum Datum {
265 /// That many zero bytes. What `.bss` is made of, and what the tail of a partly
266 /// initialized array is.
267 Zero(u64),
268 /// Those literal bytes, from the module's byte pool. String literals and anything the
269 /// frontend has already laid out.
270 Bytes(ByteRange),
271 /// One scalar of that IR type, from the module's immediate pool. An integer holds its
272 /// value and a float holds its bit pattern, both target-independently: which byte comes
273 /// first is decided by the datalayout when the object file is written, not here.
274 Scalar {
275 /// The type of the scalar, which gives its width.
276 ty: Type,
277 /// Its value, in the module's immediate pool.
278 value: Idx<Imm>,
279 },
280 /// The address of another symbol, from the module's relocation pool. `&x` in an
281 /// initializer, which the linker fills in.
282 Addr(Idx<Reloc>),
283}
284
285impl Datum {
286 /// How many bytes it contributes to the image.
287 ///
288 /// The module is an argument because three of the four kinds keep what they are made of in
289 /// one of its pools, and a datum on its own is four words that mean nothing without it.
290 #[must_use]
291 pub fn size(self, module: &Module) -> u64 {
292 match self {
293 Self::Zero(bytes) => bytes,
294 Self::Bytes(range) => range.len() as u64,
295 // Rounded up, so that an `i1` in an image is a byte and a `_BitInt(24)` is three.
296 Self::Scalar { ty, .. } => u64::from(ty.bits().div_ceil(8)) * u64::from(ty.lanes()),
297 Self::Addr(reloc) => u64::from(module[reloc].size),
298 }
299 }
300}
301
302/// The address of a symbol, written into a global's image by the linker.
303#[derive(Debug, Clone, Copy, PartialEq, Eq)]
304pub struct Reloc {
305 /// The symbol whose address this is.
306 pub symbol: Symbol,
307 /// What to add to that address. `&array[2]` is the address of `array` plus eight.
308 pub addend: i64,
309 /// How many bytes the address occupies, which is the pointer width except where a target
310 /// has a smaller relocation for it.
311 pub size: u32,
312}
313
314/// A global variable.
315///
316/// A size and an alignment and an image, which is what the object writer needs. `init` is
317/// `None` for a declaration of something defined in another object, which is the only thing
318/// that distinguishes the two.
319#[derive(Debug, Clone)]
320pub struct Global {
321 /// The name it is reached by.
322 pub name: Symbol,
323 /// Its size in bytes, which the image must add up to.
324 pub size: u64,
325 /// Its required alignment in bytes, always a power of two.
326 pub align: u32,
327 /// How the linker sees it.
328 pub linkage: Linkage,
329 /// How the dynamic linker sees it.
330 pub visibility: Visibility,
331 /// The model to reach it by if it is thread-local, and `None` if it is not.
332 pub tls: Option<TlsModel>,
333 /// Whether writing through a pointer to it is undefined, which is what puts it in
334 /// `.rodata` rather than `.data`.
335 pub constant: bool,
336 /// The section to put it in, from `__attribute__((section(...)))`, or `None` to let the
337 /// object writer choose from the other fields.
338 pub section: Option<Symbol>,
339 /// Its initial image, or `None` if it is only declared here.
340 pub init: Option<DataList>,
341}
342
343impl Global {
344 /// A definition-less global of that size and alignment, external and not thread-local.
345 #[must_use]
346 pub fn new(name: Symbol, size: u64, align: u32) -> Self {
347 Self {
348 name,
349 size,
350 align,
351 linkage: Linkage::External,
352 visibility: Visibility::Default,
353 tls: None,
354 constant: false,
355 section: None,
356 init: None,
357 }
358 }
359
360 /// Whether this only says the variable exists somewhere.
361 #[must_use]
362 pub fn is_declaration(&self) -> bool {
363 self.init.is_none()
364 }
365}
366
367/// What an alias resolves to at link time.
368#[derive(Debug, Clone, Copy, PartialEq, Eq, PartialOrd, Ord, Hash, Default)]
369pub enum AliasKind {
370 /// A second name for a symbol in this same object, resolved by the assembler.
371 /// `__attribute__((alias("real")))`.
372 #[default]
373 Alias,
374 /// A name resolved once at program start by calling a resolver function in this object,
375 /// which picks an implementation from what the processor turns out to support.
376 /// `__attribute__((ifunc("resolver")))`, which is how glibc dispatches `memcpy`.
377 IFunc,
378}
379
380impl AliasKind {
381 /// The spelling in the textual form.
382 #[must_use]
383 pub const fn name(self) -> &'static str {
384 match self {
385 Self::Alias => "alias",
386 Self::IFunc => "ifunc",
387 }
388 }
389
390 /// The kind that spelling names.
391 #[must_use]
392 pub fn from_name(name: &str) -> Option<Self> {
393 match name {
394 "alias" => Some(Self::Alias),
395 "ifunc" => Some(Self::IFunc),
396 _ => None,
397 }
398 }
399}
400
401/// A second name for something else.
402#[derive(Debug, Clone, Copy, PartialEq, Eq)]
403pub struct Alias {
404 /// The name being defined.
405 pub name: Symbol,
406 /// What it resolves to: the aliased symbol, or for an ifunc the resolver to call.
407 pub target: Symbol,
408 /// Which of those two it is.
409 pub kind: AliasKind,
410 /// How the linker sees the new name.
411 pub linkage: Linkage,
412 /// How the dynamic linker sees the new name.
413 pub visibility: Visibility,
414}
415
416impl Alias {
417 /// An external alias of `target`.
418 #[must_use]
419 pub fn new(name: Symbol, target: Symbol) -> Self {
420 Self {
421 name,
422 target,
423 kind: AliasKind::Alias,
424 linkage: Linkage::External,
425 visibility: Visibility::Default,
426 }
427 }
428}
429
430/// What a name in a module refers to.
431#[derive(Debug, Clone, Copy, PartialEq, Eq)]
432pub enum SymbolRef {
433 /// A function, defined or declared.
434 Func(FuncId),
435 /// A global variable, defined or declared.
436 Global(GlobalId),
437 /// An alias or an ifunc.
438 Alias(AliasId),
439}
440
441/// The layout facts a printed module carries so it can be compiled without the command line
442/// that produced it.
443///
444/// A subset of the string LLVM writes, in the same syntax, because that syntax is what tools
445/// around the ecosystem already read. It says what the module was built assuming, and the
446/// verifier is what checks it against the target actually being compiled for: a module built
447/// for a 64-bit pointer cannot be finished for a 32-bit one, and finding that out here is
448/// better than finding it out as wrong output.
449#[derive(Debug, Clone, Copy, PartialEq, Eq)]
450pub struct DataLayout {
451 /// Whether the low byte of a scalar is stored first.
452 pub little_endian: bool,
453 /// The width of a pointer in bits.
454 pub pointer_bits: u32,
455 /// The alignment of a pointer in bits.
456 pub pointer_align: u32,
457 /// The alignment of a 64-bit integer in bits, which is the one integer alignment that
458 /// varies across the targets anybody still builds for.
459 pub i64_align: u32,
460 /// The alignment of the x87 eighty bit format in bits, and `None` on a target that does
461 /// not have it.
462 pub f80_align: Option<u32>,
463 /// The alignment the stack is kept at in bits, which is 128 on every target here.
464 pub stack_align: u32,
465}
466
467impl DataLayout {
468 /// The layout of that target.
469 ///
470 /// # Panics
471 ///
472 /// If the target aligns a `long long` to more than half a billion bytes, which no target
473 /// does. The alignment is a byte count here and a bit count in the IR, and the multiplication
474 /// between the two is the only arithmetic in this function.
475 #[must_use]
476 pub fn for_target(target: &TargetInfo) -> Self {
477 Self {
478 little_endian: target.little_endian,
479 pointer_bits: target.pointer_width,
480 pointer_align: target.pointer_width,
481 // Four on System V i386 and eight everywhere else, which is the one integer
482 // alignment that varies across the table and the reason this is a field. It changes
483 // the layout of every struct with a `long long` in it.
484 i64_align: u32::try_from(target.scalars.long_long_align * 8)
485 .expect("no integer alignment is four billion bits"),
486 f80_align: match target.long_double_format {
487 Format::X87Extended => Some(128),
488 _ => None,
489 },
490 stack_align: 128,
491 }
492 }
493
494 /// The layout back from the string [`Display`](fmt::Display) wrote, or `None` if the
495 /// string is not one.
496 ///
497 /// The fields may come in any order, because a string written by hand will not have them
498 /// in ours. A string this crate printed round-trips byte for byte, which is what
499 /// `spec/03-architecture.md` asks of the textual form.
500 #[must_use]
501 pub fn parse(text: &str) -> Option<Self> {
502 let mut little_endian = None;
503 let mut pointer = None;
504 let mut i64_align = None;
505 let mut f80_align = None;
506 let mut stack_align = None;
507 for field in text.split('-') {
508 let seen = match field {
509 "e" => little_endian.replace(true).is_some(),
510 "E" => little_endian.replace(false).is_some(),
511 _ if field.starts_with("p:") => {
512 let (bits, align) = field[2..].split_once(':')?;
513 pointer.replace((number(bits)?, number(align)?)).is_some()
514 }
515 _ if field.starts_with("i64:") => i64_align.replace(number(&field[4..])?).is_some(),
516 _ if field.starts_with("f80:") => f80_align.replace(number(&field[4..])?).is_some(),
517 _ if field.starts_with('S') => stack_align.replace(number(&field[1..])?).is_some(),
518 _ => return None,
519 };
520 if seen {
521 return None;
522 }
523 }
524 let (pointer_bits, pointer_align) = pointer?;
525 Some(Self {
526 little_endian: little_endian?,
527 pointer_bits,
528 pointer_align,
529 i64_align: i64_align?,
530 f80_align,
531 stack_align: stack_align?,
532 })
533 }
534}
535
536impl fmt::Display for DataLayout {
537 fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
538 write!(f, "{}", if self.little_endian { "e" } else { "E" })?;
539 write!(f, "-p:{}:{}", self.pointer_bits, self.pointer_align)?;
540 write!(f, "-i64:{}", self.i64_align)?;
541 if let Some(align) = self.f80_align {
542 write!(f, "-f80:{align}")?;
543 }
544 write!(f, "-S{}", self.stack_align)
545 }
546}
547
548/// A number in the textual form: digits, no sign, and no leading zero.
549///
550/// `p:64:064` would otherwise parse and then print back as `p:64:64`, which breaks the
551/// round-trip for no benefit to anybody.
552fn number(text: &str) -> Option<u32> {
553 if text.is_empty() || (text.len() > 1 && text.starts_with('0')) {
554 return None;
555 }
556 if !text.bytes().all(|byte| byte.is_ascii_digit()) {
557 return None;
558 }
559 text.parse().ok()
560}
561
562/// One translation unit, or after LTO the several that were linked into one.
563#[derive(Debug)]
564pub struct Module {
565 /// What it is called, which is the source file name for a module from the frontend. It
566 /// appears in the textual form and in the debug info and nothing branches on it.
567 pub name: Symbol,
568 /// The target it is for.
569 pub tuple: TargetTuple,
570 /// The layout it was built assuming.
571 pub datalayout: DataLayout,
572
573 funcs: Vec<Func>,
574 globals: Vec<Global>,
575 aliases: Vec<Alias>,
576 metadata: Vec<MetaNode>,
577
578 data: Vec<Datum>,
579 bytes: Vec<u8>,
580 imms: Vec<Imm>,
581 relocs: Vec<Reloc>,
582
583 symbols: HashMap<Symbol, SymbolRef>,
584}
585
586impl Module {
587 /// An empty module for that target.
588 #[must_use]
589 pub fn new(name: Symbol, target: &TargetInfo) -> Self {
590 Self {
591 name,
592 tuple: target.tuple,
593 datalayout: DataLayout::for_target(target),
594 funcs: Vec::new(),
595 globals: Vec::new(),
596 aliases: Vec::new(),
597 metadata: Vec::new(),
598 data: Vec::new(),
599 bytes: Vec::new(),
600 imms: Vec::new(),
601 relocs: Vec::new(),
602 symbols: HashMap::new(),
603 }
604 }
605
606 // Symbols.
607
608 /// Adds a function, which is a declaration if it has no blocks.
609 ///
610 /// # Panics
611 ///
612 /// Panics if the module already has a symbol of that name. Merging a declaration with a
613 /// definition is the frontend's job and it has the declarations to do it with; by the time
614 /// something is in the IR a name means one thing.
615 pub fn add_func(&mut self, func: Func) -> FuncId {
616 let id = Idx::from_usize(self.funcs.len());
617 self.claim(func.name, SymbolRef::Func(id));
618 self.funcs.push(func);
619 id
620 }
621
622 /// Adds a global variable, which is a declaration if it has no image.
623 ///
624 /// # Panics
625 ///
626 /// Panics if the module already has a symbol of that name.
627 pub fn add_global(&mut self, global: Global) -> GlobalId {
628 let id = Idx::from_usize(self.globals.len());
629 self.claim(global.name, SymbolRef::Global(id));
630 self.globals.push(global);
631 id
632 }
633
634 /// Adds an alias.
635 ///
636 /// The target is not resolved here, and it need not be in this module: an alias of
637 /// something in another object is a thing people write.
638 ///
639 /// # Panics
640 ///
641 /// Panics if the module already has a symbol of that name.
642 pub fn add_alias(&mut self, alias: Alias) -> AliasId {
643 let id = Idx::from_usize(self.aliases.len());
644 self.claim(alias.name, SymbolRef::Alias(id));
645 self.aliases.push(alias);
646 id
647 }
648
649 /// What that name refers to, or `None` if this module does not define or declare it.
650 #[must_use]
651 pub fn lookup(&self, name: Symbol) -> Option<SymbolRef> {
652 self.symbols.get(&name).copied()
653 }
654
655 /// Every function, in the order they were added.
656 pub fn funcs(&self) -> impl Iterator<Item = FuncId> + use<> {
657 (0..self.funcs.len()).map(Idx::from_usize)
658 }
659
660 /// Every global variable, in the order they were added.
661 pub fn globals(&self) -> impl Iterator<Item = GlobalId> + use<> {
662 (0..self.globals.len()).map(Idx::from_usize)
663 }
664
665 /// Every alias, in the order they were added.
666 pub fn aliases(&self) -> impl Iterator<Item = AliasId> + use<> {
667 (0..self.aliases.len()).map(Idx::from_usize)
668 }
669
670 fn claim(&mut self, name: Symbol, what: SymbolRef) {
671 assert!(
672 self.symbols.insert(name, what).is_none(),
673 "a module cannot have two symbols with the same name"
674 );
675 }
676
677 // Metadata.
678
679 /// Adds a metadata node and gives back the reference an instruction holds.
680 ///
681 /// The nodes live here rather than in a function because a TBAA tree is shared by every
682 /// memory operation in the module and duplicating it per function would make two accesses
683 /// to the same type look unrelated.
684 pub fn add_meta(&mut self, node: MetaNode) -> Meta {
685 self.metadata.push(node);
686 Idx::from_usize(self.metadata.len() - 1)
687 }
688
689 /// Every metadata node, in the order they were added.
690 pub fn metadata(&self) -> impl Iterator<Item = Meta> + use<> {
691 (0..self.metadata.len()).map(Idx::from_usize)
692 }
693
694 // Pools.
695
696 /// Records a run of data and gives back the list a global holds.
697 pub fn push_data(&mut self, data: &[Datum]) -> DataList {
698 let start = self.data.len();
699 self.data.extend_from_slice(data);
700 DataList::new(Idx::from_usize(start), Idx::from_usize(self.data.len()))
701 }
702
703 /// Records literal bytes and gives back the range a [`Datum::Bytes`] holds.
704 pub fn push_bytes(&mut self, bytes: &[u8]) -> ByteRange {
705 let start = self.bytes.len();
706 self.bytes.extend_from_slice(bytes);
707 ByteRange::new(Idx::from_usize(start), Idx::from_usize(self.bytes.len()))
708 }
709
710 /// Records a scalar value and gives back the index a [`Datum::Scalar`] holds.
711 pub fn add_imm(&mut self, imm: Imm) -> Idx<Imm> {
712 self.imms.push(imm);
713 Idx::from_usize(self.imms.len() - 1)
714 }
715
716 /// Records a relocation and gives back the index a [`Datum::Addr`] holds.
717 pub fn add_reloc(&mut self, reloc: Reloc) -> Idx<Reloc> {
718 self.relocs.push(reloc);
719 Idx::from_usize(self.relocs.len() - 1)
720 }
721
722 /// How much is in it, for the `-fstats` output and for a test that wants to say a pass
723 /// deleted something without saying which.
724 #[must_use]
725 pub fn counts(&self) -> ModuleCounts {
726 ModuleCounts {
727 funcs: self.funcs.len(),
728 globals: self.globals.len(),
729 aliases: self.aliases.len(),
730 metadata: self.metadata.len(),
731 data_bytes: self.bytes.len(),
732 }
733 }
734}
735
736/// How much is in a module, from [`Module::counts`].
737#[derive(Debug, Clone, Copy, PartialEq, Eq)]
738pub struct ModuleCounts {
739 /// Functions, defined and declared.
740 pub funcs: usize,
741 /// Global variables, defined and declared.
742 pub globals: usize,
743 /// Aliases and ifuncs.
744 pub aliases: usize,
745 /// Metadata nodes.
746 pub metadata: usize,
747 /// Bytes in the byte pool, which is the bulk of what a module with large initializers
748 /// weighs.
749 pub data_bytes: usize,
750}
751
752impl Index<FuncId> for Module {
753 type Output = Func;
754
755 fn index(&self, id: FuncId) -> &Func {
756 &self.funcs[id.index()]
757 }
758}
759
760impl IndexMut<FuncId> for Module {
761 fn index_mut(&mut self, id: FuncId) -> &mut Func {
762 &mut self.funcs[id.index()]
763 }
764}
765
766impl Index<GlobalId> for Module {
767 type Output = Global;
768
769 fn index(&self, id: GlobalId) -> &Global {
770 &self.globals[id.index()]
771 }
772}
773
774impl IndexMut<GlobalId> for Module {
775 fn index_mut(&mut self, id: GlobalId) -> &mut Global {
776 &mut self.globals[id.index()]
777 }
778}
779
780impl Index<AliasId> for Module {
781 type Output = Alias;
782
783 fn index(&self, id: AliasId) -> &Alias {
784 &self.aliases[id.index()]
785 }
786}
787
788impl Index<Meta> for Module {
789 type Output = MetaNode;
790
791 fn index(&self, meta: Meta) -> &MetaNode {
792 &self.metadata[meta.index()]
793 }
794}
795
796impl Index<Idx<Imm>> for Module {
797 type Output = Imm;
798
799 fn index(&self, imm: Idx<Imm>) -> &Imm {
800 &self.imms[imm.index()]
801 }
802}
803
804impl Index<Idx<Reloc>> for Module {
805 type Output = Reloc;
806
807 fn index(&self, reloc: Idx<Reloc>) -> &Reloc {
808 &self.relocs[reloc.index()]
809 }
810}
811
812impl Index<DataList> for Module {
813 type Output = [Datum];
814
815 fn index(&self, list: DataList) -> &[Datum] {
816 &self.data[list.as_usize_range()]
817 }
818}
819
820impl Index<ByteRange> for Module {
821 type Output = [u8];
822
823 fn index(&self, range: ByteRange) -> &[u8] {
824 &self.bytes[range.as_usize_range()]
825 }
826}
827
828#[cfg(test)]
829mod tests {
830 use rucc_base::Interner;
831 use rucc_target::{Arch, Env, Os, Triple};
832
833 use super::*;
834 use crate::inst::Signature;
835
836 fn target(arch: Arch, os: Os, env: Env) -> TargetInfo {
837 TargetInfo::new(Triple::new(arch, os, env))
838 }
839
840 fn linux() -> TargetInfo {
841 target(Arch::X86_64, Os::Linux, Env::Gnu)
842 }
843
844 #[test]
845 fn a_datum_is_sixteen_bytes() {
846 // A global with a large initializer is a flat array of these, so this is the tripwire
847 // on somebody adding a field that doubles the weight of every one.
848 assert_eq!(size_of::<Datum>(), 16);
849 }
850
851 #[test]
852 fn the_layout_of_x86_64_linux_is_the_one_in_the_spec() {
853 let layout = DataLayout::for_target(&linux());
854 assert_eq!(layout.to_string(), "e-p:64:64-i64:64-f80:128-S128");
855 }
856
857 #[test]
858 fn only_x86_has_the_eighty_bit_format() {
859 assert_eq!(DataLayout::for_target(&linux()).f80_align, Some(128));
860 let arm = DataLayout::for_target(&target(Arch::Aarch64, Os::Linux, Env::Gnu));
861 assert_eq!(arm.f80_align, None);
862 assert_eq!(arm.to_string(), "e-p:64:64-i64:64-S128");
863 }
864
865 #[test]
866 fn a_layout_round_trips() {
867 for triple in [
868 Triple::new(Arch::X86_64, Os::Linux, Env::Gnu),
869 Triple::new(Arch::X86_64, Os::Darwin, Env::None),
870 Triple::new(Arch::Aarch64, Os::Darwin, Env::None),
871 Triple::new(Arch::Riscv64, Os::Linux, Env::Musl),
872 ] {
873 let layout = DataLayout::for_target(&TargetInfo::new(triple));
874 let text = layout.to_string();
875 assert_eq!(DataLayout::parse(&text), Some(layout), "{text}");
876 }
877 }
878
879 #[test]
880 fn a_layout_may_be_written_in_any_order() {
881 let text = "S128-i64:64-f80:128-p:64:64-e";
882 assert_eq!(DataLayout::parse(text), Some(DataLayout::for_target(&linux())));
883 }
884
885 #[test]
886 fn a_layout_needs_every_field_it_prints() {
887 for text in ["", "e", "e-p:64:64-S128", "e-i64:64-S128", "e-p:64:64-i64:64"] {
888 assert_eq!(DataLayout::parse(text), None, "{text}");
889 }
890 }
891
892 #[test]
893 fn a_layout_refuses_a_second_spelling() {
894 // Each of these would print back as something else, which breaks the round-trip.
895 for text in ["e-p:64:064-i64:64-S128", "e-e-p:64:64-i64:64-S128", "e-p:64:64-i64:64-S128-x"]
896 {
897 assert_eq!(DataLayout::parse(text), None, "{text}");
898 }
899 }
900
901 #[test]
902 fn a_module_finds_what_it_holds() {
903 let mut names = Interner::new();
904 let mut module = Module::new(names.intern("test.c"), &linux());
905
906 let counter = names.intern("counter");
907 let sum = names.intern("sum");
908 let total = names.intern("total");
909
910 let global = module.add_global(Global::new(counter, 4, 4));
911 let func = module.add_func(Func::new(sum, Signature::new()));
912 let alias = module.add_alias(Alias::new(total, counter));
913
914 assert_eq!(module.lookup(counter), Some(SymbolRef::Global(global)));
915 assert_eq!(module.lookup(sum), Some(SymbolRef::Func(func)));
916 assert_eq!(module.lookup(total), Some(SymbolRef::Alias(alias)));
917 assert_eq!(module.lookup(names.intern("nothing")), None);
918 assert_eq!(module[alias].target, counter);
919 assert!(module[global].is_declaration());
920 assert!(module[func].is_declaration());
921 }
922
923 #[test]
924 #[should_panic(expected = "two symbols with the same name")]
925 fn a_name_means_one_thing() {
926 let mut names = Interner::new();
927 let mut module = Module::new(names.intern("test.c"), &linux());
928 let name = names.intern("x");
929 module.add_global(Global::new(name, 4, 4));
930 module.add_func(Func::new(name, Signature::new()));
931 }
932
933 #[test]
934 fn an_initializer_adds_up_to_the_size() {
935 let mut names = Interner::new();
936 let mut module = Module::new(names.intern("test.c"), &linux());
937
938 // struct { int n; const char *name; char pad[6]; } = { 7, "hi", { 0 } };
939 let text = names.intern("hi.str");
940 let seven = module.add_imm(Imm::int(7, Type::int(32)));
941 let bytes = module.push_bytes(b"hi\0");
942 let addr = module.add_reloc(Reloc { symbol: text, addend: 0, size: 8 });
943 let init = module.push_data(&[
944 Datum::Scalar { ty: Type::int(32), value: seven },
945 Datum::Zero(4),
946 Datum::Addr(addr),
947 // The six bytes of `pad` and the two the struct is tailed out with. Padding is
948 // the frontend's arithmetic, and the image is what it came out as.
949 Datum::Zero(8),
950 ]);
951
952 let mut global = Global::new(names.intern("entry"), 24, 8);
953 global.init = Some(init);
954 global.constant = true;
955 let id = module.add_global(global);
956
957 assert!(!module[id].is_declaration());
958 let size: u64 = module[init].iter().map(|datum| datum.size(&module)).sum();
959 assert_eq!(size, module[id].size);
960 assert_eq!(&module[bytes], b"hi\0");
961 assert_eq!(module[seven].unsigned(), 7);
962 assert_eq!(module.counts().data_bytes, 3);
963 }
964
965 #[test]
966 fn a_scalar_datum_is_as_wide_as_its_type() {
967 let mut names = Interner::new();
968 let mut module = Module::new(names.intern("test.c"), &linux());
969 let value = module.add_imm(Imm::int(0, Type::int(32)));
970 assert_eq!(Datum::Scalar { ty: Type::int(32), value }.size(&module), 4);
971 // Rounded up to whole bytes, one lane at a time.
972 assert_eq!(Datum::Scalar { ty: Type::I1, value }.size(&module), 1);
973 assert_eq!(Datum::Scalar { ty: Type::int(24), value }.size(&module), 3);
974 assert_eq!(Datum::Scalar { ty: Type::vector(Type::int(8), 16), value }.size(&module), 16);
975 }
976
977 #[test]
978 fn the_names_round_trip() {
979 for linkage in Linkage::all() {
980 assert_eq!(Linkage::from_name(linkage.name()), Some(linkage));
981 }
982 for visibility in Visibility::all() {
983 assert_eq!(Visibility::from_name(visibility.name()), Some(visibility));
984 }
985 for model in TlsModel::all() {
986 assert_eq!(TlsModel::from_name(model.name()), Some(model));
987 }
988 for kind in [AliasKind::Alias, AliasKind::IFunc] {
989 assert_eq!(AliasKind::from_name(kind.name()), Some(kind));
990 }
991 assert_eq!(Linkage::from_name("static"), None);
992 assert_eq!(Visibility::from_name("internal"), None);
993 }
994
995 #[test]
996 fn only_internal_linkage_is_local() {
997 for linkage in Linkage::all() {
998 assert_eq!(linkage.is_local(), linkage == Linkage::Internal);
999 assert_eq!(
1000 linkage.may_be_replaced(),
1001 !matches!(linkage, Linkage::External | Linkage::Internal)
1002 );
1003 }
1004 }
1005
1006 #[test]
1007 fn metadata_is_shared_by_the_whole_module() {
1008 let mut names = Interner::new();
1009 let mut module = Module::new(names.intern("test.c"), &linux());
1010 let char_node = module.add_meta(MetaNode::Tbaa(TbaaNode {
1011 name: names.intern("omnipotent char"),
1012 parent: None,
1013 offset: 0,
1014 }));
1015 let int_node = module.add_meta(MetaNode::Tbaa(TbaaNode {
1016 name: names.intern("int"),
1017 parent: Some(char_node),
1018 offset: 0,
1019 }));
1020 assert_eq!(module[int_node].parent(), Some(char_node));
1021 assert_eq!(module.metadata().count(), 2);
1022 }
1023}