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rucc_ir/
func.rs

1//! The function: its blocks, its instructions, its values, and the tables they live in.
2//!
3//! Design: `spec/08-ir.md` sections 8.1 and 8.6.
4//!
5//! One [`Func`] owns everything in it. Nothing is boxed and nothing is individually freed: the
6//! instructions are a flat vector, a reference to one is a four-byte index, and the whole
7//! function is dropped in one go. The same shape as the AST, for the same reasons.
8//!
9//! Two things are not flat, and both for the same reason, which is that SSA construction
10//! finishes a loop header long after it has built the blocks inside the loop.
11//!
12//! The instructions in a block are a doubly linked list rather than a run, because the
13//! optimizer inserts and removes instructions constantly and a run would move every
14//! instruction after the edit, invalidating every [`Inst`] anybody was holding.
15//!
16//! A block's parameters are a `Vec` rather than a run in a pool, because a run in a pool
17//! cannot grow once something else has been put after it, and adding a parameter to a loop
18//! header is exactly the operation that has to grow one.
19//!
20//! # CFG invariants
21//!
22//! The entry block has no predecessors and its parameters are the function's arguments in
23//! their C-level form, before the ABI has been applied. Every other block ends in exactly one
24//! terminator and contains no terminator anywhere else. These are checked by the verifier
25//! rather than by the builder, because a function under construction breaks all of them and
26//! the useful question is whether it still does when the pass that was building it says it has
27//! finished.
28
29use std::ops::{Index, IndexMut};
30
31use rucc_base::{Idx, Symbol};
32use rucc_diag::Span;
33use rucc_target::Slot;
34
35use crate::inst::{
36    Abi, AbiList, AsmInfo, Block, BlockCall, BlockCallList, BlockData, CallInfo, Def, Extra, Imm,
37    ImmList, Inst, InstData, InstLayout, MemInfo, Sig, Signature, SlotList, SwitchInfo, VaInfo,
38    Value, ValueData, ValueList,
39};
40use crate::module::{Linkage, Visibility};
41use crate::{Attrs, Facts, Flags, FloatPred, IntPred, Opcode, Type};
42
43/// One function.
44#[derive(Debug)]
45pub struct Func {
46    /// The name it is called by, which is what a direct call to it names.
47    pub name: Symbol,
48    /// How the linker sees it. `Internal` for a `static` function.
49    pub linkage: Linkage,
50    /// How the dynamic linker sees it.
51    pub visibility: Visibility,
52    /// The section to put it in, from `__attribute__((section(...)))`, or `None` to let the
53    /// object writer choose.
54    pub section: Option<Symbol>,
55    /// What its first instruction has to be aligned to, from `__attribute__((aligned(...)))`, or
56    /// `None` for the alignment the target gives every function anyway.
57    ///
58    /// A raise and never a lower, the way the attribute is everywhere: a function asked to be at
59    /// a multiple of two hundred and fifty six is at one, and one asked for less than the target's
60    /// own alignment keeps the target's.
61    pub align: Option<u32>,
62    /// What is true of the whole function, which is what a caller reads when it wants to know
63    /// what a call to it does without looking inside.
64    pub attrs: Attrs,
65
66    values: Vec<ValueData>,
67    insts: Vec<InstData>,
68    inst_layout: Vec<InstLayout>,
69    inst_spans: Vec<Span>,
70    blocks: Vec<BlockData>,
71
72    value_pool: Vec<Value>,
73    block_calls: Vec<BlockCall>,
74    imms: Vec<Imm>,
75    mem: Vec<MemInfo>,
76    calls: Vec<CallInfo>,
77    abis: Vec<Abi>,
78    switches: Vec<SwitchInfo>,
79    asms: Vec<AsmInfo>,
80    slots: Vec<Slot>,
81    va_objects: Vec<VaInfo>,
82    signatures: Vec<Signature>,
83    facts: Vec<(Value, Facts)>,
84
85    first_block: Option<Block>,
86    last_block: Option<Block>,
87}
88
89impl Func {
90    /// A function with that name and that signature, and nothing in it.
91    ///
92    /// The signature becomes signature zero, which is what [`Func::signature`] gives back. The
93    /// entry block is not created here, because the caller is about to create it and give it
94    /// the parameters, and a half-built entry block is worse than no entry block. So a
95    /// function fresh from here is a declaration, and stops being one when it gets a block.
96    #[must_use]
97    pub fn new(name: Symbol, signature: Signature) -> Self {
98        Self {
99            name,
100            linkage: Linkage::External,
101            visibility: Visibility::Default,
102            section: None,
103            align: None,
104            attrs: Attrs::NONE,
105            values: Vec::new(),
106            insts: Vec::new(),
107            inst_layout: Vec::new(),
108            inst_spans: Vec::new(),
109            blocks: Vec::new(),
110            value_pool: Vec::new(),
111            block_calls: Vec::new(),
112            imms: Vec::new(),
113            mem: Vec::new(),
114            calls: Vec::new(),
115            abis: Vec::new(),
116            switches: Vec::new(),
117            asms: Vec::new(),
118            slots: Vec::new(),
119            va_objects: Vec::new(),
120            signatures: vec![signature],
121            facts: Vec::new(),
122            first_block: None,
123            last_block: None,
124        }
125    }
126
127    /// Its own signature.
128    #[must_use]
129    pub fn signature(&self) -> &Signature {
130        &self.signatures[0]
131    }
132
133    /// Every signature the function holds, its own first and then the ones its calls name.
134    pub fn signatures(&self) -> impl Iterator<Item = &Signature> {
135        self.signatures.iter()
136    }
137
138    /// Records a signature a `call_indirect` is made with, and gives back its index.
139    pub fn add_signature(&mut self, signature: Signature) -> Sig {
140        self.signatures.push(signature);
141        Idx::from_usize(self.signatures.len() - 1)
142    }
143
144    /// The entry block, which is the first one in layout order.
145    ///
146    /// `None` only before one has been created. The verifier is what insists a finished
147    /// function has one.
148    #[must_use]
149    pub fn entry(&self) -> Option<Block> {
150        self.first_block
151    }
152
153    /// Whether this only says the function exists somewhere, which is a function with no
154    /// blocks in it.
155    ///
156    /// `extern int puts(const char *);` and every other declaration of something defined in
157    /// another object is one of these, and it is here rather than left out of the module
158    /// because a call needs its signature and its linkage.
159    #[must_use]
160    pub fn is_declaration(&self) -> bool {
161        self.first_block.is_none()
162    }
163
164    // Blocks.
165
166    /// Creates a block with no parameters and no instructions, at the end of the layout.
167    pub fn create_block(&mut self) -> Block {
168        let block = Idx::from_usize(self.blocks.len());
169        self.blocks.push(BlockData { prev: self.last_block, ..BlockData::default() });
170        match self.last_block {
171            Some(last) => self.blocks[last.index()].next = Some(block),
172            None => self.first_block = Some(block),
173        }
174        self.last_block = Some(block);
175        block
176    }
177
178    /// Takes a block out of the layout, along with everything in it.
179    ///
180    /// The block keeps its number, the way a removed instruction keeps its own, because
181    /// renumbering would move every block after it and invalidate every index anybody was
182    /// holding. What it stops being is a block of this function: nothing walks it, nothing
183    /// prints it, and the values defined in it are as gone as the instructions that defined
184    /// them. Deleting one whose branches something still reaches is how a function ends up
185    /// branching to nowhere, so the caller is the one that has to know nothing reaches it.
186    ///
187    /// # Panics
188    ///
189    /// Panics if the block is the entry block, which is the one block a function has to have.
190    pub fn remove_block(&mut self, block: Block) {
191        assert!(self.first_block != Some(block), "the entry block is not removable");
192        let (prev, next) = (self.blocks[block.index()].prev, self.blocks[block.index()].next);
193        match prev {
194            Some(prev) => self.blocks[prev.index()].next = next,
195            None => self.first_block = next,
196        }
197        match next {
198            Some(next) => self.blocks[next.index()].prev = prev,
199            None => self.last_block = prev,
200        }
201        // The instructions say they are in no block now, which is what a removed instruction
202        // says, so that asking one where it is gives an answer rather than a block nothing
203        // walks.
204        let insts: Vec<Inst> = self.insts(block).collect();
205        for inst in insts {
206            self.inst_layout[inst.index()] = InstLayout::default();
207        }
208        self.blocks[block.index()] = BlockData::default();
209    }
210
211    /// Adds a parameter of that type to a block, and gives back the value it arrives as.
212    ///
213    /// Every predecessor's branch has to grow an argument to match, which is
214    /// [`Func::append_arg`], and the verifier is what notices if one of them did not.
215    ///
216    /// # Panics
217    ///
218    /// Panics if the block already has four billion parameters, which no block does.
219    pub fn append_param(&mut self, block: Block, ty: Type) -> Value {
220        let index = u32::try_from(self.blocks[block.index()].params.len())
221            .expect("a block with four billion parameters");
222        let value = self.add_value(ValueData { ty, def: Def::Param { block, index } });
223        self.blocks[block.index()].params.push(value);
224        value
225    }
226
227    /// Drops the parameters of a block that a predicate turns down, and renumbers the rest.
228    ///
229    /// The predicate is asked about each parameter in the order the block takes them. A
230    /// parameter that goes has to take the argument in the same position out of every branch
231    /// to the block, which is the caller's work rather than this method's, because only the
232    /// caller knows which branches there are. This is what removing a redundant block
233    /// parameter is, and SSA construction is the thing that makes them.
234    ///
235    /// # Panics
236    ///
237    /// Panics if the block has four billion parameters, which no block does.
238    pub fn retain_params(&mut self, block: Block, mut keep: impl FnMut(Value) -> bool) {
239        let mut params = std::mem::take(&mut self.blocks[block.index()].params);
240        params.retain(|&value| keep(value));
241        for (index, &value) in params.iter().enumerate() {
242            let index = u32::try_from(index).expect("a block with four billion parameters");
243            self.values[value.index()].def = Def::Param { block, index };
244        }
245        self.blocks[block.index()].params = params;
246    }
247
248    /// Gives a value a different type, leaving where it comes from alone.
249    ///
250    /// There is one caller and it is the back end pass that puts an integer of a width the
251    /// machine has no register for into the width it does have one for. Nothing in the middle
252    /// end changes a value's type, because a value's type is what the instruction that made it
253    /// produces and changing one without changing the other is how an IR stops meaning
254    /// anything. That pass changes both, which is why this is a method and not a field.
255    ///
256    /// # Panics
257    ///
258    /// Panics if the value is not one of this function's.
259    pub fn retype(&mut self, value: Value, ty: Type) {
260        self.values[value.index()].ty = ty;
261    }
262
263    /// Every value the function has, including ones whose defining instruction has gone.
264    ///
265    /// In the order they were created, which is the order a pass that walks all of them wants:
266    /// a value is defined before it is used, so a walk in this order sees a definition first.
267    pub fn values(&self) -> impl Iterator<Item = Value> + use<'_> {
268        (0..self.values.len()).map(Idx::from_usize)
269    }
270
271    /// Every block, in layout order.
272    pub fn blocks(&self) -> impl Iterator<Item = Block> + use<'_> {
273        std::iter::successors(self.first_block, move |&block| self.blocks[block.index()].next)
274    }
275
276    /// Every instruction in a block, in order.
277    pub fn insts(&self, block: Block) -> impl Iterator<Item = Inst> + use<'_> {
278        std::iter::successors(self.blocks[block.index()].first, move |&inst| {
279            self.inst_layout[inst.index()].next
280        })
281    }
282
283    /// The last instruction of a block, which is its terminator once it is finished.
284    #[must_use]
285    pub fn terminator(&self, block: Block) -> Option<Inst> {
286        self.blocks[block.index()].last.filter(|&inst| self.is_terminator(inst))
287    }
288
289    /// Whether control leaves the block at this instruction.
290    ///
291    /// A question for the function rather than for the instruction, because inline assembly is
292    /// the one case where the opcode is not enough: `asm goto` has labels and everything else
293    /// does not, and the labels are in the function's table rather than on the instruction.
294    #[must_use]
295    pub fn is_terminator(&self, inst: Inst) -> bool {
296        let data = &self[inst];
297        match data.extra {
298            Extra::Asm(info) => {
299                data.opcode.is_terminator() || !self.asms[info.index()].targets.is_empty()
300            }
301            _ => data.opcode.is_terminator(),
302        }
303    }
304
305    // Instructions.
306
307    /// Creates an instruction and its result values, without putting it in a block.
308    ///
309    /// The results are allocated here and are contiguous, which is what lets an instruction
310    /// hold the first of them and a count rather than a list.
311    ///
312    /// # Panics
313    ///
314    /// Panics if `results` has more than 255 types, which no instruction in the set does.
315    pub fn create_inst(&mut self, mut data: InstData, results: &[Type], span: Span) -> Inst {
316        let inst = Idx::from_usize(self.insts.len());
317        data.results = u8::try_from(results.len()).expect("an instruction with too many results");
318        data.first_result = results.first().map(|_| Idx::from_usize(self.values.len()));
319        for (index, &ty) in results.iter().enumerate() {
320            let index = u8::try_from(index).expect("checked just above");
321            self.add_value(ValueData { ty, def: Def::Result { inst, index } });
322        }
323        self.insts.push(data);
324        self.inst_layout.push(InstLayout::default());
325        self.inst_spans.push(span);
326        inst
327    }
328
329    /// Puts an instruction at the end of a block.
330    ///
331    /// # Panics
332    ///
333    /// Panics if the instruction is already in a block. Moving one is removing it and
334    /// appending it, and doing it by accident is how a linked list ends up in two pieces.
335    pub fn append_inst(&mut self, block: Block, inst: Inst) {
336        assert!(self.inst_layout[inst.index()].block.is_none(), "the instruction is in a block");
337        let last = self.blocks[block.index()].last;
338        self.inst_layout[inst.index()] = InstLayout { block: Some(block), prev: last, next: None };
339        match last {
340            Some(last) => self.inst_layout[last.index()].next = Some(inst),
341            None => self.blocks[block.index()].first = Some(inst),
342        }
343        self.blocks[block.index()].last = Some(inst);
344    }
345
346    /// Puts an instruction immediately before another one, in the block that one is in.
347    ///
348    /// # Panics
349    ///
350    /// Panics if `inst` is already in a block, or if `before` is not in one.
351    pub fn insert_before(&mut self, inst: Inst, before: Inst) {
352        assert!(self.inst_layout[inst.index()].block.is_none(), "the instruction is in a block");
353        let at = self.inst_layout[before.index()];
354        let block = at.block.expect("the instruction to insert before is not in a block");
355        self.inst_layout[inst.index()] =
356            InstLayout { block: Some(block), prev: at.prev, next: Some(before) };
357        self.inst_layout[before.index()].prev = Some(inst);
358        match at.prev {
359            Some(prev) => self.inst_layout[prev.index()].next = Some(inst),
360            None => self.blocks[block.index()].first = Some(inst),
361        }
362    }
363
364    /// Takes an instruction out of its block, leaving it and its results in the tables.
365    ///
366    /// The instruction is not deleted, because deleting it would move every instruction after
367    /// it. A removed instruction is unreachable from any block and is dropped when the whole
368    /// function is.
369    ///
370    /// # Panics
371    ///
372    /// Panics if the instruction is not in a block.
373    pub fn remove_inst(&mut self, inst: Inst) {
374        let at = self.inst_layout[inst.index()];
375        let block = at.block.expect("the instruction is not in a block");
376        match at.prev {
377            Some(prev) => self.inst_layout[prev.index()].next = at.next,
378            None => self.blocks[block.index()].first = at.next,
379        }
380        match at.next {
381            Some(next) => self.inst_layout[next.index()].prev = at.prev,
382            None => self.blocks[block.index()].last = at.prev,
383        }
384        self.inst_layout[inst.index()] = InstLayout::default();
385    }
386
387    /// The block an instruction is in, or `None` if it has been removed from one.
388    #[must_use]
389    pub fn block_of(&self, inst: Inst) -> Option<Block> {
390        self.inst_layout[inst.index()].block
391    }
392
393    /// The version of memory an instruction reads, when the function carries memory SSA.
394    ///
395    /// Document 09 of `spec/optimizer`. Memory is a value of type `mem`, it is the last operand
396    /// of every instruction that touches memory, and it is absent in a function that does not
397    /// carry it, which is what `-O0` and `-O1` produce. Absent means unordered with respect to
398    /// everything, so a reader that gets `None` asks the alias analysis directly.
399    ///
400    /// The operand is last rather than first on purpose. Every other operand keeps the position
401    /// it had, so a pass that reads the address of a load as `args[0]` goes on working whether
402    /// or not memory has been threaded, and the only code that has to know about the extra
403    /// operand is this accessor and the verifier.
404    #[must_use]
405    pub fn mem_in(&self, inst: Inst) -> Option<Value> {
406        let args = &self[self[inst].args];
407        args.last().copied().filter(|&arg| self[arg].ty.is_mem())
408    }
409
410    /// The version of memory an instruction produces, when it writes memory and the function
411    /// carries memory SSA.
412    ///
413    /// Last among the results, for the reason [`Func::mem_in`] is last among the operands. A
414    /// `load` never has one, because it reads memory without changing it.
415    ///
416    /// Nothing reads the last version in a function, and that means nothing. A store whose
417    /// memory result has no reader is not dead, and what decides whether it is dead is dead
418    /// store elimination, which is document 17's.
419    #[must_use]
420    pub fn mem_out(&self, inst: Inst) -> Option<Value> {
421        self[inst].results().last().filter(|&result| self[result].ty.is_mem())
422    }
423
424    /// Whether an instruction has been threaded onto the memory chain.
425    #[must_use]
426    pub fn carries_mem(&self, inst: Inst) -> bool {
427        self.mem_in(inst).is_some() || self.mem_out(inst).is_some()
428    }
429
430    /// The same instruction with a version of memory threaded through it.
431    ///
432    /// A result cannot be added to an instruction that already exists, because the results of one
433    /// are values next to each other and there is no room after them. So threading memory makes a
434    /// new instruction and the caller puts it where the old one was, forwards the old results to
435    /// the new ones, which are at the same positions, and deletes the old one. That is what memory
436    /// SSA construction does in one pass over the function.
437    ///
438    /// The new instruction is not in any block. Its results are what the old one produced, in the
439    /// same order, and then the new version of memory where the opcode writes memory.
440    ///
441    /// # Panics
442    ///
443    /// Panics if `incoming` is not memory, if the instruction does not touch memory, or if it is
444    /// already on the chain. All three are a construction bug rather than bad input.
445    pub fn with_mem(&mut self, inst: Inst, incoming: Value) -> Inst {
446        assert!(self[incoming].ty.is_mem(), "the incoming version of memory is not memory");
447        assert!(self[inst].opcode.touches_memory(), "this does not touch memory");
448        assert!(self.mem_in(inst).is_none(), "this is already on the memory chain");
449        let data = self[inst];
450        let mut args = self[data.args].to_vec();
451        args.push(incoming);
452        let mut results: Vec<Type> = data.results().map(|result| self[result].ty).collect();
453        if data.opcode.writes_memory() {
454            results.push(Type::MEM);
455        }
456        let span = self.span(inst);
457        let args = self.push_values(&args);
458        self.create_inst(InstData { args, ..data }, &results, span)
459    }
460
461    /// Where an instruction came from in the source.
462    #[must_use]
463    pub fn span(&self, inst: Inst) -> Span {
464        self.inst_spans[inst.index()]
465    }
466
467    /// Where an instruction branches to, which is empty when it does not branch.
468    ///
469    /// This is the one place that knows a `switch` keeps its targets in a side table and
470    /// `asm goto` in another one, so nothing walking the CFG has to.
471    pub fn successors(&self, inst: Inst) -> impl Iterator<Item = BlockCall> + use<'_> {
472        self.block_calls[self.target_list(inst).as_usize_range()].iter().copied()
473    }
474
475    /// Where a terminator keeps its targets, for something that edits them rather than reads
476    /// them.
477    ///
478    /// [`Func::successors`] is what walking the CFG wants. This is what recording an edge
479    /// wants, because an edge that will grow an argument later has to be named by its place in
480    /// the table rather than by the block it went to.
481    #[must_use]
482    pub fn target_list(&self, inst: Inst) -> BlockCallList {
483        match self[inst].extra {
484            Extra::Targets(targets) => targets,
485            Extra::Switch(info) => self.switches[info.index()].targets,
486            Extra::Asm(info) => self.asms[info.index()].targets,
487            _ => BlockCallList::EMPTY,
488        }
489    }
490
491    // The pools.
492
493    /// Records a run of value operands.
494    pub fn push_values(&mut self, values: &[Value]) -> ValueList {
495        let start = Idx::from_usize(self.value_pool.len());
496        self.value_pool.extend_from_slice(values);
497        ValueList::new(start, Idx::from_usize(self.value_pool.len()))
498    }
499
500    /// Adds one value to the end of a run, giving back the run it became.
501    ///
502    /// The run grows in place when nothing has been put after it, which is the case while a
503    /// list is being built. Otherwise it is copied to the end and the old space is left
504    /// behind, which is what makes adding a parameter to a loop header possible at all. That
505    /// happens once per value carried around a loop, so the copying is not what costs.
506    pub fn append_arg(&mut self, list: ValueList, value: Value) -> ValueList {
507        let range = list.as_usize_range();
508        if range.end == self.value_pool.len() {
509            self.value_pool.push(value);
510            return ValueList::new(Idx::from_usize(range.start), Idx::from_usize(range.end + 1));
511        }
512        let start = self.value_pool.len();
513        self.value_pool.extend_from_within(range);
514        self.value_pool.push(value);
515        ValueList::new(Idx::from_usize(start), Idx::from_usize(self.value_pool.len()))
516    }
517
518    /// Replaces the values in a run, which is what substituting one definition for another is.
519    ///
520    /// A run is a run whether it is an instruction's operands or a branch's arguments, so this
521    /// is the whole of the rewriting a substitution has to do.
522    pub fn rewrite(&mut self, list: ValueList, mut with: impl FnMut(Value) -> Value) {
523        for value in &mut self.value_pool[list.as_usize_range()] {
524            *value = with(*value);
525        }
526    }
527
528    /// Records a run of branch targets.
529    pub fn push_block_calls(&mut self, calls: &[BlockCall]) -> BlockCallList {
530        let start = Idx::from_usize(self.block_calls.len());
531        self.block_calls.extend_from_slice(calls);
532        BlockCallList::new(start, Idx::from_usize(self.block_calls.len()))
533    }
534
535    /// Replaces one branch target, which is what redirecting an edge is.
536    pub fn set_block_call(&mut self, at: Idx<BlockCall>, call: BlockCall) {
537        self.block_calls[at.index()] = call;
538    }
539
540    /// Records a run of case values.
541    pub fn push_imms(&mut self, imms: &[Imm]) -> ImmList {
542        let start = Idx::from_usize(self.imms.len());
543        self.imms.extend_from_slice(imms);
544        ImmList::new(start, Idx::from_usize(self.imms.len()))
545    }
546
547    /// Records a constant.
548    pub fn add_imm(&mut self, imm: Imm) -> Idx<Imm> {
549        self.imms.push(imm);
550        Idx::from_usize(self.imms.len() - 1)
551    }
552
553    /// Records where each eightbyte of an object travelled.
554    pub fn push_slots(&mut self, slots: &[Slot]) -> SlotList {
555        let start = Idx::from_usize(self.slots.len());
556        self.slots.extend_from_slice(slots);
557        SlotList::new(start, Idx::from_usize(self.slots.len()))
558    }
559
560    /// Records an object read off a variable argument list.
561    pub fn add_va_object(&mut self, info: VaInfo) -> Idx<VaInfo> {
562        self.va_objects.push(info);
563        Idx::from_usize(self.va_objects.len() - 1)
564    }
565
566    /// Records what an access does.
567    pub fn add_mem(&mut self, info: MemInfo) -> Idx<MemInfo> {
568        self.mem.push(info);
569        Idx::from_usize(self.mem.len() - 1)
570    }
571
572    /// Records what the ABI asks of the arguments a call's signature does not name.
573    pub fn push_abis(&mut self, abis: &[Abi]) -> AbiList {
574        let start = Idx::from_usize(self.abis.len());
575        self.abis.extend_from_slice(abis);
576        AbiList::new(start, Idx::from_usize(self.abis.len()))
577    }
578
579    /// Records a call's callee and signature.
580    pub fn add_call(&mut self, info: CallInfo) -> Idx<CallInfo> {
581        self.calls.push(info);
582        Idx::from_usize(self.calls.len() - 1)
583    }
584
585    /// Records a `switch`'s targets and case values.
586    pub fn add_switch(&mut self, info: SwitchInfo) -> Idx<SwitchInfo> {
587        self.switches.push(info);
588        Idx::from_usize(self.switches.len() - 1)
589    }
590
591    /// Records an inline assembly instruction's template and constraints.
592    pub fn add_asm(&mut self, info: AsmInfo) -> Idx<AsmInfo> {
593        self.asms.push(info);
594        Idx::from_usize(self.asms.len() - 1)
595    }
596
597    /// How many values, instructions and blocks there are, for a reader that wants to size
598    /// something by them.
599    #[must_use]
600    pub fn counts(&self) -> Counts {
601        Counts { values: self.values.len(), insts: self.insts.len(), blocks: self.blocks.len() }
602    }
603
604    /// What is known about a value, which is nothing at all unless somebody said otherwise.
605    ///
606    /// Section 6.2.3 of `spec/safe-memory/06-instrumentation.md`. Facts are in a side table and
607    /// not in the value, so a function nobody has said anything about carries no facts and is
608    /// the same size it was before facts existed.
609    #[must_use]
610    pub fn facts(&self, value: Value) -> Facts {
611        match self.facts.binary_search_by_key(&value.raw(), |&(at, _)| at.raw()) {
612            Ok(at) => self.facts[at].1,
613            Err(_) => Facts::NONE,
614        }
615    }
616
617    /// Says what is known about a value, replacing whatever was known before.
618    ///
619    /// Setting [`Facts::NONE`] takes the value back out of the table, which is what keeps the
620    /// table empty in a function that has had facts put on and then taken off again.
621    pub fn set_facts(&mut self, value: Value, facts: Facts) {
622        let found = self.facts.binary_search_by_key(&value.raw(), |&(at, _)| at.raw());
623        match (found, facts.is_empty()) {
624            (Ok(at), true) => drop(self.facts.remove(at)),
625            (Ok(at), false) => self.facts[at].1 = facts,
626            (Err(_), true) => {}
627            (Err(at), false) => self.facts.insert(at, (value, facts)),
628        }
629    }
630
631    /// Every value something is known about, in value order.
632    pub fn known(&self) -> impl Iterator<Item = (Value, Facts)> + '_ {
633        self.facts.iter().copied()
634    }
635
636    fn add_value(&mut self, data: ValueData) -> Value {
637        self.values.push(data);
638        Idx::from_usize(self.values.len() - 1)
639    }
640}
641
642/// How many of each thing a function holds.
643#[derive(Clone, Copy, Debug, PartialEq, Eq)]
644pub struct Counts {
645    /// Values, including the ones whose defining instruction has been removed.
646    pub values: usize,
647    /// Instructions, including the ones that have been removed from their block.
648    pub insts: usize,
649    /// Blocks.
650    pub blocks: usize,
651}
652
653// Reading is indexing. There is one of these for each handle, so `func[inst]` and `func[value]`
654// and `&func[args]` all work and none of them needs a method whose name says which table.
655impl Index<Value> for Func {
656    type Output = ValueData;
657
658    fn index(&self, value: Value) -> &ValueData {
659        &self.values[value.index()]
660    }
661}
662
663impl Index<Inst> for Func {
664    type Output = InstData;
665
666    fn index(&self, inst: Inst) -> &InstData {
667        &self.insts[inst.index()]
668    }
669}
670
671impl IndexMut<Inst> for Func {
672    fn index_mut(&mut self, inst: Inst) -> &mut InstData {
673        &mut self.insts[inst.index()]
674    }
675}
676
677impl Index<Block> for Func {
678    type Output = BlockData;
679
680    fn index(&self, block: Block) -> &BlockData {
681        &self.blocks[block.index()]
682    }
683}
684
685impl Index<Sig> for Func {
686    type Output = Signature;
687
688    fn index(&self, sig: Sig) -> &Signature {
689        &self.signatures[sig.index()]
690    }
691}
692
693impl Index<ValueList> for Func {
694    type Output = [Value];
695
696    fn index(&self, list: ValueList) -> &[Value] {
697        &self.value_pool[list.as_usize_range()]
698    }
699}
700
701impl Index<BlockCallList> for Func {
702    type Output = [BlockCall];
703
704    fn index(&self, list: BlockCallList) -> &[BlockCall] {
705        &self.block_calls[list.as_usize_range()]
706    }
707}
708
709impl Index<Idx<BlockCall>> for Func {
710    type Output = BlockCall;
711
712    fn index(&self, at: Idx<BlockCall>) -> &BlockCall {
713        &self.block_calls[at.index()]
714    }
715}
716
717impl Index<ImmList> for Func {
718    type Output = [Imm];
719
720    fn index(&self, list: ImmList) -> &[Imm] {
721        &self.imms[list.as_usize_range()]
722    }
723}
724
725impl Index<Idx<Imm>> for Func {
726    type Output = Imm;
727
728    fn index(&self, at: Idx<Imm>) -> &Imm {
729        &self.imms[at.index()]
730    }
731}
732
733impl Index<Idx<MemInfo>> for Func {
734    type Output = MemInfo;
735
736    fn index(&self, at: Idx<MemInfo>) -> &MemInfo {
737        &self.mem[at.index()]
738    }
739}
740
741impl Index<AbiList> for Func {
742    type Output = [Abi];
743
744    fn index(&self, list: AbiList) -> &[Abi] {
745        &self.abis[list.as_usize_range()]
746    }
747}
748
749impl Index<SlotList> for Func {
750    type Output = [Slot];
751
752    fn index(&self, list: SlotList) -> &[Slot] {
753        &self.slots[list.as_usize_range()]
754    }
755}
756
757impl Index<Idx<VaInfo>> for Func {
758    type Output = VaInfo;
759
760    fn index(&self, at: Idx<VaInfo>) -> &VaInfo {
761        &self.va_objects[at.index()]
762    }
763}
764
765impl Index<Idx<CallInfo>> for Func {
766    type Output = CallInfo;
767
768    fn index(&self, at: Idx<CallInfo>) -> &CallInfo {
769        &self.calls[at.index()]
770    }
771}
772
773impl Index<Idx<SwitchInfo>> for Func {
774    type Output = SwitchInfo;
775
776    fn index(&self, at: Idx<SwitchInfo>) -> &SwitchInfo {
777        &self.switches[at.index()]
778    }
779}
780
781impl Index<Idx<AsmInfo>> for Func {
782    type Output = AsmInfo;
783
784    fn index(&self, at: Idx<AsmInfo>) -> &AsmInfo {
785        &self.asms[at.index()]
786    }
787}
788
789/// A cursor that appends to the end of one block.
790///
791/// This is the shape lowering wants: it works on one block at a time, it appends, and it wants
792/// the value back so it can use it in the next instruction. Everything here is a thin wrapper
793/// over [`Func::create_inst`] and [`Func::append_inst`], and anything the wrappers do not
794/// cover is done with those two directly.
795#[derive(Debug)]
796pub struct Builder<'a> {
797    func: &'a mut Func,
798    block: Block,
799    span: Span,
800}
801
802impl<'a> Builder<'a> {
803    /// A cursor appending to that block, with every instruction taking that source location.
804    pub fn new(func: &'a mut Func, block: Block) -> Self {
805        Self { func, block, span: Span::DUMMY }
806    }
807
808    /// The same cursor, with a source location for the instructions after this.
809    #[must_use]
810    pub fn at(mut self, span: Span) -> Self {
811        self.span = span;
812        self
813    }
814
815    /// Sets the source location for the instructions after this.
816    pub fn set_span(&mut self, span: Span) {
817        self.span = span;
818    }
819
820    /// The function being built.
821    pub fn func(&mut self) -> &mut Func {
822        self.func
823    }
824
825    /// The block being appended to.
826    #[must_use]
827    pub fn block(&self) -> Block {
828        self.block
829    }
830
831    /// Appends an instruction as it is, and gives back its results.
832    pub fn inst(&mut self, data: InstData, results: &[Type]) -> Inst {
833        let inst = self.func.create_inst(data, results, self.span);
834        self.func.append_inst(self.block, inst);
835        inst
836    }
837
838    /// The one value an instruction produces.
839    ///
840    /// # Panics
841    ///
842    /// Panics if it did not produce exactly one.
843    pub fn value(&mut self, data: InstData, ty: Type) -> Value {
844        let inst = self.inst(data, &[ty]);
845        self.func[inst].first_result.expect("one result was asked for")
846    }
847
848    /// An integer constant.
849    ///
850    /// # Panics
851    ///
852    /// Panics if `ty` is not an integer type.
853    pub fn iconst(&mut self, ty: Type, value: i128) -> Value {
854        let imm = self.func.add_imm(Imm::int(value, ty.lane()));
855        self.value(InstData { extra: Extra::Imm(imm), ..InstData::new(Opcode::IConst) }, ty)
856    }
857
858    /// A floating point constant, given as the bits of its format.
859    pub fn fconst(&mut self, ty: Type, bits: u128) -> Value {
860        let imm = self.func.add_imm(Imm::from_bits(bits));
861        self.value(InstData { extra: Extra::Imm(imm), ..InstData::new(Opcode::FConst) }, ty)
862    }
863
864    /// A two-operand instruction whose result has the type of its operands.
865    pub fn binary(&mut self, opcode: Opcode, lhs: Value, rhs: Value, flags: Flags) -> Value {
866        let ty = self.func[lhs].ty;
867        let args = self.func.push_values(&[lhs, rhs]);
868        self.value(InstData { args, flags, ..InstData::new(opcode) }, ty)
869    }
870
871    /// A one-operand instruction whose result has the type given.
872    pub fn unary(&mut self, opcode: Opcode, arg: Value, ty: Type) -> Value {
873        let args = self.func.push_values(&[arg]);
874        self.value(InstData { args, ..InstData::new(opcode) }, ty)
875    }
876
877    /// An integer comparison, which produces one `i1` per lane.
878    pub fn icmp(&mut self, pred: IntPred, lhs: Value, rhs: Value) -> Value {
879        let ty = self.func[lhs].ty.with_lane(Type::I1);
880        let args = self.func.push_values(&[lhs, rhs]);
881        self.value(
882            InstData { args, extra: Extra::IntPred(pred), ..InstData::new(Opcode::ICmp) },
883            ty,
884        )
885    }
886
887    /// A floating point comparison, which produces one `i1` per lane.
888    pub fn fcmp(&mut self, pred: FloatPred, lhs: Value, rhs: Value, flags: Flags) -> Value {
889        let ty = self.func[lhs].ty.with_lane(Type::I1);
890        let args = self.func.push_values(&[lhs, rhs]);
891        self.value(
892            InstData { args, flags, extra: Extra::FloatPred(pred), ..InstData::new(Opcode::FCmp) },
893            ty,
894        )
895    }
896
897    /// Memory as the function found it, which is where a memory SSA chain starts.
898    ///
899    /// It belongs at the top of the entry block and there is one of them in a function.
900    pub fn mem_entry(&mut self) -> Value {
901        self.value(InstData::new(Opcode::MemEntry), Type::MEM)
902    }
903
904    /// A read of that type from that address.
905    pub fn load(&mut self, ty: Type, addr: Value, info: MemInfo, flags: Flags) -> Value {
906        let mem = self.func.add_mem(info);
907        let args = self.func.push_values(&[addr]);
908        self.value(
909            InstData { args, flags, extra: Extra::Mem(mem), ..InstData::new(Opcode::Load) },
910            ty,
911        )
912    }
913
914    /// A write of a value to an address.
915    pub fn store(&mut self, value: Value, addr: Value, info: MemInfo, flags: Flags) -> Inst {
916        let mem = self.func.add_mem(info);
917        let args = self.func.push_values(&[value, addr]);
918        self.inst(
919            InstData { args, flags, extra: Extra::Mem(mem), ..InstData::new(Opcode::Store) },
920            &[],
921        )
922    }
923
924    /// An unconditional branch.
925    pub fn jump(&mut self, target: Block, args: &[Value]) -> Inst {
926        let call = self.block_call(target, args);
927        let targets = self.func.push_block_calls(&[call]);
928        self.inst(InstData { extra: Extra::Targets(targets), ..InstData::new(Opcode::Jump) }, &[])
929    }
930
931    /// The address of a block, which is a value a later `indirect_br` can branch to.
932    ///
933    /// The block is a target here in the same sense a branch's is, so everything that asks an
934    /// instruction which blocks it names finds this one, and a block whose address is taken is
935    /// not mistaken for a block nothing mentions.
936    pub fn block_addr(&mut self, target: Block) -> Value {
937        let call = self.block_call(target, &[]);
938        let targets = self.func.push_block_calls(&[call]);
939        self.value(
940            InstData { extra: Extra::Targets(targets), ..InstData::new(Opcode::BlockAddr) },
941            Type::PTR,
942        )
943    }
944
945    /// A branch to an address, which arrives at one of the blocks listed.
946    ///
947    /// Every block the address can hold has to be there. The list is what the rest of the
948    /// compiler reads, so a block left out of it is a block the branch is saying it never
949    /// reaches, and none of it is checked against the addresses anybody took.
950    pub fn indirect_br(&mut self, addr: Value, targets: &[Block]) -> Inst {
951        let calls: Vec<BlockCall> =
952            targets.iter().map(|&target| self.block_call(target, &[])).collect();
953        let targets = self.func.push_block_calls(&calls);
954        let args = self.func.push_values(&[addr]);
955        self.inst(
956            InstData { args, extra: Extra::Targets(targets), ..InstData::new(Opcode::IndirectBr) },
957            &[],
958        )
959    }
960
961    /// A two-way branch, taking the first target when the condition is one.
962    pub fn br_if(
963        &mut self,
964        cond: Value,
965        then_block: Block,
966        then_args: &[Value],
967        else_block: Block,
968        else_args: &[Value],
969    ) -> Inst {
970        let then_call = self.block_call(then_block, then_args);
971        let else_call = self.block_call(else_block, else_args);
972        let targets = self.func.push_block_calls(&[then_call, else_call]);
973        let args = self.func.push_values(&[cond]);
974        self.inst(
975            InstData { args, extra: Extra::Targets(targets), ..InstData::new(Opcode::BrIf) },
976            &[],
977        )
978    }
979
980    /// A branch on an integer, taking the target its value selects and the default when it
981    /// selects none.
982    ///
983    /// The cases are values and blocks rather than a table with the default in it, because the
984    /// order the side table wants, which is the default first, is not an order anybody building
985    /// a `switch` has their cases in.
986    pub fn switch(&mut self, value: Value, default: Block, cases: &[(i128, Block)]) -> Inst {
987        let ty = self.func[value].ty.lane();
988        let mut calls = vec![self.block_call(default, &[])];
989        let mut values = Vec::with_capacity(cases.len());
990        for &(value, block) in cases {
991            calls.push(self.block_call(block, &[]));
992            values.push(Imm::int(value, ty));
993        }
994        let targets = self.func.push_block_calls(&calls);
995        let cases = self.func.push_imms(&values);
996        let info = self.func.add_switch(SwitchInfo { targets, cases });
997        let args = self.func.push_values(&[value]);
998        self.inst(
999            InstData { args, extra: Extra::Switch(info), ..InstData::new(Opcode::Switch) },
1000            &[],
1001        )
1002    }
1003
1004    /// A return of the values the signature says.
1005    pub fn ret(&mut self, values: &[Value]) -> Inst {
1006        let args = self.func.push_values(values);
1007        self.inst(InstData { args, ..InstData::new(Opcode::Return) }, &[])
1008    }
1009
1010    /// A place control does not reach.
1011    pub fn unreachable(&mut self) -> Inst {
1012        self.inst(InstData::new(Opcode::Unreachable), &[])
1013    }
1014
1015    /// A direct call, with the results its signature says it produces.
1016    pub fn call(&mut self, callee: Symbol, signature: Sig, args: &[Value]) -> Inst {
1017        self.call_varargs(callee, signature, args, &[])
1018    }
1019
1020    /// The same, saying how the arguments the signature does not name travel.
1021    ///
1022    /// Empty says they all travel as the values in hand, which is what [`Builder::call`] passes
1023    /// and is the usual case. Anything else has one entry for each argument past the ones the
1024    /// signature names.
1025    pub fn call_varargs(
1026        &mut self,
1027        callee: Symbol,
1028        signature: Sig,
1029        args: &[Value],
1030        varargs: &[Abi],
1031    ) -> Inst {
1032        let varargs = self.func.push_abis(varargs);
1033        let info = self.func.add_call(CallInfo { callee: Some(callee), signature, varargs });
1034        let returns: Vec<Type> = self.func[signature].return_types().collect();
1035        let args = self.func.push_values(args);
1036        self.inst(
1037            InstData { args, extra: Extra::Call(info), ..InstData::new(Opcode::Call) },
1038            &returns,
1039        )
1040    }
1041
1042    /// Inline assembly, which is a terminator when the info carries targets.
1043    ///
1044    /// The targets are built by the caller, because the frontend is the only thing that knows
1045    /// which block is the one control reaches when the assembly does not jump, and that block
1046    /// has to come first.
1047    pub fn inline_asm(
1048        &mut self,
1049        info: AsmInfo,
1050        args: &[Value],
1051        results: &[Type],
1052        flags: Flags,
1053    ) -> Inst {
1054        let info = self.func.add_asm(info);
1055        let args = self.func.push_values(args);
1056        self.inst(
1057            InstData { args, flags, extra: Extra::Asm(info), ..InstData::new(Opcode::InlineAsm) },
1058            results,
1059        )
1060    }
1061
1062    fn block_call(&mut self, block: Block, args: &[Value]) -> BlockCall {
1063        BlockCall { block, args: self.func.push_values(args) }
1064    }
1065}
1066
1067#[cfg(test)]
1068mod tests {
1069    use rucc_base::Interner;
1070
1071    use super::*;
1072    use crate::inst::BlockCallList;
1073    use crate::{MemOrder, Restrict};
1074
1075    /// The example from the spec, near enough: a loop that sums one to n and stores it.
1076    fn sum() -> (Func, Block, Block, Block) {
1077        let mut names = Interner::new();
1078        let i32_ = Type::int(32);
1079        let mut func = Func::new(
1080            names.intern("sum"),
1081            Signature::new().with_params(&[i32_]).with_returns(&[i32_]),
1082        );
1083
1084        let entry = func.create_block();
1085        let n = func.append_param(entry, i32_);
1086        let header = func.create_block();
1087        let acc = func.append_param(header, i32_);
1088        let i = func.append_param(header, i32_);
1089        let exit = func.create_block();
1090        let result = func.append_param(exit, i32_);
1091
1092        let mut b = Builder::new(&mut func, entry);
1093        let zero = b.iconst(i32_, 0);
1094        let cmp = b.icmp(IntPred::Sle, n, zero);
1095        b.br_if(cmp, exit, &[zero], header, &[zero, zero]);
1096
1097        let mut b = Builder::new(&mut func, header);
1098        let one = b.iconst(i32_, 1);
1099        let next = b.binary(Opcode::Add, i, one, Flags::NSW);
1100        let total = b.binary(Opcode::Add, acc, next, Flags::NSW);
1101        let done = b.icmp(IntPred::Sge, next, n);
1102        b.br_if(done, exit, &[total], header, &[total, next]);
1103
1104        let mut b = Builder::new(&mut func, exit);
1105        b.ret(&[result]);
1106
1107        (func, entry, header, exit)
1108    }
1109
1110    #[test]
1111    fn the_blocks_come_back_in_the_order_they_were_made() {
1112        let (func, entry, header, exit) = sum();
1113        assert_eq!(func.blocks().collect::<Vec<_>>(), [entry, header, exit]);
1114        assert_eq!(func.entry(), Some(entry));
1115    }
1116
1117    #[test]
1118    fn a_removed_block_is_gone_from_the_layout_and_so_is_what_was_in_it() {
1119        let (mut func, entry, header, exit) = sum();
1120        let inside: Vec<Inst> = func.insts(header).collect();
1121        func.remove_block(header);
1122        assert_eq!(func.blocks().collect::<Vec<_>>(), [entry, exit]);
1123        assert_eq!(func.entry(), Some(entry));
1124        assert_eq!(func[entry].next, Some(exit));
1125        assert_eq!(func[exit].prev, Some(entry));
1126        // The instructions say they are in no block, the way a removed one does.
1127        assert!(inside.iter().all(|&inst| func.block_of(inst).is_none()));
1128        assert!(func.insts(header).next().is_none());
1129    }
1130
1131    #[test]
1132    fn each_block_holds_what_was_appended_to_it() {
1133        let (func, entry, header, exit) = sum();
1134        let opcodes =
1135            |block| func.insts(block).map(|inst| func[inst].opcode.name()).collect::<Vec<_>>();
1136        assert_eq!(opcodes(entry), ["iconst", "icmp", "br_if"]);
1137        assert_eq!(opcodes(header), ["iconst", "add", "add", "icmp", "br_if"]);
1138        assert_eq!(opcodes(exit), ["return"]);
1139    }
1140
1141    #[test]
1142    fn asm_ends_a_block_when_it_has_labels_and_not_otherwise() {
1143        // The labels are in the function's table, so the instruction on its own cannot answer
1144        // and anything asking it rather than the function would walk off the end of the block.
1145        let mut func = Func::new(Symbol::from_raw(0), Signature::new());
1146        let block = func.create_block();
1147        let plain = func.add_asm(AsmInfo {
1148            template: Symbol::from_raw(0),
1149            constraints: Symbol::from_raw(0),
1150            clobbers: Symbol::from_raw(0),
1151            targets: BlockCallList::EMPTY,
1152        });
1153        let call = BlockCall { block, args: ValueList::EMPTY };
1154        let targets = func.push_block_calls(&[call]);
1155        let labelled = func.add_asm(AsmInfo {
1156            template: Symbol::from_raw(0),
1157            constraints: Symbol::from_raw(0),
1158            clobbers: Symbol::from_raw(0),
1159            targets,
1160        });
1161
1162        let mut make = |extra| {
1163            let data = InstData { extra, ..InstData::new(Opcode::InlineAsm) };
1164            func.create_inst(data, &[], Span::DUMMY)
1165        };
1166        let plain = make(Extra::Asm(plain));
1167        let labelled = make(Extra::Asm(labelled));
1168        assert!(!func.is_terminator(plain));
1169        assert!(func.is_terminator(labelled));
1170    }
1171
1172    #[test]
1173    fn every_block_ends_in_its_terminator() {
1174        let (func, entry, header, exit) = sum();
1175        for block in [entry, header, exit] {
1176            let last = func.terminator(block).expect("a terminator");
1177            assert_eq!(Some(last), func.insts(block).last());
1178        }
1179    }
1180
1181    #[test]
1182    fn a_branch_carries_the_arguments_the_block_takes() {
1183        let (func, entry, header, _) = sum();
1184        let br = func.terminator(entry).expect("a terminator");
1185        let calls: Vec<BlockCall> = func.successors(br).collect();
1186        assert_eq!(calls.len(), 2);
1187        // The loop header takes two parameters, so the branch to it passes two.
1188        assert_eq!(calls[1].block, header);
1189        assert_eq!(func[calls[1].args].len(), 2);
1190        assert_eq!(func[header].params.len(), 2);
1191        assert_eq!(func[calls[0].args].len(), 1);
1192    }
1193
1194    #[test]
1195    fn a_value_knows_what_defined_it() {
1196        let (func, entry, _, _) = sum();
1197        let first = func.insts(entry).next().expect("an instruction");
1198        let value = func[first].first_result.expect("a result");
1199        assert_eq!(func[value].def, Def::Result { inst: first, index: 0 });
1200        assert_eq!(func[value].ty, Type::int(32));
1201
1202        let param = func[entry].params[0];
1203        assert_eq!(func[param].def, Def::Param { block: entry, index: 0 });
1204    }
1205
1206    #[test]
1207    fn a_comparison_produces_one_bit() {
1208        let (func, entry, _, _) = sum();
1209        let cmp = func.insts(entry).nth(1).expect("the comparison");
1210        let value = func[cmp].first_result.expect("a result");
1211        assert_eq!(func[value].ty, Type::I1);
1212        assert_eq!(func[cmp].extra, Extra::IntPred(IntPred::Sle));
1213    }
1214
1215    #[test]
1216    fn flags_ride_along_on_the_instruction_that_was_given_them() {
1217        let (func, _, header, _) = sum();
1218        let add = func.insts(header).nth(1).expect("the addition");
1219        assert_eq!(func[add].flags, Flags::NSW);
1220        let cmp = func.insts(header).nth(3).expect("the comparison");
1221        assert_eq!(func[cmp].flags, Flags::NONE);
1222    }
1223
1224    #[test]
1225    fn removing_an_instruction_takes_it_out_of_the_middle() {
1226        let (mut func, _, header, _) = sum();
1227        let add = func.insts(header).nth(1).expect("the addition");
1228        func.remove_inst(add);
1229        let opcodes: Vec<&str> = func.insts(header).map(|inst| func[inst].opcode.name()).collect();
1230        assert_eq!(opcodes, ["iconst", "add", "icmp", "br_if"]);
1231        assert_eq!(func.block_of(add), None);
1232    }
1233
1234    #[test]
1235    fn removing_the_first_and_the_last_keeps_the_ends_right() {
1236        let (mut func, entry, _, _) = sum();
1237        let first = func.insts(entry).next().expect("an instruction");
1238        let last = func.terminator(entry).expect("a terminator");
1239        func.remove_inst(first);
1240        func.remove_inst(last);
1241        let opcodes: Vec<&str> = func.insts(entry).map(|inst| func[inst].opcode.name()).collect();
1242        assert_eq!(opcodes, ["icmp"]);
1243        assert_eq!(func[entry].first, func[entry].last);
1244    }
1245
1246    #[test]
1247    fn removing_the_only_instruction_empties_the_block() {
1248        let (mut func, _, _, exit) = sum();
1249        let only = func.insts(exit).next().expect("an instruction");
1250        func.remove_inst(only);
1251        assert_eq!(func.insts(exit).count(), 0);
1252        assert_eq!(func[exit].first, None);
1253        assert_eq!(func[exit].last, None);
1254    }
1255
1256    #[test]
1257    fn inserting_before_puts_it_in_the_right_place() {
1258        let (mut func, entry, _, _) = sum();
1259        let cmp = func.insts(entry).nth(1).expect("the comparison");
1260        let made = func.create_inst(InstData::new(Opcode::Unreachable), &[], Span::DUMMY);
1261        func.insert_before(made, cmp);
1262        let opcodes: Vec<&str> = func.insts(entry).map(|inst| func[inst].opcode.name()).collect();
1263        assert_eq!(opcodes, ["iconst", "unreachable", "icmp", "br_if"]);
1264    }
1265
1266    #[test]
1267    fn inserting_before_the_first_makes_it_the_first() {
1268        let (mut func, entry, _, _) = sum();
1269        let first = func.insts(entry).next().expect("an instruction");
1270        let made = func.create_inst(InstData::new(Opcode::Unreachable), &[], Span::DUMMY);
1271        func.insert_before(made, first);
1272        assert_eq!(func.insts(entry).next(), Some(made));
1273        assert_eq!(func[entry].first, Some(made));
1274    }
1275
1276    #[test]
1277    fn a_list_grows_in_place_while_it_is_the_last_thing_in_the_pool() {
1278        let mut func = Func::new(Symbol::from_raw(0), Signature::new());
1279        let block = func.create_block();
1280        let a = func.append_param(block, Type::int(32));
1281        let b = func.append_param(block, Type::int(32));
1282        let list = func.push_values(&[a]);
1283        let grown = func.append_arg(list, b);
1284        assert_eq!(func[grown], [a, b]);
1285        assert_eq!(grown.as_usize_range().start, list.as_usize_range().start);
1286    }
1287
1288    #[test]
1289    fn a_list_is_copied_when_something_is_behind_it() {
1290        let mut func = Func::new(Symbol::from_raw(0), Signature::new());
1291        let block = func.create_block();
1292        let a = func.append_param(block, Type::int(32));
1293        let b = func.append_param(block, Type::int(32));
1294        let list = func.push_values(&[a, a]);
1295        let behind = func.push_values(&[b]);
1296        let grown = func.append_arg(list, b);
1297        assert_eq!(func[grown], [a, a, b]);
1298        assert_eq!(func[list], [a, a], "the old run is still readable");
1299        assert_eq!(func[behind], [b], "and so is what was behind it");
1300        assert_ne!(grown.as_usize_range().start, list.as_usize_range().start);
1301    }
1302
1303    #[test]
1304    fn a_parameter_added_late_is_the_next_one_along() {
1305        // This is the shape SSA construction leaves: the loop header gains a parameter after
1306        // the blocks that branch to it already exist, and each of their branches grows an
1307        // argument to match.
1308        let (mut func, entry, header, _) = sum();
1309        let extra = func.append_param(header, Type::int(32));
1310        assert_eq!(func[header].params.len(), 3);
1311        assert_eq!(func[extra].def, Def::Param { block: header, index: 2 });
1312
1313        let br = func.terminator(entry).expect("a terminator");
1314        let call = func.successors(br).nth(1).expect("the branch to the header");
1315        let grown = func.append_arg(call.args, extra);
1316        assert_eq!(func[grown].len(), 3);
1317    }
1318
1319    #[test]
1320    fn a_span_rides_along_with_the_instruction() {
1321        let mut func = Func::new(Symbol::from_raw(0), Signature::new());
1322        let block = func.create_block();
1323        let span = Span::new(10, 20);
1324        let mut b = Builder::new(&mut func, block).at(span);
1325        let value = b.iconst(Type::int(32), 7);
1326        let inst = match func[value].def {
1327            Def::Result { inst, .. } => inst,
1328            Def::Param { .. } => unreachable!("a constant is not a parameter"),
1329        };
1330        assert_eq!(func.span(inst), span);
1331    }
1332
1333    #[test]
1334    fn a_store_produces_nothing_and_a_load_produces_one_value() {
1335        let mut func = Func::new(Symbol::from_raw(0), Signature::new());
1336        let block = func.create_block();
1337        let addr = func.append_param(block, Type::PTR);
1338        let info = MemInfo {
1339            size: 4,
1340            align: 4,
1341            order: MemOrder::NotAtomic,
1342            tbaa: None,
1343            restrict: Restrict::NONE,
1344        };
1345        let mut b = Builder::new(&mut func, block);
1346        let value = b.load(Type::int(32), addr, info, Flags::NONE);
1347        let store = b.store(value, addr, info, Flags::VOLATILE);
1348        assert_eq!(func[store].results, 0);
1349        assert_eq!(func[store].flags, Flags::VOLATILE);
1350        assert_eq!(func[value].ty, Type::int(32));
1351    }
1352
1353    #[test]
1354    fn a_call_produces_what_its_signature_returns() {
1355        let mut names = Interner::new();
1356        let mut func = Func::new(names.intern("caller"), Signature::new());
1357        let sig = func.add_signature(
1358            Signature::new().with_params(&[Type::int(32)]).with_returns(&[Type::int(64)]),
1359        );
1360        let block = func.create_block();
1361        let arg = func.append_param(block, Type::int(32));
1362        let callee = names.intern("callee");
1363        let mut b = Builder::new(&mut func, block);
1364        let call = b.call(callee, sig, &[arg]);
1365        assert_eq!(func[call].results, 1);
1366        let value = func[call].first_result.expect("a result");
1367        assert_eq!(func[value].ty, Type::int(64));
1368        assert_eq!(func[call].extra, Extra::Call(Idx::new(0)));
1369    }
1370
1371    #[test]
1372    fn the_counts_are_what_was_made() {
1373        let (func, _, _, _) = sum();
1374        let counts = func.counts();
1375        assert_eq!(counts.blocks, 3);
1376        assert_eq!(counts.insts, 9);
1377        // Four block parameters and five instruction results, which is the two constants, the
1378        // two additions and the two comparisons less the branches, which produce nothing.
1379        assert_eq!(counts.values, 4 + 6);
1380    }
1381
1382    #[test]
1383    #[should_panic(expected = "the instruction is in a block")]
1384    fn appending_an_instruction_twice_is_refused() {
1385        let (mut func, entry, _, _) = sum();
1386        let first = func.insts(entry).next().expect("an instruction");
1387        func.append_inst(entry, first);
1388    }
1389
1390    #[test]
1391    #[should_panic(expected = "the instruction is not in a block")]
1392    fn removing_an_instruction_twice_is_refused() {
1393        let (mut func, entry, _, _) = sum();
1394        let first = func.insts(entry).next().expect("an instruction");
1395        func.remove_inst(first);
1396        func.remove_inst(first);
1397    }
1398
1399    /// A store and a load with memory threaded through them, as memory SSA construction does it.
1400    fn threaded() -> (Func, Inst, Inst) {
1401        let mut names = Interner::new();
1402        let i32_ = Type::int(32);
1403        let mut func = Func::new(
1404            names.intern("thread"),
1405            Signature::new().with_params(&[Type::PTR]).with_returns(&[i32_]),
1406        );
1407        let entry = func.create_block();
1408        let addr = func.append_param(entry, Type::PTR);
1409        let info = MemInfo {
1410            size: 4,
1411            align: 4,
1412            order: MemOrder::NotAtomic,
1413            tbaa: None,
1414            restrict: Restrict::NONE,
1415        };
1416
1417        let mut b = Builder::new(&mut func, entry);
1418        let start = b.mem_entry();
1419        let seven = b.iconst(i32_, 7);
1420        let store = b.store(seven, addr, info, Flags::NONE);
1421        let value = b.load(i32_, addr, info, Flags::NONE);
1422        let Def::Result { inst: load, .. } = func[value].def else {
1423            panic!("the load produced it");
1424        };
1425
1426        let store = func.with_mem(store, start);
1427        let after = func.mem_out(store).expect("a store makes a new version");
1428        let load = func.with_mem(load, after);
1429        (func, store, load)
1430    }
1431
1432    #[test]
1433    fn threading_memory_puts_it_last_and_leaves_everything_else_where_it_was() {
1434        let (func, store, load) = threaded();
1435        assert_eq!(func.mem_in(store), func.mem_out(store).map(|_| func[func[store].args][2]));
1436        assert_eq!(func[func[store].args].len(), 3);
1437        assert!(func.carries_mem(store));
1438        assert!(func.carries_mem(load));
1439
1440        // The address of the load is still its first operand, which is the point of putting
1441        // memory last: nothing that read the operands before has to learn about it.
1442        assert_eq!(func[func[load].args][0], func[func.entry().expect("an entry")].params[0]);
1443        assert_eq!(func.mem_in(load), func.mem_out(store));
1444        assert_eq!(func.mem_out(load), None);
1445    }
1446
1447    #[test]
1448    #[should_panic(expected = "this is already on the memory chain")]
1449    fn threading_memory_through_the_same_instruction_twice_is_refused() {
1450        let (mut func, store, _) = threaded();
1451        let start = func.mem_in(store).expect("it was threaded");
1452        func.with_mem(store, start);
1453    }
1454}