1 //! This implements the VCode container: a CFG of Insts that have been lowered. 2 //! 3 //! VCode is virtual-register code. An instruction in VCode is almost a machine 4 //! instruction; however, its register slots can refer to virtual registers in 5 //! addition to real machine registers. 6 //! 7 //! VCode is structured with traditional basic blocks, and 8 //! each block must be terminated by an unconditional branch (one target), a 9 //! conditional branch (two targets), or a return (no targets). Note that this 10 //! slightly differs from the machine code of most ISAs: in most ISAs, a 11 //! conditional branch has one target (and the not-taken case falls through). 12 //! However, we expect that machine backends will elide branches to the following 13 //! block (i.e., zero-offset jumps), and will be able to codegen a branch-cond / 14 //! branch-uncond pair if *both* targets are not fallthrough. This allows us to 15 //! play with layout prior to final binary emission, as well, if we want. 16 //! 17 //! See the main module comment in `mod.rs` for more details on the VCode-based 18 //! backend pipeline. 19 20 use crate::CodegenError; 21 use crate::ir::pcc::*; 22 use crate::ir::{self, Constant, ConstantData, ValueLabel, types}; 23 use crate::ranges::Ranges; 24 use crate::timing; 25 use crate::trace; 26 use crate::{LabelValueLoc, ValueLocRange}; 27 use crate::{machinst::*, trace_log_enabled}; 28 use regalloc2::{ 29 Edit, Function as RegallocFunction, InstOrEdit, InstPosition, InstRange, Operand, 30 OperandConstraint, OperandKind, PRegSet, ProgPoint, RegClass, 31 }; 32 use rustc_hash::FxHashMap; 33 34 use core::cmp::Ordering; 35 use core::fmt::{self, Write}; 36 use core::mem::take; 37 use cranelift_entity::{Keys, entity_impl}; 38 use std::collections::HashMap; 39 use std::collections::hash_map::Entry; 40 41 /// Index referring to an instruction in VCode. 42 pub type InsnIndex = regalloc2::Inst; 43 44 /// Extension trait for `InsnIndex` to allow conversion to a 45 /// `BackwardsInsnIndex`. 46 trait ToBackwardsInsnIndex { 47 fn to_backwards_insn_index(&self, num_insts: usize) -> BackwardsInsnIndex; 48 } 49 50 impl ToBackwardsInsnIndex for InsnIndex { 51 fn to_backwards_insn_index(&self, num_insts: usize) -> BackwardsInsnIndex { 52 BackwardsInsnIndex::new(num_insts - self.index() - 1) 53 } 54 } 55 56 /// An index referring to an instruction in the VCode when it is backwards, 57 /// during VCode construction. 58 #[derive(Clone, Copy, Debug, PartialEq, Eq, PartialOrd, Ord, Hash)] 59 #[cfg_attr( 60 feature = "enable-serde", 61 derive(::serde::Serialize, ::serde::Deserialize) 62 )] 63 pub struct BackwardsInsnIndex(InsnIndex); 64 65 impl BackwardsInsnIndex { 66 pub fn new(i: usize) -> Self { 67 BackwardsInsnIndex(InsnIndex::new(i)) 68 } 69 } 70 71 /// Index referring to a basic block in VCode. 72 pub type BlockIndex = regalloc2::Block; 73 74 /// VCodeInst wraps all requirements for a MachInst to be in VCode: it must be 75 /// a `MachInst` and it must be able to emit itself at least to a `SizeCodeSink`. 76 pub trait VCodeInst: MachInst + MachInstEmit {} 77 impl<I: MachInst + MachInstEmit> VCodeInst for I {} 78 79 /// A function in "VCode" (virtualized-register code) form, after 80 /// lowering. This is essentially a standard CFG of basic blocks, 81 /// where each basic block consists of lowered instructions produced 82 /// by the machine-specific backend. 83 /// 84 /// Note that the VCode is immutable once produced, and is not 85 /// modified by register allocation in particular. Rather, register 86 /// allocation on the `VCode` produces a separate `regalloc2::Output` 87 /// struct, and this can be passed to `emit`. `emit` in turn does not 88 /// modify the vcode, but produces an `EmitResult`, which contains the 89 /// machine code itself, and the associated disassembly and/or 90 /// metadata as requested. 91 pub struct VCode<I: VCodeInst> { 92 /// VReg IR-level types. 93 vreg_types: Vec<Type>, 94 95 /// Lowered machine instructions in order corresponding to the original IR. 96 insts: Vec<I>, 97 98 /// A map from backwards instruction index to the user stack map for that 99 /// instruction. 100 /// 101 /// This is a sparse side table that only has entries for instructions that 102 /// are safepoints, and only for a subset of those that have an associated 103 /// user stack map. 104 user_stack_maps: FxHashMap<BackwardsInsnIndex, ir::UserStackMap>, 105 106 /// Operands: pre-regalloc references to virtual registers with 107 /// constraints, in one flattened array. This allows the regalloc 108 /// to efficiently access all operands without requiring expensive 109 /// matches or method invocations on insts. 110 operands: Vec<Operand>, 111 112 /// Operand index ranges: for each instruction in `insts`, there 113 /// is a tuple here providing the range in `operands` for that 114 /// instruction's operands. 115 operand_ranges: Ranges, 116 117 /// Clobbers: a sparse map from instruction indices to clobber masks. 118 clobbers: FxHashMap<InsnIndex, PRegSet>, 119 120 /// Source locations for each instruction. (`SourceLoc` is a `u32`, so it is 121 /// reasonable to keep one of these per instruction.) 122 srclocs: Vec<RelSourceLoc>, 123 124 /// Entry block. 125 entry: BlockIndex, 126 127 /// Block instruction indices. 128 block_ranges: Ranges, 129 130 /// Block successors: index range in the `block_succs` list. 131 block_succ_range: Ranges, 132 133 /// Block successor lists, concatenated into one vec. The 134 /// `block_succ_range` list of tuples above gives (start, end) 135 /// ranges within this list that correspond to each basic block's 136 /// successors. 137 block_succs: Vec<regalloc2::Block>, 138 139 /// Block predecessors: index range in the `block_preds` list. 140 block_pred_range: Ranges, 141 142 /// Block predecessor lists, concatenated into one vec. The 143 /// `block_pred_range` list of tuples above gives (start, end) 144 /// ranges within this list that correspond to each basic block's 145 /// predecessors. 146 block_preds: Vec<regalloc2::Block>, 147 148 /// Block parameters: index range in `block_params` below. 149 block_params_range: Ranges, 150 151 /// Block parameter lists, concatenated into one vec. The 152 /// `block_params_range` list of tuples above gives (start, end) 153 /// ranges within this list that correspond to each basic block's 154 /// blockparam vregs. 155 block_params: Vec<regalloc2::VReg>, 156 157 /// Outgoing block arguments on branch instructions, concatenated 158 /// into one list. 159 /// 160 /// Note that this is conceptually a 3D array: we have a VReg list 161 /// per block, per successor. We flatten those three dimensions 162 /// into this 1D vec, then store index ranges in two levels of 163 /// indirection. 164 /// 165 /// Indexed by the indices in `branch_block_arg_succ_range`. 166 branch_block_args: Vec<regalloc2::VReg>, 167 168 /// Array of sequences of (start, end) tuples in 169 /// `branch_block_args`, one for each successor; these sequences 170 /// for each block are concatenated. 171 /// 172 /// Indexed by the indices in `branch_block_arg_succ_range`. 173 branch_block_arg_range: Ranges, 174 175 /// For a given block, indices in `branch_block_arg_range` 176 /// corresponding to all of its successors. 177 branch_block_arg_succ_range: Ranges, 178 179 /// Block-order information. 180 block_order: BlockLoweringOrder, 181 182 /// ABI object. 183 pub(crate) abi: Callee<I::ABIMachineSpec>, 184 185 /// Constant information used during code emission. This should be 186 /// immutable across function compilations within the same module. 187 emit_info: I::Info, 188 189 /// Constants. 190 pub(crate) constants: VCodeConstants, 191 192 /// Value labels for debuginfo attached to vregs. 193 debug_value_labels: Vec<(VReg, InsnIndex, InsnIndex, u32)>, 194 195 pub(crate) sigs: SigSet, 196 197 /// Facts on VRegs, for proof-carrying code verification. 198 facts: Vec<Option<Fact>>, 199 200 log2_min_function_alignment: u8, 201 } 202 203 /// The result of `VCode::emit`. Contains all information computed 204 /// during emission: actual machine code, optionally a disassembly, 205 /// and optionally metadata about the code layout. 206 pub struct EmitResult { 207 /// The MachBuffer containing the machine code. 208 pub buffer: MachBufferFinalized<Stencil>, 209 210 /// Offset of each basic block, recorded during emission. Computed 211 /// only if `debug_value_labels` is non-empty. 212 pub bb_offsets: Vec<CodeOffset>, 213 214 /// Final basic-block edges, in terms of code offsets of 215 /// bb-starts. Computed only if `debug_value_labels` is non-empty. 216 pub bb_edges: Vec<(CodeOffset, CodeOffset)>, 217 218 /// Final length of function body. 219 pub func_body_len: CodeOffset, 220 221 /// The pretty-printed disassembly, if any. This uses the same 222 /// pretty-printing for MachInsts as the pre-regalloc VCode Debug 223 /// implementation, but additionally includes the prologue and 224 /// epilogue(s), and makes use of the regalloc results. 225 pub disasm: Option<String>, 226 227 /// Offsets of sized stackslots. 228 pub sized_stackslot_offsets: PrimaryMap<StackSlot, u32>, 229 230 /// Offsets of dynamic stackslots. 231 pub dynamic_stackslot_offsets: PrimaryMap<DynamicStackSlot, u32>, 232 233 /// Value-labels information (debug metadata). 234 pub value_labels_ranges: ValueLabelsRanges, 235 236 /// Stack frame size. 237 pub frame_size: u32, 238 } 239 240 /// A builder for a VCode function body. 241 /// 242 /// This builder has the ability to accept instructions in either 243 /// forward or reverse order, depending on the pass direction that 244 /// produces the VCode. The lowering from CLIF to VCode<MachInst> 245 /// ordinarily occurs in reverse order (in order to allow instructions 246 /// to be lowered only if used, and not merged) so a reversal will 247 /// occur at the end of lowering to ensure the VCode is in machine 248 /// order. 249 /// 250 /// If built in reverse, block and instruction indices used once the 251 /// VCode is built are relative to the final (reversed) order, not the 252 /// order of construction. Note that this means we do not know the 253 /// final block or instruction indices when building, so we do not 254 /// hand them out. (The user is assumed to know them when appending 255 /// terminator instructions with successor blocks.) 256 pub struct VCodeBuilder<I: VCodeInst> { 257 /// In-progress VCode. 258 pub(crate) vcode: VCode<I>, 259 260 /// In what direction is the build occurring? 261 direction: VCodeBuildDirection, 262 263 /// Debug-value label in-progress map, keyed by label. For each 264 /// label, we keep disjoint ranges mapping to vregs. We'll flatten 265 /// this into (vreg, range, label) tuples when done. 266 debug_info: FxHashMap<ValueLabel, Vec<(InsnIndex, InsnIndex, VReg)>>, 267 } 268 269 /// Direction in which a VCodeBuilder builds VCode. 270 #[derive(Clone, Copy, Debug, PartialEq, Eq)] 271 pub enum VCodeBuildDirection { 272 // TODO: add `Forward` once we need it and can test it adequately. 273 /// Backward-build pass: we expect the producer to call `emit()` 274 /// with instructions in reverse program order within each block. 275 Backward, 276 } 277 278 impl<I: VCodeInst> VCodeBuilder<I> { 279 /// Create a new VCodeBuilder. 280 pub fn new( 281 sigs: SigSet, 282 abi: Callee<I::ABIMachineSpec>, 283 emit_info: I::Info, 284 block_order: BlockLoweringOrder, 285 constants: VCodeConstants, 286 direction: VCodeBuildDirection, 287 log2_min_function_alignment: u8, 288 ) -> Self { 289 let vcode = VCode::new( 290 sigs, 291 abi, 292 emit_info, 293 block_order, 294 constants, 295 log2_min_function_alignment, 296 ); 297 298 VCodeBuilder { 299 vcode, 300 direction, 301 debug_info: FxHashMap::default(), 302 } 303 } 304 305 pub fn init_retval_area(&mut self, vregs: &mut VRegAllocator<I>) -> CodegenResult<()> { 306 self.vcode.abi.init_retval_area(&self.vcode.sigs, vregs) 307 } 308 309 /// Access the ABI object. 310 pub fn abi(&self) -> &Callee<I::ABIMachineSpec> { 311 &self.vcode.abi 312 } 313 314 /// Access the ABI object. 315 pub fn abi_mut(&mut self) -> &mut Callee<I::ABIMachineSpec> { 316 &mut self.vcode.abi 317 } 318 319 pub fn sigs(&self) -> &SigSet { 320 &self.vcode.sigs 321 } 322 323 pub fn sigs_mut(&mut self) -> &mut SigSet { 324 &mut self.vcode.sigs 325 } 326 327 /// Access to the BlockLoweringOrder object. 328 pub fn block_order(&self) -> &BlockLoweringOrder { 329 &self.vcode.block_order 330 } 331 332 /// Set the current block as the entry block. 333 pub fn set_entry(&mut self, block: BlockIndex) { 334 self.vcode.entry = block; 335 } 336 337 /// End the current basic block. Must be called after emitting vcode insts 338 /// for IR insts and prior to ending the function (building the VCode). 339 pub fn end_bb(&mut self) { 340 let end_idx = self.vcode.insts.len(); 341 // Add the instruction index range to the list of blocks. 342 self.vcode.block_ranges.push_end(end_idx); 343 // End the successors list. 344 let succ_end = self.vcode.block_succs.len(); 345 self.vcode.block_succ_range.push_end(succ_end); 346 // End the blockparams list. 347 let block_params_end = self.vcode.block_params.len(); 348 self.vcode.block_params_range.push_end(block_params_end); 349 // End the branch blockparam args list. 350 let branch_block_arg_succ_end = self.vcode.branch_block_arg_range.len(); 351 self.vcode 352 .branch_block_arg_succ_range 353 .push_end(branch_block_arg_succ_end); 354 } 355 356 pub fn add_block_param(&mut self, param: VirtualReg) { 357 self.vcode.block_params.push(param.into()); 358 } 359 360 fn add_branch_args_for_succ(&mut self, args: &[Reg]) { 361 self.vcode 362 .branch_block_args 363 .extend(args.iter().map(|&arg| VReg::from(arg))); 364 let end = self.vcode.branch_block_args.len(); 365 self.vcode.branch_block_arg_range.push_end(end); 366 } 367 368 /// Push an instruction for the current BB and current IR inst 369 /// within the BB. 370 pub fn push(&mut self, insn: I, loc: RelSourceLoc) { 371 assert!(!insn.is_low_level_branch()); // These are not meant to be in VCode. 372 self.vcode.insts.push(insn); 373 self.vcode.srclocs.push(loc); 374 } 375 376 /// Add a successor block with branch args. 377 pub fn add_succ(&mut self, block: BlockIndex, args: &[Reg]) { 378 self.vcode.block_succs.push(block); 379 self.add_branch_args_for_succ(args); 380 } 381 382 /// Add a debug value label to a register. 383 pub fn add_value_label(&mut self, reg: Reg, label: ValueLabel) { 384 // 1) In the reversed order, we consider the instructions 385 // that define ranges in the "debug_info" array to refer 386 // to the IP **after** them (when reversed): 387 // IP[2]__| Inst 3 | 388 // IP[1]__| Inst 2 | 389 // IP[0]__| Inst 1 | 390 // | Inst 0 | 391 // This is so that we can represent IP[<function start>], 392 // done at the cost of not being to represent IP[<function end>], 393 // which is OK since no values will be live at that point. 394 // 2) The live range for "reg" begins at the current IP 395 // and continues until the next, in execution order, 396 // VReg that defines "label". Since the ranges are open 397 // at the end, the subtraction of 1 cancels out: 398 // [last..current IP] <=> 399 // [last..last emitted inst index] <=> 400 // [last..next_inst_index - 1] <=> 401 // [last..next_inst_index) 402 // 403 let next_inst_index = self.vcode.insts.len(); 404 if next_inst_index == 0 { 405 // This would produce a defective [0..0) range. 406 return; 407 } 408 let next_inst = InsnIndex::new(next_inst_index); 409 let labels = self.debug_info.entry(label).or_insert_with(|| vec![]); 410 let last = labels 411 .last() 412 .map(|(_start, end, _vreg)| *end) 413 .unwrap_or(InsnIndex::new(0)); 414 labels.push((last, next_inst, reg.into())); 415 } 416 417 /// Access the constants. 418 pub fn constants(&mut self) -> &mut VCodeConstants { 419 &mut self.vcode.constants 420 } 421 422 fn compute_preds_from_succs(&mut self) { 423 // Do a linear-time counting sort: first determine how many 424 // times each block appears as a successor. 425 let mut starts = vec![0u32; self.vcode.num_blocks()]; 426 for succ in &self.vcode.block_succs { 427 starts[succ.index()] += 1; 428 } 429 430 // Determine for each block the starting index where that 431 // block's predecessors should go. This is equivalent to the 432 // ranges we need to store in block_pred_range. 433 self.vcode.block_pred_range.reserve(starts.len()); 434 let mut end = 0; 435 for count in starts.iter_mut() { 436 let start = end; 437 end += *count; 438 *count = start; 439 self.vcode.block_pred_range.push_end(end as usize); 440 } 441 let end = end as usize; 442 debug_assert_eq!(end, self.vcode.block_succs.len()); 443 444 // Walk over the successors again, this time grouped by 445 // predecessor, and push the predecessor at the current 446 // starting position of each of its successors. We build 447 // each group of predecessors in whatever order Ranges::iter 448 // returns them; regalloc2 doesn't care. 449 self.vcode.block_preds.resize(end, BlockIndex::invalid()); 450 for (pred, range) in self.vcode.block_succ_range.iter() { 451 let pred = BlockIndex::new(pred); 452 for succ in &self.vcode.block_succs[range] { 453 let pos = &mut starts[succ.index()]; 454 self.vcode.block_preds[*pos as usize] = pred; 455 *pos += 1; 456 } 457 } 458 debug_assert!(self.vcode.block_preds.iter().all(|pred| pred.is_valid())); 459 } 460 461 /// Called once, when a build in Backward order is complete, to 462 /// perform the overall reversal (into final forward order) and 463 /// finalize metadata accordingly. 464 fn reverse_and_finalize(&mut self, vregs: &VRegAllocator<I>) { 465 let n_insts = self.vcode.insts.len(); 466 if n_insts == 0 { 467 return; 468 } 469 470 // Reverse the per-block and per-inst sequences. 471 self.vcode.block_ranges.reverse_index(); 472 self.vcode.block_ranges.reverse_target(n_insts); 473 // block_params_range is indexed by block (and blocks were 474 // traversed in reverse) so we reverse it; but block-param 475 // sequences in the concatenated vec can remain in reverse 476 // order (it is effectively an arena of arbitrarily-placed 477 // referenced sequences). 478 self.vcode.block_params_range.reverse_index(); 479 // Likewise, we reverse block_succ_range, but the block_succ 480 // concatenated array can remain as-is. 481 self.vcode.block_succ_range.reverse_index(); 482 self.vcode.insts.reverse(); 483 self.vcode.srclocs.reverse(); 484 // Likewise, branch_block_arg_succ_range is indexed by block 485 // so must be reversed. 486 self.vcode.branch_block_arg_succ_range.reverse_index(); 487 488 // To translate an instruction index *endpoint* in reversed 489 // order to forward order, compute `n_insts - i`. 490 // 491 // Why not `n_insts - 1 - i`? That would be correct to 492 // translate an individual instruction index (for ten insts 0 493 // to 9 inclusive, inst 0 becomes 9, and inst 9 becomes 494 // 0). But for the usual inclusive-start, exclusive-end range 495 // idiom, inclusive starts become exclusive ends and 496 // vice-versa, so e.g. an (inclusive) start of 0 becomes an 497 // (exclusive) end of 10. 498 let translate = |inst: InsnIndex| InsnIndex::new(n_insts - inst.index()); 499 500 // Generate debug-value labels based on per-label maps. 501 for (label, tuples) in &self.debug_info { 502 for &(start, end, vreg) in tuples { 503 let vreg = vregs.resolve_vreg_alias(vreg); 504 let fwd_start = translate(end); 505 let fwd_end = translate(start); 506 self.vcode 507 .debug_value_labels 508 .push((vreg, fwd_start, fwd_end, label.as_u32())); 509 } 510 } 511 512 // Now sort debug value labels by VReg, as required 513 // by regalloc2. 514 self.vcode 515 .debug_value_labels 516 .sort_unstable_by_key(|(vreg, _, _, _)| *vreg); 517 } 518 519 fn collect_operands(&mut self, vregs: &VRegAllocator<I>) { 520 let allocatable = PRegSet::from(self.vcode.abi.machine_env()); 521 for (i, insn) in self.vcode.insts.iter_mut().enumerate() { 522 // Push operands from the instruction onto the operand list. 523 // 524 // We rename through the vreg alias table as we collect 525 // the operands. This is better than a separate post-pass 526 // over operands, because it has more cache locality: 527 // operands only need to pass through L1 once. This is 528 // also better than renaming instructions' 529 // operands/registers while lowering, because here we only 530 // need to do the `match` over the instruction to visit 531 // its register fields (which is slow, branchy code) once. 532 533 let mut op_collector = 534 OperandCollector::new(&mut self.vcode.operands, allocatable, |vreg| { 535 vregs.resolve_vreg_alias(vreg) 536 }); 537 insn.get_operands(&mut op_collector); 538 let (ops, clobbers) = op_collector.finish(); 539 self.vcode.operand_ranges.push_end(ops); 540 541 if clobbers != PRegSet::default() { 542 self.vcode.clobbers.insert(InsnIndex::new(i), clobbers); 543 } 544 545 if let Some((dst, src)) = insn.is_move() { 546 // We should never see non-virtual registers present in move 547 // instructions. 548 assert!( 549 src.is_virtual(), 550 "the real register {src:?} was used as the source of a move instruction" 551 ); 552 assert!( 553 dst.to_reg().is_virtual(), 554 "the real register {:?} was used as the destination of a move instruction", 555 dst.to_reg() 556 ); 557 } 558 } 559 560 // Translate blockparam args via the vreg aliases table as well. 561 for arg in &mut self.vcode.branch_block_args { 562 let new_arg = vregs.resolve_vreg_alias(*arg); 563 trace!("operandcollector: block arg {:?} -> {:?}", arg, new_arg); 564 *arg = new_arg; 565 } 566 } 567 568 /// Build the final VCode. 569 pub fn build(mut self, mut vregs: VRegAllocator<I>) -> VCode<I> { 570 self.vcode.vreg_types = take(&mut vregs.vreg_types); 571 self.vcode.facts = take(&mut vregs.facts); 572 573 if self.direction == VCodeBuildDirection::Backward { 574 self.reverse_and_finalize(&vregs); 575 } 576 self.collect_operands(&vregs); 577 578 self.compute_preds_from_succs(); 579 self.vcode.debug_value_labels.sort_unstable(); 580 581 // At this point, nothing in the vcode should mention any 582 // VReg which has been aliased. All the appropriate rewriting 583 // should have happened above. Just to be sure, let's 584 // double-check each field which has vregs. 585 // Note: can't easily check vcode.insts, resolved in collect_operands. 586 // Operands are resolved in collect_operands. 587 vregs.debug_assert_no_vreg_aliases(self.vcode.operands.iter().map(|op| op.vreg())); 588 // Currently block params are never aliased to another vreg. 589 vregs.debug_assert_no_vreg_aliases(self.vcode.block_params.iter().copied()); 590 // Branch block args are resolved in collect_operands. 591 vregs.debug_assert_no_vreg_aliases(self.vcode.branch_block_args.iter().copied()); 592 // Debug value labels are resolved in reverse_and_finalize. 593 vregs.debug_assert_no_vreg_aliases( 594 self.vcode.debug_value_labels.iter().map(|&(vreg, ..)| vreg), 595 ); 596 // Facts are resolved eagerly during set_vreg_alias. 597 vregs.debug_assert_no_vreg_aliases( 598 self.vcode 599 .facts 600 .iter() 601 .zip(&vregs.vreg_types) 602 .enumerate() 603 .filter(|(_, (fact, _))| fact.is_some()) 604 .map(|(vreg, (_, &ty))| { 605 let (regclasses, _) = I::rc_for_type(ty).unwrap(); 606 VReg::new(vreg, regclasses[0]) 607 }), 608 ); 609 610 self.vcode 611 } 612 613 /// Add a user stack map for the associated instruction. 614 pub fn add_user_stack_map( 615 &mut self, 616 inst: BackwardsInsnIndex, 617 entries: &[ir::UserStackMapEntry], 618 ) { 619 let stack_map = ir::UserStackMap::new(entries, self.vcode.abi.sized_stackslot_offsets()); 620 let old_entry = self.vcode.user_stack_maps.insert(inst, stack_map); 621 debug_assert!(old_entry.is_none()); 622 } 623 } 624 625 const NO_INST_OFFSET: CodeOffset = u32::MAX; 626 627 impl<I: VCodeInst> VCode<I> { 628 /// New empty VCode. 629 fn new( 630 sigs: SigSet, 631 abi: Callee<I::ABIMachineSpec>, 632 emit_info: I::Info, 633 block_order: BlockLoweringOrder, 634 constants: VCodeConstants, 635 log2_min_function_alignment: u8, 636 ) -> Self { 637 let n_blocks = block_order.lowered_order().len(); 638 VCode { 639 sigs, 640 vreg_types: vec![], 641 insts: Vec::with_capacity(10 * n_blocks), 642 user_stack_maps: FxHashMap::default(), 643 operands: Vec::with_capacity(30 * n_blocks), 644 operand_ranges: Ranges::with_capacity(10 * n_blocks), 645 clobbers: FxHashMap::default(), 646 srclocs: Vec::with_capacity(10 * n_blocks), 647 entry: BlockIndex::new(0), 648 block_ranges: Ranges::with_capacity(n_blocks), 649 block_succ_range: Ranges::with_capacity(n_blocks), 650 block_succs: Vec::with_capacity(n_blocks), 651 block_pred_range: Ranges::default(), 652 block_preds: Vec::new(), 653 block_params_range: Ranges::with_capacity(n_blocks), 654 block_params: Vec::with_capacity(5 * n_blocks), 655 branch_block_args: Vec::with_capacity(10 * n_blocks), 656 branch_block_arg_range: Ranges::with_capacity(2 * n_blocks), 657 branch_block_arg_succ_range: Ranges::with_capacity(n_blocks), 658 block_order, 659 abi, 660 emit_info, 661 constants, 662 debug_value_labels: vec![], 663 facts: vec![], 664 log2_min_function_alignment, 665 } 666 } 667 668 /// Get the number of blocks. Block indices will be in the range `0 .. 669 /// (self.num_blocks() - 1)`. 670 pub fn num_blocks(&self) -> usize { 671 self.block_ranges.len() 672 } 673 674 /// The number of lowered instructions. 675 pub fn num_insts(&self) -> usize { 676 self.insts.len() 677 } 678 679 fn compute_clobbers(&self, regalloc: ®alloc2::Output) -> Vec<Writable<RealReg>> { 680 let mut clobbered = PRegSet::default(); 681 682 // All moves are included in clobbers. 683 for (_, Edit::Move { to, .. }) in ®alloc.edits { 684 if let Some(preg) = to.as_reg() { 685 clobbered.add(preg); 686 } 687 } 688 689 for (i, range) in self.operand_ranges.iter() { 690 let operands = &self.operands[range.clone()]; 691 let allocs = ®alloc.allocs[range]; 692 for (operand, alloc) in operands.iter().zip(allocs.iter()) { 693 if operand.kind() == OperandKind::Def { 694 if let Some(preg) = alloc.as_reg() { 695 clobbered.add(preg); 696 } 697 } 698 } 699 700 // Also add explicitly-clobbered registers. 701 // 702 // Skip merging this instruction's clobber list if not 703 // "included in clobbers" as per the MachInst. (Some 704 // backends use this to implement ABI specifics; e.g., 705 // excluding calls of the same ABI as the current function 706 // from clobbers, because by definition everything 707 // clobbered by the call can be clobbered by this function 708 // without saving as well. 709 // 710 // This is important for a particular optimization: when 711 // some registers are "half-clobbered", e.g. vector/float 712 // registers on aarch64, we want them to be seen as 713 // clobbered by regalloc so it avoids carrying values 714 // across calls in these registers but not seen as 715 // clobbered by prologue generation here (because the 716 // actual half-clobber implied by the clobber list fits 717 // within the clobbers that we allow without 718 // clobber-saves). 719 if self.insts[i].is_included_in_clobbers() { 720 if let Some(&inst_clobbered) = self.clobbers.get(&InsnIndex::new(i)) { 721 clobbered.union_from(inst_clobbered); 722 } 723 } 724 } 725 726 clobbered 727 .into_iter() 728 .map(|preg| Writable::from_reg(RealReg::from(preg))) 729 .collect() 730 } 731 732 /// Emit the instructions to a `MachBuffer`, containing fixed-up 733 /// code and external reloc/trap/etc. records ready for use. Takes 734 /// the regalloc results as well. 735 /// 736 /// Returns the machine code itself, and optionally metadata 737 /// and/or a disassembly, as an `EmitResult`. The `VCode` itself 738 /// is consumed by the emission process. 739 pub fn emit( 740 mut self, 741 regalloc: ®alloc2::Output, 742 want_disasm: bool, 743 flags: &settings::Flags, 744 ctrl_plane: &mut ControlPlane, 745 ) -> EmitResult 746 where 747 I: VCodeInst, 748 { 749 let _tt = timing::vcode_emit(); 750 let mut buffer = MachBuffer::new(); 751 buffer.set_log2_min_function_alignment(self.log2_min_function_alignment); 752 let mut bb_starts: Vec<Option<CodeOffset>> = vec![]; 753 754 // The first M MachLabels are reserved for block indices. 755 buffer.reserve_labels_for_blocks(self.num_blocks()); 756 757 // Register all allocated constants with the `MachBuffer` to ensure that 758 // any references to the constants during instructions can be handled 759 // correctly. 760 buffer.register_constants(&self.constants); 761 762 // Construct the final order we emit code in: cold blocks at the end. 763 let mut final_order: SmallVec<[BlockIndex; 16]> = smallvec![]; 764 let mut cold_blocks: SmallVec<[BlockIndex; 16]> = smallvec![]; 765 for block in 0..self.num_blocks() { 766 let block = BlockIndex::new(block); 767 if self.block_order.is_cold(block) { 768 cold_blocks.push(block); 769 } else { 770 final_order.push(block); 771 } 772 } 773 final_order.extend(cold_blocks.clone()); 774 775 // Compute/save info we need for the prologue: clobbers and 776 // number of spillslots. 777 // 778 // We clone `abi` here because we will mutate it as we 779 // generate the prologue and set other info, but we can't 780 // mutate `VCode`. The info it usually carries prior to 781 // setting clobbers is fairly minimal so this should be 782 // relatively cheap. 783 let clobbers = self.compute_clobbers(regalloc); 784 self.abi 785 .compute_frame_layout(&self.sigs, regalloc.num_spillslots, clobbers); 786 787 // Emit blocks. 788 let mut cur_srcloc = None; 789 let mut last_offset = None; 790 let mut inst_offsets = vec![]; 791 let mut state = I::State::new(&self.abi, std::mem::take(ctrl_plane)); 792 793 let mut disasm = String::new(); 794 795 if !self.debug_value_labels.is_empty() { 796 inst_offsets.resize(self.insts.len(), NO_INST_OFFSET); 797 } 798 799 // Count edits per block ahead of time; this is needed for 800 // lookahead island emission. (We could derive it per-block 801 // with binary search in the edit list, but it's more 802 // efficient to do it in one pass here.) 803 let mut ra_edits_per_block: SmallVec<[u32; 64]> = smallvec![]; 804 let mut edit_idx = 0; 805 for block in 0..self.num_blocks() { 806 let end_inst = InsnIndex::new(self.block_ranges.get(block).end); 807 let start_edit_idx = edit_idx; 808 while edit_idx < regalloc.edits.len() && regalloc.edits[edit_idx].0.inst() < end_inst { 809 edit_idx += 1; 810 } 811 let end_edit_idx = edit_idx; 812 ra_edits_per_block.push((end_edit_idx - start_edit_idx) as u32); 813 } 814 815 let is_forward_edge_cfi_enabled = self.abi.is_forward_edge_cfi_enabled(); 816 let mut bb_padding = match flags.bb_padding_log2_minus_one() { 817 0 => Vec::new(), 818 n => vec![0; 1 << (n - 1)], 819 }; 820 let mut total_bb_padding = 0; 821 822 for (block_order_idx, &block) in final_order.iter().enumerate() { 823 trace!("emitting block {:?}", block); 824 825 // Call the new block hook for state 826 state.on_new_block(); 827 828 // Emit NOPs to align the block. 829 let new_offset = I::align_basic_block(buffer.cur_offset()); 830 while new_offset > buffer.cur_offset() { 831 // Pad with NOPs up to the aligned block offset. 832 let nop = I::gen_nop((new_offset - buffer.cur_offset()) as usize); 833 nop.emit(&mut buffer, &self.emit_info, &mut Default::default()); 834 } 835 assert_eq!(buffer.cur_offset(), new_offset); 836 837 let do_emit = |inst: &I, 838 disasm: &mut String, 839 buffer: &mut MachBuffer<I>, 840 state: &mut I::State| { 841 if want_disasm && !inst.is_args() { 842 let mut s = state.clone(); 843 writeln!(disasm, " {}", inst.pretty_print_inst(&mut s)).unwrap(); 844 } 845 inst.emit(buffer, &self.emit_info, state); 846 }; 847 848 // Is this the first block? Emit the prologue directly if so. 849 if block == self.entry { 850 trace!(" -> entry block"); 851 buffer.start_srcloc(Default::default()); 852 for inst in &self.abi.gen_prologue() { 853 do_emit(&inst, &mut disasm, &mut buffer, &mut state); 854 } 855 buffer.end_srcloc(); 856 } 857 858 // Now emit the regular block body. 859 860 buffer.bind_label(MachLabel::from_block(block), state.ctrl_plane_mut()); 861 862 if want_disasm { 863 writeln!(&mut disasm, "block{}:", block.index()).unwrap(); 864 } 865 866 if flags.machine_code_cfg_info() { 867 // Track BB starts. If we have backed up due to MachBuffer 868 // branch opts, note that the removed blocks were removed. 869 let cur_offset = buffer.cur_offset(); 870 if last_offset.is_some() && cur_offset <= last_offset.unwrap() { 871 for i in (0..bb_starts.len()).rev() { 872 if bb_starts[i].is_some() && cur_offset > bb_starts[i].unwrap() { 873 break; 874 } 875 bb_starts[i] = None; 876 } 877 } 878 bb_starts.push(Some(cur_offset)); 879 last_offset = Some(cur_offset); 880 } 881 882 if let Some(block_start) = I::gen_block_start( 883 self.block_order.is_indirect_branch_target(block), 884 is_forward_edge_cfi_enabled, 885 ) { 886 do_emit(&block_start, &mut disasm, &mut buffer, &mut state); 887 } 888 889 for inst_or_edit in regalloc.block_insts_and_edits(&self, block) { 890 match inst_or_edit { 891 InstOrEdit::Inst(iix) => { 892 if !self.debug_value_labels.is_empty() { 893 // If we need to produce debug info, 894 // record the offset of each instruction 895 // so that we can translate value-label 896 // ranges to machine-code offsets. 897 898 // Cold blocks violate monotonicity 899 // assumptions elsewhere (that 900 // instructions in inst-index order are in 901 // order in machine code), so we omit 902 // their offsets here. Value-label range 903 // generation below will skip empty ranges 904 // and ranges with to-offsets of zero. 905 if !self.block_order.is_cold(block) { 906 inst_offsets[iix.index()] = buffer.cur_offset(); 907 } 908 } 909 910 // Update the srcloc at this point in the buffer. 911 let srcloc = self.srclocs[iix.index()]; 912 if cur_srcloc != Some(srcloc) { 913 if cur_srcloc.is_some() { 914 buffer.end_srcloc(); 915 } 916 buffer.start_srcloc(srcloc); 917 cur_srcloc = Some(srcloc); 918 } 919 920 // If this is a safepoint, compute a stack map 921 // and pass it to the emit state. 922 let stack_map_disasm = if self.insts[iix.index()].is_safepoint() { 923 let (user_stack_map, user_stack_map_disasm) = { 924 // The `user_stack_maps` is keyed by reverse 925 // instruction index, so we must flip the 926 // index. We can't put this into a helper method 927 // due to borrowck issues because parts of 928 // `self` are borrowed mutably elsewhere in this 929 // function. 930 let index = iix.to_backwards_insn_index(self.num_insts()); 931 let user_stack_map = self.user_stack_maps.remove(&index); 932 let user_stack_map_disasm = 933 user_stack_map.as_ref().map(|m| format!(" ; {m:?}")); 934 (user_stack_map, user_stack_map_disasm) 935 }; 936 937 state.pre_safepoint(user_stack_map); 938 939 user_stack_map_disasm 940 } else { 941 None 942 }; 943 944 // If the instruction we are about to emit is 945 // a return, place an epilogue at this point 946 // (and don't emit the return; the actual 947 // epilogue will contain it). 948 if self.insts[iix.index()].is_term() == MachTerminator::Ret { 949 for inst in self.abi.gen_epilogue() { 950 do_emit(&inst, &mut disasm, &mut buffer, &mut state); 951 } 952 } else { 953 // Update the operands for this inst using the 954 // allocations from the regalloc result. 955 let mut allocs = regalloc.inst_allocs(iix).iter(); 956 self.insts[iix.index()].get_operands( 957 &mut |reg: &mut Reg, constraint, _kind, _pos| { 958 let alloc = 959 allocs.next().expect("enough allocations for all operands"); 960 961 if let Some(alloc) = alloc.as_reg() { 962 let alloc: Reg = alloc.into(); 963 if let OperandConstraint::FixedReg(rreg) = constraint { 964 debug_assert_eq!(Reg::from(rreg), alloc); 965 } 966 *reg = alloc; 967 } else if let Some(alloc) = alloc.as_stack() { 968 let alloc: Reg = alloc.into(); 969 *reg = alloc; 970 } 971 }, 972 ); 973 debug_assert!(allocs.next().is_none()); 974 975 // Emit the instruction! 976 do_emit( 977 &self.insts[iix.index()], 978 &mut disasm, 979 &mut buffer, 980 &mut state, 981 ); 982 if let Some(stack_map_disasm) = stack_map_disasm { 983 disasm.push_str(&stack_map_disasm); 984 disasm.push('\n'); 985 } 986 } 987 } 988 989 InstOrEdit::Edit(Edit::Move { from, to }) => { 990 // Create a move/spill/reload instruction and 991 // immediately emit it. 992 match (from.as_reg(), to.as_reg()) { 993 (Some(from), Some(to)) => { 994 // Reg-to-reg move. 995 let from_rreg = Reg::from(from); 996 let to_rreg = Writable::from_reg(Reg::from(to)); 997 debug_assert_eq!(from.class(), to.class()); 998 let ty = I::canonical_type_for_rc(from.class()); 999 let mv = I::gen_move(to_rreg, from_rreg, ty); 1000 do_emit(&mv, &mut disasm, &mut buffer, &mut state); 1001 } 1002 (Some(from), None) => { 1003 // Spill from register to spillslot. 1004 let to = to.as_stack().unwrap(); 1005 let from_rreg = RealReg::from(from); 1006 let spill = self.abi.gen_spill(to, from_rreg); 1007 do_emit(&spill, &mut disasm, &mut buffer, &mut state); 1008 } 1009 (None, Some(to)) => { 1010 // Load from spillslot to register. 1011 let from = from.as_stack().unwrap(); 1012 let to_rreg = Writable::from_reg(RealReg::from(to)); 1013 let reload = self.abi.gen_reload(to_rreg, from); 1014 do_emit(&reload, &mut disasm, &mut buffer, &mut state); 1015 } 1016 (None, None) => { 1017 panic!("regalloc2 should have eliminated stack-to-stack moves!"); 1018 } 1019 } 1020 } 1021 } 1022 } 1023 1024 if cur_srcloc.is_some() { 1025 buffer.end_srcloc(); 1026 cur_srcloc = None; 1027 } 1028 1029 // Do we need an island? Get the worst-case size of the next BB, add 1030 // it to the optional padding behind the block, and pass this to the 1031 // `MachBuffer` to determine if an island is necessary. 1032 let worst_case_next_bb = if block_order_idx < final_order.len() - 1 { 1033 let next_block = final_order[block_order_idx + 1]; 1034 let next_block_range = self.block_ranges.get(next_block.index()); 1035 let next_block_size = next_block_range.len() as u32; 1036 let next_block_ra_insertions = ra_edits_per_block[next_block.index()]; 1037 I::worst_case_size() * (next_block_size + next_block_ra_insertions) 1038 } else { 1039 0 1040 }; 1041 let padding = if bb_padding.is_empty() { 1042 0 1043 } else { 1044 bb_padding.len() as u32 + I::LabelUse::ALIGN - 1 1045 }; 1046 if buffer.island_needed(padding + worst_case_next_bb) { 1047 buffer.emit_island(padding + worst_case_next_bb, ctrl_plane); 1048 } 1049 1050 // Insert padding, if configured, to stress the `MachBuffer`'s 1051 // relocation and island calculations. 1052 // 1053 // Padding can get quite large during fuzzing though so place a 1054 // total cap on it where when a per-function threshold is exceeded 1055 // the padding is turned back down to zero. This avoids a small-ish 1056 // test case generating a GB+ memory footprint in Cranelift for 1057 // example. 1058 if !bb_padding.is_empty() { 1059 buffer.put_data(&bb_padding); 1060 buffer.align_to(I::LabelUse::ALIGN); 1061 total_bb_padding += bb_padding.len(); 1062 if total_bb_padding > (150 << 20) { 1063 bb_padding = Vec::new(); 1064 } 1065 } 1066 } 1067 1068 debug_assert!( 1069 self.user_stack_maps.is_empty(), 1070 "any stack maps should have been consumed by instruction emission, still have: {:#?}", 1071 self.user_stack_maps, 1072 ); 1073 1074 // Do any optimizations on branches at tail of buffer, as if we had 1075 // bound one last label. 1076 buffer.optimize_branches(ctrl_plane); 1077 1078 // emission state is not needed anymore, move control plane back out 1079 *ctrl_plane = state.take_ctrl_plane(); 1080 1081 let func_body_len = buffer.cur_offset(); 1082 1083 // Create `bb_edges` and final (filtered) `bb_starts`. 1084 let mut bb_edges = vec![]; 1085 let mut bb_offsets = vec![]; 1086 if flags.machine_code_cfg_info() { 1087 for block in 0..self.num_blocks() { 1088 if bb_starts[block].is_none() { 1089 // Block was deleted by MachBuffer; skip. 1090 continue; 1091 } 1092 let from = bb_starts[block].unwrap(); 1093 1094 bb_offsets.push(from); 1095 // Resolve each `succ` label and add edges. 1096 let succs = self.block_succs(BlockIndex::new(block)); 1097 for &succ in succs.iter() { 1098 let to = buffer.resolve_label_offset(MachLabel::from_block(succ)); 1099 bb_edges.push((from, to)); 1100 } 1101 } 1102 } 1103 1104 self.monotonize_inst_offsets(&mut inst_offsets[..], func_body_len); 1105 let value_labels_ranges = 1106 self.compute_value_labels_ranges(regalloc, &inst_offsets[..], func_body_len); 1107 let frame_size = self.abi.frame_size(); 1108 1109 EmitResult { 1110 buffer: buffer.finish(&self.constants, ctrl_plane), 1111 bb_offsets, 1112 bb_edges, 1113 func_body_len, 1114 disasm: if want_disasm { Some(disasm) } else { None }, 1115 sized_stackslot_offsets: self.abi.sized_stackslot_offsets().clone(), 1116 dynamic_stackslot_offsets: self.abi.dynamic_stackslot_offsets().clone(), 1117 value_labels_ranges, 1118 frame_size, 1119 } 1120 } 1121 1122 fn monotonize_inst_offsets(&self, inst_offsets: &mut [CodeOffset], func_body_len: u32) { 1123 if self.debug_value_labels.is_empty() { 1124 return; 1125 } 1126 1127 // During emission, branch removal can make offsets of instructions incorrect. 1128 // Consider the following sequence: [insi][jmp0][jmp1][jmp2][insj] 1129 // It will be recorded as (say): [30] [34] [38] [42] [<would be 46>] 1130 // When the jumps get removed we are left with (in "inst_offsets"): 1131 // [insi][jmp0][jmp1][jmp2][insj][...] 1132 // [30] [34] [38] [42] [34] 1133 // Which violates the monotonicity invariant. This method sets offsets of these 1134 // removed instructions such as to make them appear zero-sized: 1135 // [insi][jmp0][jmp1][jmp2][insj][...] 1136 // [30] [34] [34] [34] [34] 1137 // 1138 let mut next_offset = func_body_len; 1139 for inst_index in (0..(inst_offsets.len() - 1)).rev() { 1140 let inst_offset = inst_offsets[inst_index]; 1141 1142 // Not all instructions get their offsets recorded. 1143 if inst_offset == NO_INST_OFFSET { 1144 continue; 1145 } 1146 1147 if inst_offset > next_offset { 1148 trace!( 1149 "Fixing code offset of the removed Inst {}: {} -> {}", 1150 inst_index, inst_offset, next_offset 1151 ); 1152 inst_offsets[inst_index] = next_offset; 1153 continue; 1154 } 1155 1156 next_offset = inst_offset; 1157 } 1158 } 1159 1160 fn compute_value_labels_ranges( 1161 &self, 1162 regalloc: ®alloc2::Output, 1163 inst_offsets: &[CodeOffset], 1164 func_body_len: u32, 1165 ) -> ValueLabelsRanges { 1166 if self.debug_value_labels.is_empty() { 1167 return ValueLabelsRanges::default(); 1168 } 1169 1170 if trace_log_enabled!() { 1171 self.log_value_labels_ranges(regalloc, inst_offsets); 1172 } 1173 1174 let mut value_labels_ranges: ValueLabelsRanges = HashMap::new(); 1175 for &(label, from, to, alloc) in ®alloc.debug_locations { 1176 let label = ValueLabel::from_u32(label); 1177 let ranges = value_labels_ranges.entry(label).or_insert_with(|| vec![]); 1178 let prog_point_to_inst = |prog_point: ProgPoint| { 1179 let mut inst = prog_point.inst(); 1180 if prog_point.pos() == InstPosition::After { 1181 inst = inst.next(); 1182 } 1183 inst.index() 1184 }; 1185 let from_inst_index = prog_point_to_inst(from); 1186 let to_inst_index = prog_point_to_inst(to); 1187 let from_offset = inst_offsets[from_inst_index]; 1188 let to_offset = if to_inst_index == inst_offsets.len() { 1189 func_body_len 1190 } else { 1191 inst_offsets[to_inst_index] 1192 }; 1193 1194 // Empty ranges or unavailable offsets can happen 1195 // due to cold blocks and branch removal (see above). 1196 if from_offset == NO_INST_OFFSET 1197 || to_offset == NO_INST_OFFSET 1198 || from_offset == to_offset 1199 { 1200 continue; 1201 } 1202 1203 let loc = if let Some(preg) = alloc.as_reg() { 1204 LabelValueLoc::Reg(Reg::from(preg)) 1205 } else { 1206 let slot = alloc.as_stack().unwrap(); 1207 let slot_offset = self.abi.get_spillslot_offset(slot); 1208 let slot_base_to_caller_sp_offset = self.abi.slot_base_to_caller_sp_offset(); 1209 let caller_sp_to_cfa_offset = 1210 crate::isa::unwind::systemv::caller_sp_to_cfa_offset(); 1211 // NOTE: this is a negative offset because it's relative to the caller's SP 1212 let cfa_to_sp_offset = 1213 -((slot_base_to_caller_sp_offset + caller_sp_to_cfa_offset) as i64); 1214 LabelValueLoc::CFAOffset(cfa_to_sp_offset + slot_offset) 1215 }; 1216 1217 // Coalesce adjacent ranges that for the same location 1218 // to minimize output size here and for the consumers. 1219 if let Some(last_loc_range) = ranges.last_mut() { 1220 if last_loc_range.loc == loc && last_loc_range.end == from_offset { 1221 trace!( 1222 "Extending debug range for {:?} in {:?} to Inst {} ({})", 1223 label, loc, to_inst_index, to_offset 1224 ); 1225 last_loc_range.end = to_offset; 1226 continue; 1227 } 1228 } 1229 1230 trace!( 1231 "Recording debug range for {:?} in {:?}: [Inst {}..Inst {}) [{}..{})", 1232 label, loc, from_inst_index, to_inst_index, from_offset, to_offset 1233 ); 1234 1235 ranges.push(ValueLocRange { 1236 loc, 1237 start: from_offset, 1238 end: to_offset, 1239 }); 1240 } 1241 1242 value_labels_ranges 1243 } 1244 1245 fn log_value_labels_ranges(&self, regalloc: ®alloc2::Output, inst_offsets: &[CodeOffset]) { 1246 debug_assert!(trace_log_enabled!()); 1247 1248 // What debug labels do we have? Note we'll skip those that have not been 1249 // allocated any location at all. They will show up as numeric gaps in the table. 1250 let mut labels = vec![]; 1251 for &(label, _, _, _) in ®alloc.debug_locations { 1252 if Some(&label) == labels.last() { 1253 continue; 1254 } 1255 labels.push(label); 1256 } 1257 1258 // Reformat the data on what VRegs were the VLs assigned to by lowering, since 1259 // the array we have is sorted by VReg, and we want it sorted by VL for easy 1260 // access in the loop below. 1261 let mut vregs = vec![]; 1262 for &(vreg, start, end, label) in &self.debug_value_labels { 1263 if matches!(labels.binary_search(&label), Ok(_)) { 1264 vregs.push((label, start, end, vreg)); 1265 } 1266 } 1267 vregs.sort_unstable_by( 1268 |(l_label, l_start, _, _), (r_label, r_start, _, _)| match l_label.cmp(r_label) { 1269 Ordering::Equal => l_start.cmp(r_start), 1270 cmp => cmp, 1271 }, 1272 ); 1273 1274 #[derive(PartialEq)] 1275 enum Mode { 1276 Measure, 1277 Emit, 1278 } 1279 #[derive(PartialEq)] 1280 enum Row { 1281 Head, 1282 Line, 1283 Inst(usize, usize), 1284 } 1285 1286 let mut widths = vec![0; 3 + 2 * labels.len()]; 1287 let mut row = String::new(); 1288 let mut output_row = |row_kind: Row, mode: Mode| { 1289 let mut column_index = 0; 1290 row.clear(); 1291 1292 macro_rules! output_cell_impl { 1293 ($fill:literal, $span:literal, $($cell_fmt:tt)*) => { 1294 let column_start = row.len(); 1295 { 1296 row.push('|'); 1297 write!(row, $($cell_fmt)*).unwrap(); 1298 } 1299 1300 let next_column_index = column_index + $span; 1301 let expected_width: usize = widths[column_index..next_column_index].iter().sum(); 1302 if mode == Mode::Measure { 1303 let actual_width = row.len() - column_start; 1304 if actual_width > expected_width { 1305 widths[next_column_index - 1] += actual_width - expected_width; 1306 } 1307 } else { 1308 let column_end = column_start + expected_width; 1309 while row.len() != column_end { 1310 row.push($fill); 1311 } 1312 } 1313 column_index = next_column_index; 1314 }; 1315 } 1316 macro_rules! output_cell { 1317 ($($cell_fmt:tt)*) => { 1318 output_cell_impl!(' ', 1, $($cell_fmt)*); 1319 }; 1320 } 1321 1322 match row_kind { 1323 Row::Head => { 1324 output_cell!("BB"); 1325 output_cell!("Inst"); 1326 output_cell!("IP"); 1327 for label in &labels { 1328 output_cell_impl!(' ', 2, "{:?}", ValueLabel::from_u32(*label)); 1329 } 1330 } 1331 Row::Line => { 1332 debug_assert!(mode == Mode::Emit); 1333 for _ in 0..3 { 1334 output_cell_impl!('-', 1, ""); 1335 } 1336 for _ in &labels { 1337 output_cell_impl!('-', 2, ""); 1338 } 1339 } 1340 Row::Inst(block_index, inst_index) => { 1341 debug_assert!(inst_index < self.num_insts()); 1342 if self.block_ranges.get(block_index).start == inst_index { 1343 output_cell!("B{}", block_index); 1344 } else { 1345 output_cell!(""); 1346 } 1347 output_cell!("Inst {inst_index} "); 1348 output_cell!("{} ", inst_offsets[inst_index]); 1349 1350 for label in &labels { 1351 // First, the VReg. 1352 use regalloc2::Inst; 1353 let vreg_cmp = |inst: usize, 1354 vreg_label: &u32, 1355 range_start: &Inst, 1356 range_end: &Inst| { 1357 match vreg_label.cmp(&label) { 1358 Ordering::Equal => { 1359 if range_end.index() <= inst { 1360 Ordering::Less 1361 } else if range_start.index() > inst { 1362 Ordering::Greater 1363 } else { 1364 Ordering::Equal 1365 } 1366 } 1367 cmp => cmp, 1368 } 1369 }; 1370 let vreg_index = 1371 vregs.binary_search_by(|(l, s, e, _)| vreg_cmp(inst_index, l, s, e)); 1372 if let Ok(vreg_index) = vreg_index { 1373 let mut prev_vreg = None; 1374 if inst_index > 0 { 1375 let prev_vreg_index = vregs.binary_search_by(|(l, s, e, _)| { 1376 vreg_cmp(inst_index - 1, l, s, e) 1377 }); 1378 if let Ok(prev_vreg_index) = prev_vreg_index { 1379 prev_vreg = Some(vregs[prev_vreg_index].3); 1380 } 1381 } 1382 1383 let vreg = vregs[vreg_index].3; 1384 if Some(vreg) == prev_vreg { 1385 output_cell!("*"); 1386 } else { 1387 output_cell!("{}", vreg); 1388 } 1389 } else { 1390 output_cell!(""); 1391 } 1392 1393 // Second, the allocated location. 1394 let inst_prog_point = ProgPoint::before(Inst::new(inst_index)); 1395 let range_index = regalloc.debug_locations.binary_search_by( 1396 |(range_label, range_start, range_end, _)| match range_label.cmp(label) 1397 { 1398 Ordering::Equal => { 1399 if *range_end <= inst_prog_point { 1400 Ordering::Less 1401 } else if *range_start > inst_prog_point { 1402 Ordering::Greater 1403 } else { 1404 Ordering::Equal 1405 } 1406 } 1407 cmp => cmp, 1408 }, 1409 ); 1410 if let Ok(range_index) = range_index { 1411 // Live at this instruction, print the location. 1412 if let Some(reg) = regalloc.debug_locations[range_index].3.as_reg() { 1413 output_cell!("{:?}", Reg::from(reg)); 1414 } else { 1415 output_cell!("Stk"); 1416 } 1417 } else { 1418 // Not live at this instruction. 1419 output_cell!(""); 1420 } 1421 } 1422 } 1423 } 1424 row.push('|'); 1425 1426 if mode == Mode::Emit { 1427 trace!("{}", row.as_str()); 1428 } 1429 }; 1430 1431 for block_index in 0..self.num_blocks() { 1432 for inst_index in self.block_ranges.get(block_index) { 1433 output_row(Row::Inst(block_index, inst_index), Mode::Measure); 1434 } 1435 } 1436 output_row(Row::Head, Mode::Measure); 1437 1438 output_row(Row::Head, Mode::Emit); 1439 output_row(Row::Line, Mode::Emit); 1440 for block_index in 0..self.num_blocks() { 1441 for inst_index in self.block_ranges.get(block_index) { 1442 output_row(Row::Inst(block_index, inst_index), Mode::Emit); 1443 } 1444 } 1445 } 1446 1447 /// Get the IR block for a BlockIndex, if one exists. 1448 pub fn bindex_to_bb(&self, block: BlockIndex) -> Option<ir::Block> { 1449 self.block_order.lowered_order()[block.index()].orig_block() 1450 } 1451 1452 /// Get the type of a VReg. 1453 pub fn vreg_type(&self, vreg: VReg) -> Type { 1454 self.vreg_types[vreg.vreg()] 1455 } 1456 1457 /// Get the fact, if any, for a given VReg. 1458 pub fn vreg_fact(&self, vreg: VReg) -> Option<&Fact> { 1459 self.facts[vreg.vreg()].as_ref() 1460 } 1461 1462 /// Set the fact for a given VReg. 1463 pub fn set_vreg_fact(&mut self, vreg: VReg, fact: Fact) { 1464 trace!("set fact on {}: {:?}", vreg, fact); 1465 self.facts[vreg.vreg()] = Some(fact); 1466 } 1467 1468 /// Does a given instruction define any facts? 1469 pub fn inst_defines_facts(&self, inst: InsnIndex) -> bool { 1470 self.inst_operands(inst) 1471 .iter() 1472 .filter(|o| o.kind() == OperandKind::Def) 1473 .map(|o| o.vreg()) 1474 .any(|vreg| self.facts[vreg.vreg()].is_some()) 1475 } 1476 1477 /// Get the user stack map associated with the given forward instruction index. 1478 pub fn get_user_stack_map(&self, inst: InsnIndex) -> Option<&ir::UserStackMap> { 1479 let index = inst.to_backwards_insn_index(self.num_insts()); 1480 self.user_stack_maps.get(&index) 1481 } 1482 } 1483 1484 impl<I: VCodeInst> std::ops::Index<InsnIndex> for VCode<I> { 1485 type Output = I; 1486 fn index(&self, idx: InsnIndex) -> &Self::Output { 1487 &self.insts[idx.index()] 1488 } 1489 } 1490 1491 impl<I: VCodeInst> RegallocFunction for VCode<I> { 1492 fn num_insts(&self) -> usize { 1493 self.insts.len() 1494 } 1495 1496 fn num_blocks(&self) -> usize { 1497 self.block_ranges.len() 1498 } 1499 1500 fn entry_block(&self) -> BlockIndex { 1501 self.entry 1502 } 1503 1504 fn block_insns(&self, block: BlockIndex) -> InstRange { 1505 let range = self.block_ranges.get(block.index()); 1506 InstRange::new(InsnIndex::new(range.start), InsnIndex::new(range.end)) 1507 } 1508 1509 fn block_succs(&self, block: BlockIndex) -> &[BlockIndex] { 1510 let range = self.block_succ_range.get(block.index()); 1511 &self.block_succs[range] 1512 } 1513 1514 fn block_preds(&self, block: BlockIndex) -> &[BlockIndex] { 1515 let range = self.block_pred_range.get(block.index()); 1516 &self.block_preds[range] 1517 } 1518 1519 fn block_params(&self, block: BlockIndex) -> &[VReg] { 1520 // As a special case we don't return block params for the entry block, as all the arguments 1521 // will be defined by the `Inst::Args` instruction. 1522 if block == self.entry { 1523 return &[]; 1524 } 1525 1526 let range = self.block_params_range.get(block.index()); 1527 &self.block_params[range] 1528 } 1529 1530 fn branch_blockparams(&self, block: BlockIndex, _insn: InsnIndex, succ_idx: usize) -> &[VReg] { 1531 let succ_range = self.branch_block_arg_succ_range.get(block.index()); 1532 debug_assert!(succ_idx < succ_range.len()); 1533 let branch_block_args = self.branch_block_arg_range.get(succ_range.start + succ_idx); 1534 &self.branch_block_args[branch_block_args] 1535 } 1536 1537 fn is_ret(&self, insn: InsnIndex) -> bool { 1538 match self.insts[insn.index()].is_term() { 1539 // We treat blocks terminated by an unconditional trap like a return for regalloc. 1540 MachTerminator::None => self.insts[insn.index()].is_trap(), 1541 MachTerminator::Ret | MachTerminator::RetCall => true, 1542 MachTerminator::Branch => false, 1543 } 1544 } 1545 1546 fn is_branch(&self, insn: InsnIndex) -> bool { 1547 match self.insts[insn.index()].is_term() { 1548 MachTerminator::Branch => true, 1549 _ => false, 1550 } 1551 } 1552 1553 fn inst_operands(&self, insn: InsnIndex) -> &[Operand] { 1554 let range = self.operand_ranges.get(insn.index()); 1555 &self.operands[range] 1556 } 1557 1558 fn inst_clobbers(&self, insn: InsnIndex) -> PRegSet { 1559 self.clobbers.get(&insn).cloned().unwrap_or_default() 1560 } 1561 1562 fn num_vregs(&self) -> usize { 1563 self.vreg_types.len() 1564 } 1565 1566 fn debug_value_labels(&self) -> &[(VReg, InsnIndex, InsnIndex, u32)] { 1567 &self.debug_value_labels 1568 } 1569 1570 fn spillslot_size(&self, regclass: RegClass) -> usize { 1571 self.abi.get_spillslot_size(regclass) as usize 1572 } 1573 1574 fn allow_multiple_vreg_defs(&self) -> bool { 1575 // At least the s390x backend requires this, because the 1576 // `Loop` pseudo-instruction aggregates all Operands so pinned 1577 // vregs (RealRegs) may occur more than once. 1578 true 1579 } 1580 } 1581 1582 impl<I: VCodeInst> Debug for VRegAllocator<I> { 1583 fn fmt(&self, f: &mut fmt::Formatter) -> fmt::Result { 1584 writeln!(f, "VRegAllocator {{")?; 1585 1586 let mut alias_keys = self.vreg_aliases.keys().cloned().collect::<Vec<_>>(); 1587 alias_keys.sort_unstable(); 1588 for key in alias_keys { 1589 let dest = self.vreg_aliases.get(&key).unwrap(); 1590 writeln!(f, " {:?} := {:?}", Reg::from(key), Reg::from(*dest))?; 1591 } 1592 1593 for (vreg, fact) in self.facts.iter().enumerate() { 1594 if let Some(fact) = fact { 1595 writeln!(f, " v{vreg} ! {fact}")?; 1596 } 1597 } 1598 1599 writeln!(f, "}}") 1600 } 1601 } 1602 1603 impl<I: VCodeInst> fmt::Debug for VCode<I> { 1604 fn fmt(&self, f: &mut fmt::Formatter) -> fmt::Result { 1605 writeln!(f, "VCode {{")?; 1606 writeln!(f, " Entry block: {}", self.entry.index())?; 1607 1608 let mut state = Default::default(); 1609 1610 for block in 0..self.num_blocks() { 1611 let block = BlockIndex::new(block); 1612 writeln!( 1613 f, 1614 "Block {}({:?}):", 1615 block.index(), 1616 self.block_params(block) 1617 )?; 1618 if let Some(bb) = self.bindex_to_bb(block) { 1619 writeln!(f, " (original IR block: {bb})")?; 1620 } 1621 for (succ_idx, succ) in self.block_succs(block).iter().enumerate() { 1622 writeln!( 1623 f, 1624 " (successor: Block {}({:?}))", 1625 succ.index(), 1626 self.branch_blockparams(block, InsnIndex::new(0) /* dummy */, succ_idx) 1627 )?; 1628 } 1629 for inst in self.block_ranges.get(block.index()) { 1630 writeln!( 1631 f, 1632 " Inst {}: {}", 1633 inst, 1634 self.insts[inst].pretty_print_inst(&mut state) 1635 )?; 1636 if !self.operands.is_empty() { 1637 for operand in self.inst_operands(InsnIndex::new(inst)) { 1638 if operand.kind() == OperandKind::Def { 1639 if let Some(fact) = &self.facts[operand.vreg().vreg()] { 1640 writeln!(f, " v{} ! {}", operand.vreg().vreg(), fact)?; 1641 } 1642 } 1643 } 1644 } 1645 if let Some(user_stack_map) = self.get_user_stack_map(InsnIndex::new(inst)) { 1646 writeln!(f, " {user_stack_map:?}")?; 1647 } 1648 } 1649 } 1650 1651 writeln!(f, "}}")?; 1652 Ok(()) 1653 } 1654 } 1655 1656 /// This structure manages VReg allocation during the lifetime of the VCodeBuilder. 1657 pub struct VRegAllocator<I> { 1658 /// VReg IR-level types. 1659 vreg_types: Vec<Type>, 1660 1661 /// VReg aliases. When the final VCode is built we rewrite all 1662 /// uses of the keys in this table to their replacement values. 1663 /// 1664 /// We use these aliases to rename an instruction's expected 1665 /// result vregs to the returned vregs from lowering, which are 1666 /// usually freshly-allocated temps. 1667 vreg_aliases: FxHashMap<regalloc2::VReg, regalloc2::VReg>, 1668 1669 /// A deferred error, to be bubbled up to the top level of the 1670 /// lowering algorithm. We take this approach because we cannot 1671 /// currently propagate a `Result` upward through ISLE code (the 1672 /// lowering rules) or some ABI code. 1673 deferred_error: Option<CodegenError>, 1674 1675 /// Facts on VRegs, for proof-carrying code. 1676 facts: Vec<Option<Fact>>, 1677 1678 /// The type of instruction that this allocator makes registers for. 1679 _inst: core::marker::PhantomData<I>, 1680 } 1681 1682 impl<I: VCodeInst> VRegAllocator<I> { 1683 /// Make a new VRegAllocator. 1684 pub fn with_capacity(capacity: usize) -> Self { 1685 let capacity = first_user_vreg_index() + capacity; 1686 let mut vreg_types = Vec::with_capacity(capacity); 1687 vreg_types.resize(first_user_vreg_index(), types::INVALID); 1688 Self { 1689 vreg_types, 1690 vreg_aliases: FxHashMap::with_capacity_and_hasher(capacity, Default::default()), 1691 deferred_error: None, 1692 facts: Vec::with_capacity(capacity), 1693 _inst: core::marker::PhantomData::default(), 1694 } 1695 } 1696 1697 /// Allocate a fresh ValueRegs. 1698 pub fn alloc(&mut self, ty: Type) -> CodegenResult<ValueRegs<Reg>> { 1699 if self.deferred_error.is_some() { 1700 return Err(CodegenError::CodeTooLarge); 1701 } 1702 let v = self.vreg_types.len(); 1703 let (regclasses, tys) = I::rc_for_type(ty)?; 1704 if v + regclasses.len() >= VReg::MAX { 1705 return Err(CodegenError::CodeTooLarge); 1706 } 1707 1708 let regs: ValueRegs<Reg> = match regclasses { 1709 &[rc0] => ValueRegs::one(VReg::new(v, rc0).into()), 1710 &[rc0, rc1] => ValueRegs::two(VReg::new(v, rc0).into(), VReg::new(v + 1, rc1).into()), 1711 // We can extend this if/when we support 32-bit targets; e.g., 1712 // an i128 on a 32-bit machine will need up to four machine regs 1713 // for a `Value`. 1714 _ => panic!("Value must reside in 1 or 2 registers"), 1715 }; 1716 for (®_ty, ®) in tys.iter().zip(regs.regs().iter()) { 1717 let vreg = reg.to_virtual_reg().unwrap(); 1718 debug_assert_eq!(self.vreg_types.len(), vreg.index()); 1719 self.vreg_types.push(reg_ty); 1720 } 1721 1722 // Create empty facts for each allocated vreg. 1723 self.facts.resize(self.vreg_types.len(), None); 1724 1725 Ok(regs) 1726 } 1727 1728 /// Allocate a fresh ValueRegs, deferring any out-of-vregs 1729 /// errors. This is useful in places where we cannot bubble a 1730 /// `CodegenResult` upward easily, and which are known to be 1731 /// invoked from within the lowering loop that checks the deferred 1732 /// error status below. 1733 pub fn alloc_with_deferred_error(&mut self, ty: Type) -> ValueRegs<Reg> { 1734 match self.alloc(ty) { 1735 Ok(x) => x, 1736 Err(e) => { 1737 self.deferred_error = Some(e); 1738 self.bogus_for_deferred_error(ty) 1739 } 1740 } 1741 } 1742 1743 /// Take any deferred error that was accumulated by `alloc_with_deferred_error`. 1744 pub fn take_deferred_error(&mut self) -> Option<CodegenError> { 1745 self.deferred_error.take() 1746 } 1747 1748 /// Produce an bogus VReg placeholder with the proper number of 1749 /// registers for the given type. This is meant to be used with 1750 /// deferred allocation errors (see `Lower::alloc_tmp()`). 1751 fn bogus_for_deferred_error(&self, ty: Type) -> ValueRegs<Reg> { 1752 let (regclasses, _tys) = I::rc_for_type(ty).expect("must have valid type"); 1753 match regclasses { 1754 &[rc0] => ValueRegs::one(VReg::new(0, rc0).into()), 1755 &[rc0, rc1] => ValueRegs::two(VReg::new(0, rc0).into(), VReg::new(1, rc1).into()), 1756 _ => panic!("Value must reside in 1 or 2 registers"), 1757 } 1758 } 1759 1760 /// Rewrite any mention of `from` into `to`. 1761 pub fn set_vreg_alias(&mut self, from: Reg, to: Reg) { 1762 let from = from.into(); 1763 let resolved_to = self.resolve_vreg_alias(to.into()); 1764 // Disallow cycles (see below). 1765 assert_ne!(resolved_to, from); 1766 1767 // Maintain the invariant that PCC facts only exist on vregs 1768 // which aren't aliases. We want to preserve whatever was 1769 // stated about the vreg before its producer was lowered. 1770 if let Some(fact) = self.facts[from.vreg()].take() { 1771 self.set_fact(resolved_to, fact); 1772 } 1773 1774 let old_alias = self.vreg_aliases.insert(from, resolved_to); 1775 debug_assert_eq!(old_alias, None); 1776 } 1777 1778 fn resolve_vreg_alias(&self, mut vreg: regalloc2::VReg) -> regalloc2::VReg { 1779 // We prevent cycles from existing by resolving targets of 1780 // aliases eagerly before setting them. If the target resolves 1781 // to the origin of the alias, then a cycle would be created 1782 // and the alias is disallowed. Because of the structure of 1783 // SSA code (one instruction can refer to another's defs but 1784 // not vice-versa, except indirectly through 1785 // phis/blockparams), cycles should not occur as we use 1786 // aliases to redirect vregs to the temps that actually define 1787 // them. 1788 while let Some(to) = self.vreg_aliases.get(&vreg) { 1789 vreg = *to; 1790 } 1791 vreg 1792 } 1793 1794 #[inline] 1795 fn debug_assert_no_vreg_aliases(&self, mut list: impl Iterator<Item = VReg>) { 1796 debug_assert!(list.all(|vreg| !self.vreg_aliases.contains_key(&vreg))); 1797 } 1798 1799 /// Set the proof-carrying code fact on a given virtual register. 1800 /// 1801 /// Returns the old fact, if any (only one fact can be stored). 1802 fn set_fact(&mut self, vreg: regalloc2::VReg, fact: Fact) -> Option<Fact> { 1803 trace!("vreg {:?} has fact: {:?}", vreg, fact); 1804 debug_assert!(!self.vreg_aliases.contains_key(&vreg)); 1805 self.facts[vreg.vreg()].replace(fact) 1806 } 1807 1808 /// Set a fact only if one doesn't already exist. 1809 pub fn set_fact_if_missing(&mut self, vreg: VirtualReg, fact: Fact) { 1810 let vreg = self.resolve_vreg_alias(vreg.into()); 1811 if self.facts[vreg.vreg()].is_none() { 1812 self.set_fact(vreg, fact); 1813 } 1814 } 1815 1816 /// Allocate a fresh ValueRegs, with a given fact to apply if 1817 /// the value fits in one VReg. 1818 pub fn alloc_with_maybe_fact( 1819 &mut self, 1820 ty: Type, 1821 fact: Option<Fact>, 1822 ) -> CodegenResult<ValueRegs<Reg>> { 1823 let result = self.alloc(ty)?; 1824 1825 // Ensure that we don't lose a fact on a value that splits 1826 // into multiple VRegs. 1827 assert!(result.len() == 1 || fact.is_none()); 1828 if let Some(fact) = fact { 1829 self.set_fact(result.regs()[0].into(), fact); 1830 } 1831 1832 Ok(result) 1833 } 1834 } 1835 1836 /// This structure tracks the large constants used in VCode that will be emitted separately by the 1837 /// [MachBuffer]. 1838 /// 1839 /// First, during the lowering phase, constants are inserted using 1840 /// [VCodeConstants.insert]; an intermediate handle, `VCodeConstant`, tracks what constants are 1841 /// used in this phase. Some deduplication is performed, when possible, as constant 1842 /// values are inserted. 1843 /// 1844 /// Secondly, during the emission phase, the [MachBuffer] assigns [MachLabel]s for each of the 1845 /// constants so that instructions can refer to the value's memory location. The [MachBuffer] 1846 /// then writes the constant values to the buffer. 1847 #[derive(Default)] 1848 pub struct VCodeConstants { 1849 constants: PrimaryMap<VCodeConstant, VCodeConstantData>, 1850 pool_uses: HashMap<Constant, VCodeConstant>, 1851 well_known_uses: HashMap<*const [u8], VCodeConstant>, 1852 u64s: HashMap<[u8; 8], VCodeConstant>, 1853 } 1854 impl VCodeConstants { 1855 /// Initialize the structure with the expected number of constants. 1856 pub fn with_capacity(expected_num_constants: usize) -> Self { 1857 Self { 1858 constants: PrimaryMap::with_capacity(expected_num_constants), 1859 pool_uses: HashMap::with_capacity(expected_num_constants), 1860 well_known_uses: HashMap::new(), 1861 u64s: HashMap::new(), 1862 } 1863 } 1864 1865 /// Insert a constant; using this method indicates that a constant value will be used and thus 1866 /// will be emitted to the `MachBuffer`. The current implementation can deduplicate constants 1867 /// that are [VCodeConstantData::Pool] or [VCodeConstantData::WellKnown] but not 1868 /// [VCodeConstantData::Generated]. 1869 pub fn insert(&mut self, data: VCodeConstantData) -> VCodeConstant { 1870 match data { 1871 VCodeConstantData::Generated(_) => self.constants.push(data), 1872 VCodeConstantData::Pool(constant, _) => match self.pool_uses.get(&constant) { 1873 None => { 1874 let vcode_constant = self.constants.push(data); 1875 self.pool_uses.insert(constant, vcode_constant); 1876 vcode_constant 1877 } 1878 Some(&vcode_constant) => vcode_constant, 1879 }, 1880 VCodeConstantData::WellKnown(data_ref) => { 1881 match self.well_known_uses.entry(data_ref as *const [u8]) { 1882 Entry::Vacant(v) => { 1883 let vcode_constant = self.constants.push(data); 1884 v.insert(vcode_constant); 1885 vcode_constant 1886 } 1887 Entry::Occupied(o) => *o.get(), 1888 } 1889 } 1890 VCodeConstantData::U64(value) => match self.u64s.entry(value) { 1891 Entry::Vacant(v) => { 1892 let vcode_constant = self.constants.push(data); 1893 v.insert(vcode_constant); 1894 vcode_constant 1895 } 1896 Entry::Occupied(o) => *o.get(), 1897 }, 1898 } 1899 } 1900 1901 /// Return the number of constants inserted. 1902 pub fn len(&self) -> usize { 1903 self.constants.len() 1904 } 1905 1906 /// Iterate over the `VCodeConstant` keys inserted in this structure. 1907 pub fn keys(&self) -> Keys<VCodeConstant> { 1908 self.constants.keys() 1909 } 1910 1911 /// Iterate over the `VCodeConstant` keys and the data (as a byte slice) inserted in this 1912 /// structure. 1913 pub fn iter(&self) -> impl Iterator<Item = (VCodeConstant, &VCodeConstantData)> { 1914 self.constants.iter() 1915 } 1916 1917 /// Returns the data associated with the specified constant. 1918 pub fn get(&self, c: VCodeConstant) -> &VCodeConstantData { 1919 &self.constants[c] 1920 } 1921 1922 /// Checks if the given [VCodeConstantData] is registered as 1923 /// used by the pool. 1924 pub fn pool_uses(&self, constant: &VCodeConstantData) -> bool { 1925 match constant { 1926 VCodeConstantData::Pool(c, _) => self.pool_uses.contains_key(c), 1927 _ => false, 1928 } 1929 } 1930 } 1931 1932 /// A use of a constant by one or more VCode instructions; see [VCodeConstants]. 1933 #[derive(Clone, Copy, Debug, PartialEq, Eq)] 1934 pub struct VCodeConstant(u32); 1935 entity_impl!(VCodeConstant); 1936 1937 /// Identify the different types of constant that can be inserted into [VCodeConstants]. Tracking 1938 /// these separately instead of as raw byte buffers allows us to avoid some duplication. 1939 pub enum VCodeConstantData { 1940 /// A constant already present in the Cranelift IR 1941 /// [ConstantPool](crate::ir::constant::ConstantPool). 1942 Pool(Constant, ConstantData), 1943 /// A reference to a well-known constant value that is statically encoded within the compiler. 1944 WellKnown(&'static [u8]), 1945 /// A constant value generated during lowering; the value may depend on the instruction context 1946 /// which makes it difficult to de-duplicate--if possible, use other variants. 1947 Generated(ConstantData), 1948 /// A constant of at most 64 bits. These are deduplicated as 1949 /// well. Stored as a fixed-size array of `u8` so that we do not 1950 /// encounter endianness problems when cross-compiling. 1951 U64([u8; 8]), 1952 } 1953 impl VCodeConstantData { 1954 /// Retrieve the constant data as a byte slice. 1955 pub fn as_slice(&self) -> &[u8] { 1956 match self { 1957 VCodeConstantData::Pool(_, d) | VCodeConstantData::Generated(d) => d.as_slice(), 1958 VCodeConstantData::WellKnown(d) => d, 1959 VCodeConstantData::U64(value) => &value[..], 1960 } 1961 } 1962 1963 /// Calculate the alignment of the constant data. 1964 pub fn alignment(&self) -> u32 { 1965 if self.as_slice().len() <= 8 { 8 } else { 16 } 1966 } 1967 } 1968 1969 #[cfg(test)] 1970 mod test { 1971 use super::*; 1972 use std::mem::size_of; 1973 1974 #[test] 1975 fn size_of_constant_structs() { 1976 assert_eq!(size_of::<Constant>(), 4); 1977 assert_eq!(size_of::<VCodeConstant>(), 4); 1978 assert_eq!(size_of::<ConstantData>(), 3 * size_of::<usize>()); 1979 assert_eq!(size_of::<VCodeConstantData>(), 4 * size_of::<usize>()); 1980 assert_eq!( 1981 size_of::<PrimaryMap<VCodeConstant, VCodeConstantData>>(), 1982 3 * size_of::<usize>() 1983 ); 1984 // TODO The VCodeConstants structure's memory size could be further optimized. 1985 // With certain versions of Rust, each `HashMap` in `VCodeConstants` occupied at 1986 // least 48 bytes, making an empty `VCodeConstants` cost 120 bytes. 1987 } 1988 } 1989