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| 1 | const std = @import("std"); |
| 2 | const builtin = @import("builtin"); |
| 3 | const mem = std.mem; |
| 4 | const math = std.math; |
| 5 | const assert = std.debug.assert; |
| 6 | const Air = @import("../../Air.zig"); |
| 7 | const Zir = @import("../../Zir.zig"); |
| 8 | const Liveness = @import("../../Liveness.zig"); |
| 9 | const Type = @import("../../type.zig").Type; |
| 10 | const Value = @import("../../value.zig").Value; |
| 11 | const TypedValue = @import("../../TypedValue.zig"); |
| 12 | const link = @import("../../link.zig"); |
| 13 | const Module = @import("../../Module.zig"); |
| 14 | const Compilation = @import("../../Compilation.zig"); |
| 15 | const ErrorMsg = Module.ErrorMsg; |
| 16 | const Target = std.Target; |
| 17 | const Allocator = mem.Allocator; |
| 18 | const trace = @import("../../tracy.zig").trace; |
| 19 | const DW = std.dwarf; |
| 20 | const leb128 = std.leb; |
| 21 | const log = std.log.scoped(.codegen); |
| 22 | const build_options = @import("build_options"); |
| 23 | const RegisterManager = @import("../../register_manager.zig").RegisterManager; |
| 24 | |
| 25 | const GenerateSymbolError = @import("../../codegen.zig").GenerateSymbolError; |
| 26 | const FnResult = @import("../../codegen.zig").FnResult; |
| 27 | const DebugInfoOutput = @import("../../codegen.zig").DebugInfoOutput; |
| 28 | |
| 29 | const InnerError = error{ |
| 30 | OutOfMemory, |
| 31 | CodegenFail, |
| 32 | }; |
| 33 | |
| 34 | arch: std.Target.Cpu.Arch, |
| 35 | gpa: *Allocator, |
| 36 | air: Air, |
| 37 | liveness: Liveness, |
| 38 | bin_file: *link.File, |
| 39 | target: *const std.Target, |
| 40 | mod_fn: *const Module.Fn, |
| 41 | code: *std.ArrayList(u8), |
| 42 | debug_output: DebugInfoOutput, |
| 43 | err_msg: ?*ErrorMsg, |
| 44 | args: []MCValue, |
| 45 | ret_mcv: MCValue, |
| 46 | fn_type: Type, |
| 47 | arg_index: usize, |
| 48 | src_loc: Module.SrcLoc, |
| 49 | stack_align: u32, |
| 50 | |
| 51 | prev_di_line: u32, |
| 52 | prev_di_column: u32, |
| 53 | /// Byte offset within the source file of the ending curly. |
| 54 | end_di_line: u32, |
| 55 | end_di_column: u32, |
| 56 | /// Relative to the beginning of `code`. |
| 57 | prev_di_pc: usize, |
| 58 | |
| 59 | /// The value is an offset into the `Function` `code` from the beginning. |
| 60 | /// To perform the reloc, write 32-bit signed little-endian integer |
| 61 | /// which is a relative jump, based on the address following the reloc. |
| 62 | exitlude_jump_relocs: std.ArrayListUnmanaged(usize) = .{}, |
| 63 | |
| 64 | /// Whenever there is a runtime branch, we push a Branch onto this stack, |
| 65 | /// and pop it off when the runtime branch joins. This provides an "overlay" |
| 66 | /// of the table of mappings from instructions to `MCValue` from within the branch. |
| 67 | /// This way we can modify the `MCValue` for an instruction in different ways |
| 68 | /// within different branches. Special consideration is needed when a branch |
| 69 | /// joins with its parent, to make sure all instructions have the same MCValue |
| 70 | /// across each runtime branch upon joining. |
| 71 | branch_stack: *std.ArrayList(Branch), |
| 72 | |
| 73 | // Key is the block instruction |
| 74 | blocks: std.AutoHashMapUnmanaged(Air.Inst.Index, BlockData) = .{}, |
| 75 | |
| 76 | register_manager: RegisterManager(Self, Register, &callee_preserved_regs) = .{}, |
| 77 | /// Maps offset to what is stored there. |
| 78 | stack: std.AutoHashMapUnmanaged(u32, StackAllocation) = .{}, |
| 79 | |
| 80 | /// Offset from the stack base, representing the end of the stack frame. |
| 81 | max_end_stack: u32 = 0, |
| 82 | /// Represents the current end stack offset. If there is no existing slot |
| 83 | /// to place a new stack allocation, it goes here, and then bumps `max_end_stack`. |
| 84 | next_stack_offset: u32 = 0, |
| 85 | |
| 86 | /// Debug field, used to find bugs in the compiler. |
| 87 | air_bookkeeping: @TypeOf(air_bookkeeping_init) = air_bookkeeping_init, |
| 88 | |
| 89 | const air_bookkeeping_init = if (std.debug.runtime_safety) @as(usize, 0) else {}; |
| 90 | |
| 91 | const MCValue = union(enum) { |
| 92 | /// No runtime bits. `void` types, empty structs, u0, enums with 1 tag, etc. |
| 93 | /// TODO Look into deleting this tag and using `dead` instead, since every use |
| 94 | /// of MCValue.none should be instead looking at the type and noticing it is 0 bits. |
| 95 | none, |
| 96 | /// Control flow will not allow this value to be observed. |
| 97 | unreach, |
| 98 | /// No more references to this value remain. |
| 99 | dead, |
| 100 | /// The value is undefined. |
| 101 | undef, |
| 102 | /// A pointer-sized integer that fits in a register. |
| 103 | /// If the type is a pointer, this is the pointer address in virtual address space. |
| 104 | immediate: u64, |
| 105 | /// The constant was emitted into the code, at this offset. |
| 106 | /// If the type is a pointer, it means the pointer address is embedded in the code. |
| 107 | embedded_in_code: usize, |
| 108 | /// The value is a pointer to a constant which was emitted into the code, at this offset. |
| 109 | ptr_embedded_in_code: usize, |
| 110 | /// The value is in a target-specific register. |
| 111 | register: Register, |
| 112 | /// The value is in memory at a hard-coded address. |
| 113 | /// If the type is a pointer, it means the pointer address is at this memory location. |
| 114 | memory: u64, |
| 115 | /// The value is one of the stack variables. |
| 116 | /// If the type is a pointer, it means the pointer address is in the stack at this offset. |
| 117 | stack_offset: u32, |
| 118 | /// The value is a pointer to one of the stack variables (payload is stack offset). |
| 119 | ptr_stack_offset: u32, |
| 120 | /// The value is in the compare flags assuming an unsigned operation, |
| 121 | /// with this operator applied on top of it. |
| 122 | compare_flags_unsigned: math.CompareOperator, |
| 123 | /// The value is in the compare flags assuming a signed operation, |
| 124 | /// with this operator applied on top of it. |
| 125 | compare_flags_signed: math.CompareOperator, |
| 126 | |
| 127 | fn isMemory(mcv: MCValue) bool { |
| 128 | return switch (mcv) { |
| 129 | .embedded_in_code, .memory, .stack_offset => true, |
| 130 | else => false, |
| 131 | }; |
| 132 | } |
| 133 | |
| 134 | fn isImmediate(mcv: MCValue) bool { |
| 135 | return switch (mcv) { |
| 136 | .immediate => true, |
| 137 | else => false, |
| 138 | }; |
| 139 | } |
| 140 | |
| 141 | fn isMutable(mcv: MCValue) bool { |
| 142 | return switch (mcv) { |
| 143 | .none => unreachable, |
| 144 | .unreach => unreachable, |
| 145 | .dead => unreachable, |
| 146 | |
| 147 | .immediate, |
| 148 | .embedded_in_code, |
| 149 | .memory, |
| 150 | .compare_flags_unsigned, |
| 151 | .compare_flags_signed, |
| 152 | .ptr_stack_offset, |
| 153 | .ptr_embedded_in_code, |
| 154 | .undef, |
| 155 | => false, |
| 156 | |
| 157 | .register, |
| 158 | .stack_offset, |
| 159 | => true, |
| 160 | }; |
| 161 | } |
| 162 | }; |
| 163 | |
| 164 | const Branch = struct { |
| 165 | inst_table: std.AutoArrayHashMapUnmanaged(Air.Inst.Index, MCValue) = .{}, |
| 166 | |
| 167 | fn deinit(self: *Branch, gpa: *Allocator) void { |
| 168 | self.inst_table.deinit(gpa); |
| 169 | self.* = undefined; |
| 170 | } |
| 171 | }; |
| 172 | |
| 173 | const StackAllocation = struct { |
| 174 | inst: Air.Inst.Index, |
| 175 | /// TODO do we need size? should be determined by inst.ty.abiSize() |
| 176 | size: u32, |
| 177 | }; |
| 178 | |
| 179 | const BlockData = struct { |
| 180 | relocs: std.ArrayListUnmanaged(Reloc), |
| 181 | /// The first break instruction encounters `null` here and chooses a |
| 182 | /// machine code value for the block result, populating this field. |
| 183 | /// Following break instructions encounter that value and use it for |
| 184 | /// the location to store their block results. |
| 185 | mcv: MCValue, |
| 186 | }; |
| 187 | |
| 188 | const Reloc = union(enum) { |
| 189 | /// The value is an offset into the `Function` `code` from the beginning. |
| 190 | /// To perform the reloc, write 32-bit signed little-endian integer |
| 191 | /// which is a relative jump, based on the address following the reloc. |
| 192 | rel32: usize, |
| 193 | /// A branch in the ARM instruction set |
| 194 | arm_branch: struct { |
| 195 | pos: usize, |
| 196 | cond: @import("../arm/bits.zig").Condition, |
| 197 | }, |
| 198 | }; |
| 199 | |
| 200 | const BigTomb = struct { |
| 201 | function: *Self, |
| 202 | inst: Air.Inst.Index, |
| 203 | tomb_bits: Liveness.Bpi, |
| 204 | big_tomb_bits: u32, |
| 205 | bit_index: usize, |
| 206 | |
| 207 | fn feed(bt: *BigTomb, op_ref: Air.Inst.Ref) void { |
| 208 | const this_bit_index = bt.bit_index; |
| 209 | bt.bit_index += 1; |
| 210 | |
| 211 | const op_int = @enumToInt(op_ref); |
| 212 | if (op_int < Air.Inst.Ref.typed_value_map.len) return; |
| 213 | const op_index = @intCast(Air.Inst.Index, op_int - Air.Inst.Ref.typed_value_map.len); |
| 214 | |
| 215 | if (this_bit_index < Liveness.bpi - 1) { |
| 216 | const dies = @truncate(u1, bt.tomb_bits >> @intCast(Liveness.OperandInt, this_bit_index)) != 0; |
| 217 | if (!dies) return; |
| 218 | } else { |
| 219 | const big_bit_index = @intCast(u5, this_bit_index - (Liveness.bpi - 1)); |
| 220 | const dies = @truncate(u1, bt.big_tomb_bits >> big_bit_index) != 0; |
| 221 | if (!dies) return; |
| 222 | } |
| 223 | bt.function.processDeath(op_index); |
| 224 | } |
| 225 | |
| 226 | fn finishAir(bt: *BigTomb, result: MCValue) void { |
| 227 | const is_used = !bt.function.liveness.isUnused(bt.inst); |
| 228 | if (is_used) { |
| 229 | log.debug("%{d} => {}", .{ bt.inst, result }); |
| 230 | const branch = &bt.function.branch_stack.items[bt.function.branch_stack.items.len - 1]; |
| 231 | branch.inst_table.putAssumeCapacityNoClobber(bt.inst, result); |
| 232 | } |
| 233 | bt.function.finishAirBookkeeping(); |
| 234 | } |
| 235 | }; |
| 236 | |
| 237 | const Self = @This(); |
| 238 | |
| 239 | pub fn generate( |
| 240 | arch: std.Target.Cpu.Arch, |
| 241 | bin_file: *link.File, |
| 242 | src_loc: Module.SrcLoc, |
| 243 | module_fn: *Module.Fn, |
| 244 | air: Air, |
| 245 | liveness: Liveness, |
| 246 | code: *std.ArrayList(u8), |
| 247 | debug_output: DebugInfoOutput, |
| 248 | ) GenerateSymbolError!FnResult { |
| 249 | if (build_options.skip_non_native and builtin.cpu.arch != arch) { |
| 250 | @panic("Attempted to compile for architecture that was disabled by build configuration"); |
| 251 | } |
| 252 | |
| 253 | assert(module_fn.owner_decl.has_tv); |
| 254 | const fn_type = module_fn.owner_decl.ty; |
| 255 | |
| 256 | var branch_stack = std.ArrayList(Branch).init(bin_file.allocator); |
| 257 | defer { |
| 258 | assert(branch_stack.items.len == 1); |
| 259 | branch_stack.items[0].deinit(bin_file.allocator); |
| 260 | branch_stack.deinit(); |
| 261 | } |
| 262 | try branch_stack.append(.{}); |
| 263 | |
| 264 | var function = Self{ |
| 265 | .arch = arch, |
| 266 | .gpa = bin_file.allocator, |
| 267 | .air = air, |
| 268 | .liveness = liveness, |
| 269 | .target = &bin_file.options.target, |
| 270 | .bin_file = bin_file, |
| 271 | .mod_fn = module_fn, |
| 272 | .code = code, |
| 273 | .debug_output = debug_output, |
| 274 | .err_msg = null, |
| 275 | .args = undefined, // populated after `resolveCallingConventionValues` |
| 276 | .ret_mcv = undefined, // populated after `resolveCallingConventionValues` |
| 277 | .fn_type = fn_type, |
| 278 | .arg_index = 0, |
| 279 | .branch_stack = &branch_stack, |
| 280 | .src_loc = src_loc, |
| 281 | .stack_align = undefined, |
| 282 | .prev_di_pc = 0, |
| 283 | .prev_di_line = module_fn.lbrace_line, |
| 284 | .prev_di_column = module_fn.lbrace_column, |
| 285 | .end_di_line = module_fn.rbrace_line, |
| 286 | .end_di_column = module_fn.rbrace_column, |
| 287 | }; |
| 288 | defer function.stack.deinit(bin_file.allocator); |
| 289 | defer function.blocks.deinit(bin_file.allocator); |
| 290 | defer function.exitlude_jump_relocs.deinit(bin_file.allocator); |
| 291 | |
| 292 | var call_info = function.resolveCallingConventionValues(fn_type) catch |err| switch (err) { |
| 293 | error.CodegenFail => return FnResult{ .fail = function.err_msg.? }, |
| 294 | else => |e| return e, |
| 295 | }; |
| 296 | defer call_info.deinit(&function); |
| 297 | |
| 298 | function.args = call_info.args; |
| 299 | function.ret_mcv = call_info.return_value; |
| 300 | function.stack_align = call_info.stack_align; |
| 301 | function.max_end_stack = call_info.stack_byte_count; |
| 302 | |
| 303 | function.gen() catch |err| switch (err) { |
| 304 | error.CodegenFail => return FnResult{ .fail = function.err_msg.? }, |
| 305 | else => |e| return e, |
| 306 | }; |
| 307 | |
| 308 | if (function.err_msg) |em| { |
| 309 | return FnResult{ .fail = em }; |
| 310 | } else { |
| 311 | return FnResult{ .appended = {} }; |
| 312 | } |
| 313 | } |
| 314 | |
| 315 | fn gen(self: *Self) !void { |
| 316 | const cc = self.fn_type.fnCallingConvention(); |
| 317 | if (cc != .Naked) { |
| 318 | // TODO Finish function prologue and epilogue for aarch64. |
| 319 | |
| 320 | // stp fp, lr, [sp, #-16]! |
| 321 | // mov fp, sp |
| 322 | // sub sp, sp, #reloc |
| 323 | mem.writeIntLittle(u32, try self.code.addManyAsArray(4), Instruction.stp( |
| 324 | .x29, |
| 325 | .x30, |
| 326 | Register.sp, |
| 327 | Instruction.LoadStorePairOffset.pre_index(-16), |
| 328 | ).toU32()); |
| 329 | mem.writeIntLittle(u32, try self.code.addManyAsArray(4), Instruction.add(.x29, .xzr, 0, false).toU32()); |
| 330 | const backpatch_reloc = self.code.items.len; |
| 331 | try self.code.resize(backpatch_reloc + 4); |
| 332 | |
| 333 | try self.dbgSetPrologueEnd(); |
| 334 | |
| 335 | try self.genBody(self.air.getMainBody()); |
| 336 | |
| 337 | // Backpatch stack offset |
| 338 | const stack_end = self.max_end_stack; |
| 339 | const aligned_stack_end = mem.alignForward(stack_end, self.stack_align); |
| 340 | if (math.cast(u12, aligned_stack_end)) |size| { |
| 341 | mem.writeIntLittle(u32, self.code.items[backpatch_reloc..][0..4], Instruction.sub(.xzr, .xzr, size, false).toU32()); |
| 342 | } else |_| { |
| 343 | return self.failSymbol("TODO AArch64: allow larger stacks", .{}); |
| 344 | } |
| 345 | |
| 346 | try self.dbgSetEpilogueBegin(); |
| 347 | |
| 348 | // exitlude jumps |
| 349 | if (self.exitlude_jump_relocs.items.len == 1) { |
| 350 | // There is only one relocation. Hence, |
| 351 | // this relocation must be at the end of |
| 352 | // the code. Therefore, we can just delete |
| 353 | // the space initially reserved for the |
| 354 | // jump |
| 355 | self.code.items.len -= 4; |
| 356 | } else for (self.exitlude_jump_relocs.items) |jmp_reloc| { |
| 357 | const amt = @intCast(i32, self.code.items.len) - @intCast(i32, jmp_reloc + 8); |
| 358 | if (amt == -4) { |
| 359 | // This return is at the end of the |
| 360 | // code block. We can't just delete |
| 361 | // the space because there may be |
| 362 | // other jumps we already relocated to |
| 363 | // the address. Instead, insert a nop |
| 364 | mem.writeIntLittle(u32, self.code.items[jmp_reloc..][0..4], Instruction.nop().toU32()); |
| 365 | } else { |
| 366 | if (math.cast(i28, amt)) |offset| { |
| 367 | mem.writeIntLittle(u32, self.code.items[jmp_reloc..][0..4], Instruction.b(offset).toU32()); |
| 368 | } else |_| { |
| 369 | return self.failSymbol("exitlude jump is too large", .{}); |
| 370 | } |
| 371 | } |
| 372 | } |
| 373 | |
| 374 | // ldp fp, lr, [sp], #16 |
| 375 | mem.writeIntLittle(u32, try self.code.addManyAsArray(4), Instruction.ldp( |
| 376 | .x29, |
| 377 | .x30, |
| 378 | Register.sp, |
| 379 | Instruction.LoadStorePairOffset.post_index(16), |
| 380 | ).toU32()); |
| 381 | // add sp, sp, #stack_size |
| 382 | mem.writeIntLittle(u32, try self.code.addManyAsArray(4), Instruction.add(.xzr, .xzr, @intCast(u12, aligned_stack_end), false).toU32()); |
| 383 | // ret lr |
| 384 | mem.writeIntLittle(u32, try self.code.addManyAsArray(4), Instruction.ret(null).toU32()); |
| 385 | } else { |
| 386 | try self.dbgSetPrologueEnd(); |
| 387 | try self.genBody(self.air.getMainBody()); |
| 388 | try self.dbgSetEpilogueBegin(); |
| 389 | } |
| 390 | |
| 391 | // Drop them off at the rbrace. |
| 392 | try self.dbgAdvancePCAndLine(self.end_di_line, self.end_di_column); |
| 393 | } |
| 394 | |
| 395 | fn genBody(self: *Self, body: []const Air.Inst.Index) InnerError!void { |
| 396 | const air_tags = self.air.instructions.items(.tag); |
| 397 | |
| 398 | for (body) |inst| { |
| 399 | const old_air_bookkeeping = self.air_bookkeeping; |
| 400 | try self.ensureProcessDeathCapacity(Liveness.bpi); |
| 401 | |
| 402 | switch (air_tags[inst]) { |
| 403 | // zig fmt: off |
| 404 | .add, .ptr_add => try self.airAdd(inst), |
| 405 | .addwrap => try self.airAddWrap(inst), |
| 406 | .add_sat => try self.airAddSat(inst), |
| 407 | .sub, .ptr_sub => try self.airSub(inst), |
| 408 | .subwrap => try self.airSubWrap(inst), |
| 409 | .sub_sat => try self.airSubSat(inst), |
| 410 | .mul => try self.airMul(inst), |
| 411 | .mulwrap => try self.airMulWrap(inst), |
| 412 | .mul_sat => try self.airMulSat(inst), |
| 413 | .div => try self.airDiv(inst), |
| 414 | .rem => try self.airRem(inst), |
| 415 | .mod => try self.airMod(inst), |
| 416 | .shl, .shl_exact => try self.airShl(inst), |
| 417 | .shl_sat => try self.airShlSat(inst), |
| 418 | .min => try self.airMin(inst), |
| 419 | .max => try self.airMax(inst), |
| 420 | |
| 421 | .cmp_lt => try self.airCmp(inst, .lt), |
| 422 | .cmp_lte => try self.airCmp(inst, .lte), |
| 423 | .cmp_eq => try self.airCmp(inst, .eq), |
| 424 | .cmp_gte => try self.airCmp(inst, .gte), |
| 425 | .cmp_gt => try self.airCmp(inst, .gt), |
| 426 | .cmp_neq => try self.airCmp(inst, .neq), |
| 427 | |
| 428 | .bool_and => try self.airBoolOp(inst), |
| 429 | .bool_or => try self.airBoolOp(inst), |
| 430 | .bit_and => try self.airBitAnd(inst), |
| 431 | .bit_or => try self.airBitOr(inst), |
| 432 | .xor => try self.airXor(inst), |
| 433 | .shr => try self.airShr(inst), |
| 434 | |
| 435 | .alloc => try self.airAlloc(inst), |
| 436 | .ret_ptr => try self.airRetPtr(inst), |
| 437 | .arg => try self.airArg(inst), |
| 438 | .assembly => try self.airAsm(inst), |
| 439 | .bitcast => try self.airBitCast(inst), |
| 440 | .block => try self.airBlock(inst), |
| 441 | .br => try self.airBr(inst), |
| 442 | .breakpoint => try self.airBreakpoint(), |
| 443 | .fence => try self.airFence(), |
| 444 | .call => try self.airCall(inst), |
| 445 | .cond_br => try self.airCondBr(inst), |
| 446 | .dbg_stmt => try self.airDbgStmt(inst), |
| 447 | .fptrunc => try self.airFptrunc(inst), |
| 448 | .fpext => try self.airFpext(inst), |
| 449 | .intcast => try self.airIntCast(inst), |
| 450 | .trunc => try self.airTrunc(inst), |
| 451 | .bool_to_int => try self.airBoolToInt(inst), |
| 452 | .is_non_null => try self.airIsNonNull(inst), |
| 453 | .is_non_null_ptr => try self.airIsNonNullPtr(inst), |
| 454 | .is_null => try self.airIsNull(inst), |
| 455 | .is_null_ptr => try self.airIsNullPtr(inst), |
| 456 | .is_non_err => try self.airIsNonErr(inst), |
| 457 | .is_non_err_ptr => try self.airIsNonErrPtr(inst), |
| 458 | .is_err => try self.airIsErr(inst), |
| 459 | .is_err_ptr => try self.airIsErrPtr(inst), |
| 460 | .load => try self.airLoad(inst), |
| 461 | .loop => try self.airLoop(inst), |
| 462 | .not => try self.airNot(inst), |
| 463 | .ptrtoint => try self.airPtrToInt(inst), |
| 464 | .ret => try self.airRet(inst), |
| 465 | .ret_load => try self.airRetLoad(inst), |
| 466 | .store => try self.airStore(inst), |
| 467 | .struct_field_ptr=> try self.airStructFieldPtr(inst), |
| 468 | .struct_field_val=> try self.airStructFieldVal(inst), |
| 469 | .array_to_slice => try self.airArrayToSlice(inst), |
| 470 | .int_to_float => try self.airIntToFloat(inst), |
| 471 | .float_to_int => try self.airFloatToInt(inst), |
| 472 | .cmpxchg_strong => try self.airCmpxchg(inst), |
| 473 | .cmpxchg_weak => try self.airCmpxchg(inst), |
| 474 | .atomic_rmw => try self.airAtomicRmw(inst), |
| 475 | .atomic_load => try self.airAtomicLoad(inst), |
| 476 | .memcpy => try self.airMemcpy(inst), |
| 477 | .memset => try self.airMemset(inst), |
| 478 | .set_union_tag => try self.airSetUnionTag(inst), |
| 479 | .get_union_tag => try self.airGetUnionTag(inst), |
| 480 | .clz => try self.airClz(inst), |
| 481 | .ctz => try self.airCtz(inst), |
| 482 | |
| 483 | .atomic_store_unordered => try self.airAtomicStore(inst, .Unordered), |
| 484 | .atomic_store_monotonic => try self.airAtomicStore(inst, .Monotonic), |
| 485 | .atomic_store_release => try self.airAtomicStore(inst, .Release), |
| 486 | .atomic_store_seq_cst => try self.airAtomicStore(inst, .SeqCst), |
| 487 | |
| 488 | .struct_field_ptr_index_0 => try self.airStructFieldPtrIndex(inst, 0), |
| 489 | .struct_field_ptr_index_1 => try self.airStructFieldPtrIndex(inst, 1), |
| 490 | .struct_field_ptr_index_2 => try self.airStructFieldPtrIndex(inst, 2), |
| 491 | .struct_field_ptr_index_3 => try self.airStructFieldPtrIndex(inst, 3), |
| 492 | |
| 493 | .switch_br => try self.airSwitch(inst), |
| 494 | .slice_ptr => try self.airSlicePtr(inst), |
| 495 | .slice_len => try self.airSliceLen(inst), |
| 496 | |
| 497 | .array_elem_val => try self.airArrayElemVal(inst), |
| 498 | .slice_elem_val => try self.airSliceElemVal(inst), |
| 499 | .ptr_slice_elem_val => try self.airPtrSliceElemVal(inst), |
| 500 | .ptr_elem_val => try self.airPtrElemVal(inst), |
| 501 | .ptr_elem_ptr => try self.airPtrElemPtr(inst), |
| 502 | .ptr_ptr_elem_val => try self.airPtrPtrElemVal(inst), |
| 503 | |
| 504 | .constant => unreachable, // excluded from function bodies |
| 505 | .const_ty => unreachable, // excluded from function bodies |
| 506 | .unreach => self.finishAirBookkeeping(), |
| 507 | |
| 508 | .optional_payload => try self.airOptionalPayload(inst), |
| 509 | .optional_payload_ptr => try self.airOptionalPayloadPtr(inst), |
| 510 | .unwrap_errunion_err => try self.airUnwrapErrErr(inst), |
| 511 | .unwrap_errunion_payload => try self.airUnwrapErrPayload(inst), |
| 512 | .unwrap_errunion_err_ptr => try self.airUnwrapErrErrPtr(inst), |
| 513 | .unwrap_errunion_payload_ptr=> try self.airUnwrapErrPayloadPtr(inst), |
| 514 | |
| 515 | .wrap_optional => try self.airWrapOptional(inst), |
| 516 | .wrap_errunion_payload => try self.airWrapErrUnionPayload(inst), |
| 517 | .wrap_errunion_err => try self.airWrapErrUnionErr(inst), |
| 518 | // zig fmt: on |
| 519 | } |
| 520 | if (std.debug.runtime_safety) { |
| 521 | if (self.air_bookkeeping < old_air_bookkeeping + 1) { |
| 522 | std.debug.panic("in codegen.zig, handling of AIR instruction %{d} ('{}') did not do proper bookkeeping. Look for a missing call to finishAir.", .{ inst, air_tags[inst] }); |
| 523 | } |
| 524 | } |
| 525 | } |
| 526 | } |
| 527 | |
| 528 | fn dbgSetPrologueEnd(self: *Self) InnerError!void { |
| 529 | switch (self.debug_output) { |
| 530 | .dwarf => |dbg_out| { |
| 531 | try dbg_out.dbg_line.append(DW.LNS.set_prologue_end); |
| 532 | try self.dbgAdvancePCAndLine(self.prev_di_line, self.prev_di_column); |
| 533 | }, |
| 534 | .plan9 => {}, |
| 535 | .none => {}, |
| 536 | } |
| 537 | } |
| 538 | |
| 539 | fn dbgSetEpilogueBegin(self: *Self) InnerError!void { |
| 540 | switch (self.debug_output) { |
| 541 | .dwarf => |dbg_out| { |
| 542 | try dbg_out.dbg_line.append(DW.LNS.set_epilogue_begin); |
| 543 | try self.dbgAdvancePCAndLine(self.prev_di_line, self.prev_di_column); |
| 544 | }, |
| 545 | .plan9 => {}, |
| 546 | .none => {}, |
| 547 | } |
| 548 | } |
| 549 | |
| 550 | fn dbgAdvancePCAndLine(self: *Self, line: u32, column: u32) InnerError!void { |
| 551 | const delta_line = @intCast(i32, line) - @intCast(i32, self.prev_di_line); |
| 552 | const delta_pc: usize = self.code.items.len - self.prev_di_pc; |
| 553 | switch (self.debug_output) { |
| 554 | .dwarf => |dbg_out| { |
| 555 | // TODO Look into using the DWARF special opcodes to compress this data. |
| 556 | // It lets you emit single-byte opcodes that add different numbers to |
| 557 | // both the PC and the line number at the same time. |
| 558 | try dbg_out.dbg_line.ensureUnusedCapacity(11); |
| 559 | dbg_out.dbg_line.appendAssumeCapacity(DW.LNS.advance_pc); |
| 560 | leb128.writeULEB128(dbg_out.dbg_line.writer(), delta_pc) catch unreachable; |
| 561 | if (delta_line != 0) { |
| 562 | dbg_out.dbg_line.appendAssumeCapacity(DW.LNS.advance_line); |
| 563 | leb128.writeILEB128(dbg_out.dbg_line.writer(), delta_line) catch unreachable; |
| 564 | } |
| 565 | dbg_out.dbg_line.appendAssumeCapacity(DW.LNS.copy); |
| 566 | self.prev_di_pc = self.code.items.len; |
| 567 | self.prev_di_line = line; |
| 568 | self.prev_di_column = column; |
| 569 | self.prev_di_pc = self.code.items.len; |
| 570 | }, |
| 571 | .plan9 => |dbg_out| { |
| 572 | if (delta_pc <= 0) return; // only do this when the pc changes |
| 573 | // we have already checked the target in the linker to make sure it is compatable |
| 574 | const quant = @import("../../link/Plan9/aout.zig").getPCQuant(self.target.cpu.arch) catch unreachable; |
| 575 | |
| 576 | // increasing the line number |
| 577 | try @import("../../link/Plan9.zig").changeLine(dbg_out.dbg_line, delta_line); |
| 578 | // increasing the pc |
| 579 | const d_pc_p9 = @intCast(i64, delta_pc) - quant; |
| 580 | if (d_pc_p9 > 0) { |
| 581 | // minus one because if its the last one, we want to leave space to change the line which is one quanta |
| 582 | try dbg_out.dbg_line.append(@intCast(u8, @divExact(d_pc_p9, quant) + 128) - quant); |
| 583 | if (dbg_out.pcop_change_index.*) |pci| |
| 584 | dbg_out.dbg_line.items[pci] += 1; |
| 585 | dbg_out.pcop_change_index.* = @intCast(u32, dbg_out.dbg_line.items.len - 1); |
| 586 | } else if (d_pc_p9 == 0) { |
| 587 | // we don't need to do anything, because adding the quant does it for us |
| 588 | } else unreachable; |
| 589 | if (dbg_out.start_line.* == null) |
| 590 | dbg_out.start_line.* = self.prev_di_line; |
| 591 | dbg_out.end_line.* = line; |
| 592 | // only do this if the pc changed |
| 593 | self.prev_di_line = line; |
| 594 | self.prev_di_column = column; |
| 595 | self.prev_di_pc = self.code.items.len; |
| 596 | }, |
| 597 | .none => {}, |
| 598 | } |
| 599 | } |
| 600 | |
| 601 | /// Asserts there is already capacity to insert into top branch inst_table. |
| 602 | fn processDeath(self: *Self, inst: Air.Inst.Index) void { |
| 603 | const air_tags = self.air.instructions.items(.tag); |
| 604 | if (air_tags[inst] == .constant) return; // Constants are immortal. |
| 605 | // When editing this function, note that the logic must synchronize with `reuseOperand`. |
| 606 | const prev_value = self.getResolvedInstValue(inst); |
| 607 | const branch = &self.branch_stack.items[self.branch_stack.items.len - 1]; |
| 608 | branch.inst_table.putAssumeCapacity(inst, .dead); |
| 609 | switch (prev_value) { |
| 610 | .register => |reg| { |
| 611 | const canon_reg = toCanonicalReg(reg); |
| 612 | self.register_manager.freeReg(canon_reg); |
| 613 | }, |
| 614 | else => {}, // TODO process stack allocation death |
| 615 | } |
| 616 | } |
| 617 | |
| 618 | /// Called when there are no operands, and the instruction is always unreferenced. |
| 619 | fn finishAirBookkeeping(self: *Self) void { |
| 620 | if (std.debug.runtime_safety) { |
| 621 | self.air_bookkeeping += 1; |
| 622 | } |
| 623 | } |
| 624 | |
| 625 | fn finishAir(self: *Self, inst: Air.Inst.Index, result: MCValue, operands: [Liveness.bpi - 1]Air.Inst.Ref) void { |
| 626 | var tomb_bits = self.liveness.getTombBits(inst); |
| 627 | for (operands) |op| { |
| 628 | const dies = @truncate(u1, tomb_bits) != 0; |
| 629 | tomb_bits >>= 1; |
| 630 | if (!dies) continue; |
| 631 | const op_int = @enumToInt(op); |
| 632 | if (op_int < Air.Inst.Ref.typed_value_map.len) continue; |
| 633 | const op_index = @intCast(Air.Inst.Index, op_int - Air.Inst.Ref.typed_value_map.len); |
| 634 | self.processDeath(op_index); |
| 635 | } |
| 636 | const is_used = @truncate(u1, tomb_bits) == 0; |
| 637 | if (is_used) { |
| 638 | log.debug("%{d} => {}", .{ inst, result }); |
| 639 | const branch = &self.branch_stack.items[self.branch_stack.items.len - 1]; |
| 640 | branch.inst_table.putAssumeCapacityNoClobber(inst, result); |
| 641 | |
| 642 | switch (result) { |
| 643 | .register => |reg| { |
| 644 | // In some cases (such as bitcast), an operand |
| 645 | // may be the same MCValue as the result. If |
| 646 | // that operand died and was a register, it |
| 647 | // was freed by processDeath. We have to |
| 648 | // "re-allocate" the register. |
| 649 | if (self.register_manager.isRegFree(reg)) { |
| 650 | self.register_manager.getRegAssumeFree(reg, inst); |
| 651 | } |
| 652 | }, |
| 653 | else => {}, |
| 654 | } |
| 655 | } |
| 656 | self.finishAirBookkeeping(); |
| 657 | } |
| 658 | |
| 659 | fn ensureProcessDeathCapacity(self: *Self, additional_count: usize) !void { |
| 660 | const table = &self.branch_stack.items[self.branch_stack.items.len - 1].inst_table; |
| 661 | try table.ensureUnusedCapacity(self.gpa, additional_count); |
| 662 | } |
| 663 | |
| 664 | /// Adds a Type to the .debug_info at the current position. The bytes will be populated later, |
| 665 | /// after codegen for this symbol is done. |
| 666 | fn addDbgInfoTypeReloc(self: *Self, ty: Type) !void { |
| 667 | switch (self.debug_output) { |
| 668 | .dwarf => |dbg_out| { |
| 669 | assert(ty.hasCodeGenBits()); |
| 670 | const index = dbg_out.dbg_info.items.len; |
| 671 | try dbg_out.dbg_info.resize(index + 4); // DW.AT.type, DW.FORM.ref4 |
| 672 | |
| 673 | const gop = try dbg_out.dbg_info_type_relocs.getOrPut(self.gpa, ty); |
| 674 | if (!gop.found_existing) { |
| 675 | gop.value_ptr.* = .{ |
| 676 | .off = undefined, |
| 677 | .relocs = .{}, |
| 678 | }; |
| 679 | } |
| 680 | try gop.value_ptr.relocs.append(self.gpa, @intCast(u32, index)); |
| 681 | }, |
| 682 | .plan9 => {}, |
| 683 | .none => {}, |
| 684 | } |
| 685 | } |
| 686 | |
| 687 | fn allocMem(self: *Self, inst: Air.Inst.Index, abi_size: u32, abi_align: u32) !u32 { |
| 688 | if (abi_align > self.stack_align) |
| 689 | self.stack_align = abi_align; |
| 690 | // TODO find a free slot instead of always appending |
| 691 | const offset = mem.alignForwardGeneric(u32, self.next_stack_offset, abi_align); |
| 692 | self.next_stack_offset = offset + abi_size; |
| 693 | if (self.next_stack_offset > self.max_end_stack) |
| 694 | self.max_end_stack = self.next_stack_offset; |
| 695 | try self.stack.putNoClobber(self.gpa, offset, .{ |
| 696 | .inst = inst, |
| 697 | .size = abi_size, |
| 698 | }); |
| 699 | return offset; |
| 700 | } |
| 701 | |
| 702 | /// Use a pointer instruction as the basis for allocating stack memory. |
| 703 | fn allocMemPtr(self: *Self, inst: Air.Inst.Index) !u32 { |
| 704 | const elem_ty = self.air.typeOfIndex(inst).elemType(); |
| 705 | const abi_size = math.cast(u32, elem_ty.abiSize(self.target.*)) catch { |
| 706 | return self.fail("type '{}' too big to fit into stack frame", .{elem_ty}); |
| 707 | }; |
| 708 | // TODO swap this for inst.ty.ptrAlign |
| 709 | const abi_align = elem_ty.abiAlignment(self.target.*); |
| 710 | return self.allocMem(inst, abi_size, abi_align); |
| 711 | } |
| 712 | |
| 713 | fn allocRegOrMem(self: *Self, inst: Air.Inst.Index, reg_ok: bool) !MCValue { |
| 714 | const elem_ty = self.air.typeOfIndex(inst); |
| 715 | const abi_size = math.cast(u32, elem_ty.abiSize(self.target.*)) catch { |
| 716 | return self.fail("type '{}' too big to fit into stack frame", .{elem_ty}); |
| 717 | }; |
| 718 | const abi_align = elem_ty.abiAlignment(self.target.*); |
| 719 | if (abi_align > self.stack_align) |
| 720 | self.stack_align = abi_align; |
| 721 | |
| 722 | if (reg_ok) { |
| 723 | // Make sure the type can fit in a register before we try to allocate one. |
| 724 | const ptr_bits = self.target.cpu.arch.ptrBitWidth(); |
| 725 | const ptr_bytes: u64 = @divExact(ptr_bits, 8); |
| 726 | if (abi_size <= ptr_bytes) { |
| 727 | if (self.register_manager.tryAllocReg(inst, &.{})) |reg| { |
| 728 | return MCValue{ .register = registerAlias(reg, abi_size) }; |
| 729 | } |
| 730 | } |
| 731 | } |
| 732 | const stack_offset = try self.allocMem(inst, abi_size, abi_align); |
| 733 | return MCValue{ .stack_offset = stack_offset }; |
| 734 | } |
| 735 | |
| 736 | pub fn spillInstruction(self: *Self, reg: Register, inst: Air.Inst.Index) !void { |
| 737 | const stack_mcv = try self.allocRegOrMem(inst, false); |
| 738 | log.debug("spilling {d} to stack mcv {any}", .{ inst, stack_mcv }); |
| 739 | const reg_mcv = self.getResolvedInstValue(inst); |
| 740 | assert(reg == toCanonicalReg(reg_mcv.register)); |
| 741 | const branch = &self.branch_stack.items[self.branch_stack.items.len - 1]; |
| 742 | try branch.inst_table.put(self.gpa, inst, stack_mcv); |
| 743 | try self.genSetStack(self.air.typeOfIndex(inst), stack_mcv.stack_offset, reg_mcv); |
| 744 | } |
| 745 | |
| 746 | /// Copies a value to a register without tracking the register. The register is not considered |
| 747 | /// allocated. A second call to `copyToTmpRegister` may return the same register. |
| 748 | /// This can have a side effect of spilling instructions to the stack to free up a register. |
| 749 | fn copyToTmpRegister(self: *Self, ty: Type, mcv: MCValue) !Register { |
| 750 | const reg = try self.register_manager.allocReg(null, &.{}); |
| 751 | try self.genSetReg(ty, reg, mcv); |
| 752 | return reg; |
| 753 | } |
| 754 | |
| 755 | /// Allocates a new register and copies `mcv` into it. |
| 756 | /// `reg_owner` is the instruction that gets associated with the register in the register table. |
| 757 | /// This can have a side effect of spilling instructions to the stack to free up a register. |
| 758 | fn copyToNewRegister(self: *Self, reg_owner: Air.Inst.Index, mcv: MCValue) !MCValue { |
| 759 | const reg = try self.register_manager.allocReg(reg_owner, &.{}); |
| 760 | try self.genSetReg(self.air.typeOfIndex(reg_owner), reg, mcv); |
| 761 | return MCValue{ .register = reg }; |
| 762 | } |
| 763 | |
| 764 | fn airAlloc(self: *Self, inst: Air.Inst.Index) !void { |
| 765 | const stack_offset = try self.allocMemPtr(inst); |
| 766 | return self.finishAir(inst, .{ .ptr_stack_offset = stack_offset }, .{ .none, .none, .none }); |
| 767 | } |
| 768 | |
| 769 | fn airRetPtr(self: *Self, inst: Air.Inst.Index) !void { |
| 770 | const stack_offset = try self.allocMemPtr(inst); |
| 771 | return self.finishAir(inst, .{ .ptr_stack_offset = stack_offset }, .{ .none, .none, .none }); |
| 772 | } |
| 773 | |
| 774 | fn airFptrunc(self: *Self, inst: Air.Inst.Index) !void { |
| 775 | const ty_op = self.air.instructions.items(.data)[inst].ty_op; |
| 776 | const result: MCValue = if (self.liveness.isUnused(inst)) .dead else return self.fail("TODO implement airFptrunc for {}", .{self.target.cpu.arch}); |
| 777 | return self.finishAir(inst, result, .{ ty_op.operand, .none, .none }); |
| 778 | } |
| 779 | |
| 780 | fn airFpext(self: *Self, inst: Air.Inst.Index) !void { |
| 781 | const ty_op = self.air.instructions.items(.data)[inst].ty_op; |
| 782 | const result: MCValue = if (self.liveness.isUnused(inst)) .dead else return self.fail("TODO implement airFpext for {}", .{self.target.cpu.arch}); |
| 783 | return self.finishAir(inst, result, .{ ty_op.operand, .none, .none }); |
| 784 | } |
| 785 | |
| 786 | fn airIntCast(self: *Self, inst: Air.Inst.Index) !void { |
| 787 | const ty_op = self.air.instructions.items(.data)[inst].ty_op; |
| 788 | if (self.liveness.isUnused(inst)) |
| 789 | return self.finishAir(inst, .dead, .{ ty_op.operand, .none, .none }); |
| 790 | |
| 791 | const operand_ty = self.air.typeOf(ty_op.operand); |
| 792 | const operand = try self.resolveInst(ty_op.operand); |
| 793 | const info_a = operand_ty.intInfo(self.target.*); |
| 794 | const info_b = self.air.typeOfIndex(inst).intInfo(self.target.*); |
| 795 | if (info_a.signedness != info_b.signedness) |
| 796 | return self.fail("TODO gen intcast sign safety in semantic analysis", .{}); |
| 797 | |
| 798 | if (info_a.bits == info_b.bits) |
| 799 | return self.finishAir(inst, operand, .{ ty_op.operand, .none, .none }); |
| 800 | |
| 801 | return self.fail("TODO implement intCast for {}", .{self.target.cpu.arch}); |
| 802 | } |
| 803 | |
| 804 | fn airTrunc(self: *Self, inst: Air.Inst.Index) !void { |
| 805 | const ty_op = self.air.instructions.items(.data)[inst].ty_op; |
| 806 | if (self.liveness.isUnused(inst)) |
| 807 | return self.finishAir(inst, .dead, .{ ty_op.operand, .none, .none }); |
| 808 | |
| 809 | const operand = try self.resolveInst(ty_op.operand); |
| 810 | _ = operand; |
| 811 | return self.fail("TODO implement trunc for {}", .{self.target.cpu.arch}); |
| 812 | } |
| 813 | |
| 814 | fn airBoolToInt(self: *Self, inst: Air.Inst.Index) !void { |
| 815 | const un_op = self.air.instructions.items(.data)[inst].un_op; |
| 816 | const operand = try self.resolveInst(un_op); |
| 817 | const result: MCValue = if (self.liveness.isUnused(inst)) .dead else operand; |
| 818 | return self.finishAir(inst, result, .{ un_op, .none, .none }); |
| 819 | } |
| 820 | |
| 821 | fn airNot(self: *Self, inst: Air.Inst.Index) !void { |
| 822 | const ty_op = self.air.instructions.items(.data)[inst].ty_op; |
| 823 | const result: MCValue = if (self.liveness.isUnused(inst)) .dead else result: { |
| 824 | const operand = try self.resolveInst(ty_op.operand); |
| 825 | switch (operand) { |
| 826 | .dead => unreachable, |
| 827 | .unreach => unreachable, |
| 828 | .compare_flags_unsigned => |op| { |
| 829 | const r = MCValue{ |
| 830 | .compare_flags_unsigned = switch (op) { |
| 831 | .gte => .lt, |
| 832 | .gt => .lte, |
| 833 | .neq => .eq, |
| 834 | .lt => .gte, |
| 835 | .lte => .gt, |
| 836 | .eq => .neq, |
| 837 | }, |
| 838 | }; |
| 839 | break :result r; |
| 840 | }, |
| 841 | .compare_flags_signed => |op| { |
| 842 | const r = MCValue{ |
| 843 | .compare_flags_signed = switch (op) { |
| 844 | .gte => .lt, |
| 845 | .gt => .lte, |
| 846 | .neq => .eq, |
| 847 | .lt => .gte, |
| 848 | .lte => .gt, |
| 849 | .eq => .neq, |
| 850 | }, |
| 851 | }; |
| 852 | break :result r; |
| 853 | }, |
| 854 | else => {}, |
| 855 | } |
| 856 | |
| 857 | return self.fail("TODO implement NOT for {}", .{self.target.cpu.arch}); |
| 858 | }; |
| 859 | _ = result; |
| 860 | } |
| 861 | |
| 862 | fn airMin(self: *Self, inst: Air.Inst.Index) !void { |
| 863 | const bin_op = self.air.instructions.items(.data)[inst].bin_op; |
| 864 | const result: MCValue = if (self.liveness.isUnused(inst)) .dead else return self.fail("TODO implement min for {}", .{self.target.cpu.arch}); |
| 865 | return self.finishAir(inst, result, .{ bin_op.lhs, bin_op.rhs, .none }); |
| 866 | } |
| 867 | |
| 868 | fn airMax(self: *Self, inst: Air.Inst.Index) !void { |
| 869 | const bin_op = self.air.instructions.items(.data)[inst].bin_op; |
| 870 | const result: MCValue = if (self.liveness.isUnused(inst)) .dead else return self.fail("TODO implement max for {}", .{self.target.cpu.arch}); |
| 871 | return self.finishAir(inst, result, .{ bin_op.lhs, bin_op.rhs, .none }); |
| 872 | } |
| 873 | |
| 874 | fn airAdd(self: *Self, inst: Air.Inst.Index) !void { |
| 875 | const bin_op = self.air.instructions.items(.data)[inst].bin_op; |
| 876 | const result: MCValue = if (self.liveness.isUnused(inst)) .dead else return self.fail("TODO implement add for {}", .{self.target.cpu.arch}); |
| 877 | return self.finishAir(inst, result, .{ bin_op.lhs, bin_op.rhs, .none }); |
| 878 | } |
| 879 | |
| 880 | fn airAddWrap(self: *Self, inst: Air.Inst.Index) !void { |
| 881 | const bin_op = self.air.instructions.items(.data)[inst].bin_op; |
| 882 | const result: MCValue = if (self.liveness.isUnused(inst)) .dead else return self.fail("TODO implement addwrap for {}", .{self.target.cpu.arch}); |
| 883 | return self.finishAir(inst, result, .{ bin_op.lhs, bin_op.rhs, .none }); |
| 884 | } |
| 885 | |
| 886 | fn airAddSat(self: *Self, inst: Air.Inst.Index) !void { |
| 887 | const bin_op = self.air.instructions.items(.data)[inst].bin_op; |
| 888 | const result: MCValue = if (self.liveness.isUnused(inst)) .dead else return self.fail("TODO implement add_sat for {}", .{self.target.cpu.arch}); |
| 889 | return self.finishAir(inst, result, .{ bin_op.lhs, bin_op.rhs, .none }); |
| 890 | } |
| 891 | |
| 892 | fn airSub(self: *Self, inst: Air.Inst.Index) !void { |
| 893 | const bin_op = self.air.instructions.items(.data)[inst].bin_op; |
| 894 | const result: MCValue = if (self.liveness.isUnused(inst)) .dead else return self.fail("TODO implement sub for {}", .{self.target.cpu.arch}); |
| 895 | return self.finishAir(inst, result, .{ bin_op.lhs, bin_op.rhs, .none }); |
| 896 | } |
| 897 | |
| 898 | fn airSubWrap(self: *Self, inst: Air.Inst.Index) !void { |
| 899 | const bin_op = self.air.instructions.items(.data)[inst].bin_op; |
| 900 | const result: MCValue = if (self.liveness.isUnused(inst)) .dead else return self.fail("TODO implement subwrap for {}", .{self.target.cpu.arch}); |
| 901 | return self.finishAir(inst, result, .{ bin_op.lhs, bin_op.rhs, .none }); |
| 902 | } |
| 903 | |
| 904 | fn airSubSat(self: *Self, inst: Air.Inst.Index) !void { |
| 905 | const bin_op = self.air.instructions.items(.data)[inst].bin_op; |
| 906 | const result: MCValue = if (self.liveness.isUnused(inst)) .dead else return self.fail("TODO implement sub_sat for {}", .{self.target.cpu.arch}); |
| 907 | return self.finishAir(inst, result, .{ bin_op.lhs, bin_op.rhs, .none }); |
| 908 | } |
| 909 | |
| 910 | fn airMul(self: *Self, inst: Air.Inst.Index) !void { |
| 911 | const bin_op = self.air.instructions.items(.data)[inst].bin_op; |
| 912 | const result: MCValue = if (self.liveness.isUnused(inst)) .dead else return self.fail("TODO implement mul for {}", .{self.target.cpu.arch}); |
| 913 | return self.finishAir(inst, result, .{ bin_op.lhs, bin_op.rhs, .none }); |
| 914 | } |
| 915 | |
| 916 | fn airMulWrap(self: *Self, inst: Air.Inst.Index) !void { |
| 917 | const bin_op = self.air.instructions.items(.data)[inst].bin_op; |
| 918 | const result: MCValue = if (self.liveness.isUnused(inst)) .dead else return self.fail("TODO implement mulwrap for {}", .{self.target.cpu.arch}); |
| 919 | return self.finishAir(inst, result, .{ bin_op.lhs, bin_op.rhs, .none }); |
| 920 | } |
| 921 | |
| 922 | fn airMulSat(self: *Self, inst: Air.Inst.Index) !void { |
| 923 | const bin_op = self.air.instructions.items(.data)[inst].bin_op; |
| 924 | const result: MCValue = if (self.liveness.isUnused(inst)) .dead else return self.fail("TODO implement mul_sat for {}", .{self.target.cpu.arch}); |
| 925 | return self.finishAir(inst, result, .{ bin_op.lhs, bin_op.rhs, .none }); |
| 926 | } |
| 927 | |
| 928 | fn airDiv(self: *Self, inst: Air.Inst.Index) !void { |
| 929 | const bin_op = self.air.instructions.items(.data)[inst].bin_op; |
| 930 | const result: MCValue = if (self.liveness.isUnused(inst)) .dead else return self.fail("TODO implement div for {}", .{self.target.cpu.arch}); |
| 931 | return self.finishAir(inst, result, .{ bin_op.lhs, bin_op.rhs, .none }); |
| 932 | } |
| 933 | |
| 934 | fn airRem(self: *Self, inst: Air.Inst.Index) !void { |
| 935 | const bin_op = self.air.instructions.items(.data)[inst].bin_op; |
| 936 | const result: MCValue = if (self.liveness.isUnused(inst)) .dead else return self.fail("TODO implement rem for {}", .{self.target.cpu.arch}); |
| 937 | return self.finishAir(inst, result, .{ bin_op.lhs, bin_op.rhs, .none }); |
| 938 | } |
| 939 | |
| 940 | fn airMod(self: *Self, inst: Air.Inst.Index) !void { |
| 941 | const bin_op = self.air.instructions.items(.data)[inst].bin_op; |
| 942 | const result: MCValue = if (self.liveness.isUnused(inst)) .dead else return self.fail("TODO implement mod for {}", .{self.target.cpu.arch}); |
| 943 | return self.finishAir(inst, result, .{ bin_op.lhs, bin_op.rhs, .none }); |
| 944 | } |
| 945 | |
| 946 | fn airBitAnd(self: *Self, inst: Air.Inst.Index) !void { |
| 947 | const bin_op = self.air.instructions.items(.data)[inst].bin_op; |
| 948 | const result: MCValue = if (self.liveness.isUnused(inst)) .dead else return self.fail("TODO implement bitwise and for {}", .{self.target.cpu.arch}); |
| 949 | return self.finishAir(inst, result, .{ bin_op.lhs, bin_op.rhs, .none }); |
| 950 | } |
| 951 | |
| 952 | fn airBitOr(self: *Self, inst: Air.Inst.Index) !void { |
| 953 | const bin_op = self.air.instructions.items(.data)[inst].bin_op; |
| 954 | const result: MCValue = if (self.liveness.isUnused(inst)) .dead else return self.fail("TODO implement bitwise or for {}", .{self.target.cpu.arch}); |
| 955 | return self.finishAir(inst, result, .{ bin_op.lhs, bin_op.rhs, .none }); |
| 956 | } |
| 957 | |
| 958 | fn airXor(self: *Self, inst: Air.Inst.Index) !void { |
| 959 | const bin_op = self.air.instructions.items(.data)[inst].bin_op; |
| 960 | const result: MCValue = if (self.liveness.isUnused(inst)) .dead else return self.fail("TODO implement xor for {}", .{self.target.cpu.arch}); |
| 961 | return self.finishAir(inst, result, .{ bin_op.lhs, bin_op.rhs, .none }); |
| 962 | } |
| 963 | |
| 964 | fn airShl(self: *Self, inst: Air.Inst.Index) !void { |
| 965 | const bin_op = self.air.instructions.items(.data)[inst].bin_op; |
| 966 | const result: MCValue = if (self.liveness.isUnused(inst)) .dead else return self.fail("TODO implement shl for {}", .{self.target.cpu.arch}); |
| 967 | return self.finishAir(inst, result, .{ bin_op.lhs, bin_op.rhs, .none }); |
| 968 | } |
| 969 | |
| 970 | fn airShlSat(self: *Self, inst: Air.Inst.Index) !void { |
| 971 | const bin_op = self.air.instructions.items(.data)[inst].bin_op; |
| 972 | const result: MCValue = if (self.liveness.isUnused(inst)) .dead else return self.fail("TODO implement shl_sat for {}", .{self.target.cpu.arch}); |
| 973 | return self.finishAir(inst, result, .{ bin_op.lhs, bin_op.rhs, .none }); |
| 974 | } |
| 975 | |
| 976 | fn airShr(self: *Self, inst: Air.Inst.Index) !void { |
| 977 | const bin_op = self.air.instructions.items(.data)[inst].bin_op; |
| 978 | const result: MCValue = if (self.liveness.isUnused(inst)) .dead else return self.fail("TODO implement shr for {}", .{self.target.cpu.arch}); |
| 979 | return self.finishAir(inst, result, .{ bin_op.lhs, bin_op.rhs, .none }); |
| 980 | } |
| 981 | |
| 982 | fn airOptionalPayload(self: *Self, inst: Air.Inst.Index) !void { |
| 983 | const ty_op = self.air.instructions.items(.data)[inst].ty_op; |
| 984 | const result: MCValue = if (self.liveness.isUnused(inst)) .dead else return self.fail("TODO implement .optional_payload for {}", .{self.target.cpu.arch}); |
| 985 | return self.finishAir(inst, result, .{ ty_op.operand, .none, .none }); |
| 986 | } |
| 987 | |
| 988 | fn airOptionalPayloadPtr(self: *Self, inst: Air.Inst.Index) !void { |
| 989 | const ty_op = self.air.instructions.items(.data)[inst].ty_op; |
| 990 | const result: MCValue = if (self.liveness.isUnused(inst)) .dead else return self.fail("TODO implement .optional_payload_ptr for {}", .{self.target.cpu.arch}); |
| 991 | return self.finishAir(inst, result, .{ ty_op.operand, .none, .none }); |
| 992 | } |
| 993 | |
| 994 | fn airUnwrapErrErr(self: *Self, inst: Air.Inst.Index) !void { |
| 995 | const ty_op = self.air.instructions.items(.data)[inst].ty_op; |
| 996 | const result: MCValue = if (self.liveness.isUnused(inst)) .dead else return self.fail("TODO implement unwrap error union error for {}", .{self.target.cpu.arch}); |
| 997 | return self.finishAir(inst, result, .{ ty_op.operand, .none, .none }); |
| 998 | } |
| 999 | |
| 1000 | fn airUnwrapErrPayload(self: *Self, inst: Air.Inst.Index) !void { |
| 1001 | const ty_op = self.air.instructions.items(.data)[inst].ty_op; |
| 1002 | const result: MCValue = if (self.liveness.isUnused(inst)) .dead else return self.fail("TODO implement unwrap error union payload for {}", .{self.target.cpu.arch}); |
| 1003 | return self.finishAir(inst, result, .{ ty_op.operand, .none, .none }); |
| 1004 | } |
| 1005 | |
| 1006 | // *(E!T) -> E |
| 1007 | fn airUnwrapErrErrPtr(self: *Self, inst: Air.Inst.Index) !void { |
| 1008 | const ty_op = self.air.instructions.items(.data)[inst].ty_op; |
| 1009 | const result: MCValue = if (self.liveness.isUnused(inst)) .dead else return self.fail("TODO implement unwrap error union error ptr for {}", .{self.target.cpu.arch}); |
| 1010 | return self.finishAir(inst, result, .{ ty_op.operand, .none, .none }); |
| 1011 | } |
| 1012 | |
| 1013 | // *(E!T) -> *T |
| 1014 | fn airUnwrapErrPayloadPtr(self: *Self, inst: Air.Inst.Index) !void { |
| 1015 | const ty_op = self.air.instructions.items(.data)[inst].ty_op; |
| 1016 | const result: MCValue = if (self.liveness.isUnused(inst)) .dead else return self.fail("TODO implement unwrap error union payload ptr for {}", .{self.target.cpu.arch}); |
| 1017 | return self.finishAir(inst, result, .{ ty_op.operand, .none, .none }); |
| 1018 | } |
| 1019 | |
| 1020 | fn airWrapOptional(self: *Self, inst: Air.Inst.Index) !void { |
| 1021 | const ty_op = self.air.instructions.items(.data)[inst].ty_op; |
| 1022 | const result: MCValue = if (self.liveness.isUnused(inst)) .dead else result: { |
| 1023 | const optional_ty = self.air.typeOfIndex(inst); |
| 1024 | |
| 1025 | // Optional with a zero-bit payload type is just a boolean true |
| 1026 | if (optional_ty.abiSize(self.target.*) == 1) |
| 1027 | break :result MCValue{ .immediate = 1 }; |
| 1028 | |
| 1029 | return self.fail("TODO implement wrap optional for {}", .{self.target.cpu.arch}); |
| 1030 | }; |
| 1031 | return self.finishAir(inst, result, .{ ty_op.operand, .none, .none }); |
| 1032 | } |
| 1033 | |
| 1034 | /// T to E!T |
| 1035 | fn airWrapErrUnionPayload(self: *Self, inst: Air.Inst.Index) !void { |
| 1036 | const ty_op = self.air.instructions.items(.data)[inst].ty_op; |
| 1037 | const result: MCValue = if (self.liveness.isUnused(inst)) .dead else return self.fail("TODO implement wrap errunion payload for {}", .{self.target.cpu.arch}); |
| 1038 | return self.finishAir(inst, result, .{ ty_op.operand, .none, .none }); |
| 1039 | } |
| 1040 | |
| 1041 | /// E to E!T |
| 1042 | fn airWrapErrUnionErr(self: *Self, inst: Air.Inst.Index) !void { |
| 1043 | const ty_op = self.air.instructions.items(.data)[inst].ty_op; |
| 1044 | const result: MCValue = if (self.liveness.isUnused(inst)) .dead else return self.fail("TODO implement wrap errunion error for {}", .{self.target.cpu.arch}); |
| 1045 | return self.finishAir(inst, result, .{ ty_op.operand, .none, .none }); |
| 1046 | } |
| 1047 | |
| 1048 | fn airSlicePtr(self: *Self, inst: Air.Inst.Index) !void { |
| 1049 | const ty_op = self.air.instructions.items(.data)[inst].ty_op; |
| 1050 | const result: MCValue = if (self.liveness.isUnused(inst)) .dead else return self.fail("TODO implement slice_ptr for {}", .{self.target.cpu.arch}); |
| 1051 | return self.finishAir(inst, result, .{ ty_op.operand, .none, .none }); |
| 1052 | } |
| 1053 | |
| 1054 | fn airSliceLen(self: *Self, inst: Air.Inst.Index) !void { |
| 1055 | const ty_op = self.air.instructions.items(.data)[inst].ty_op; |
| 1056 | const result: MCValue = if (self.liveness.isUnused(inst)) .dead else return self.fail("TODO implement slice_len for {}", .{self.target.cpu.arch}); |
| 1057 | return self.finishAir(inst, result, .{ ty_op.operand, .none, .none }); |
| 1058 | } |
| 1059 | |
| 1060 | fn airSliceElemVal(self: *Self, inst: Air.Inst.Index) !void { |
| 1061 | const is_volatile = false; // TODO |
| 1062 | const bin_op = self.air.instructions.items(.data)[inst].bin_op; |
| 1063 | const result: MCValue = if (!is_volatile and self.liveness.isUnused(inst)) .dead else return self.fail("TODO implement slice_elem_val for {}", .{self.target.cpu.arch}); |
| 1064 | return self.finishAir(inst, result, .{ bin_op.lhs, bin_op.rhs, .none }); |
| 1065 | } |
| 1066 | |
| 1067 | fn airArrayElemVal(self: *Self, inst: Air.Inst.Index) !void { |
| 1068 | const bin_op = self.air.instructions.items(.data)[inst].bin_op; |
| 1069 | const result: MCValue = if (self.liveness.isUnused(inst)) .dead else return self.fail("TODO implement array_elem_val for {}", .{self.target.cpu.arch}); |
| 1070 | return self.finishAir(inst, result, .{ bin_op.lhs, bin_op.rhs, .none }); |
| 1071 | } |
| 1072 | |
| 1073 | fn airPtrSliceElemVal(self: *Self, inst: Air.Inst.Index) !void { |
| 1074 | const is_volatile = false; // TODO |
| 1075 | const bin_op = self.air.instructions.items(.data)[inst].bin_op; |
| 1076 | const result: MCValue = if (!is_volatile and self.liveness.isUnused(inst)) .dead else return self.fail("TODO implement ptr_slice_elem_val for {}", .{self.target.cpu.arch}); |
| 1077 | return self.finishAir(inst, result, .{ bin_op.lhs, bin_op.rhs, .none }); |
| 1078 | } |
| 1079 | |
| 1080 | fn airPtrElemVal(self: *Self, inst: Air.Inst.Index) !void { |
| 1081 | const is_volatile = false; // TODO |
| 1082 | const bin_op = self.air.instructions.items(.data)[inst].bin_op; |
| 1083 | const result: MCValue = if (!is_volatile and self.liveness.isUnused(inst)) .dead else return self.fail("TODO implement ptr_elem_val for {}", .{self.target.cpu.arch}); |
| 1084 | return self.finishAir(inst, result, .{ bin_op.lhs, bin_op.rhs, .none }); |
| 1085 | } |
| 1086 | |
| 1087 | fn airPtrElemPtr(self: *Self, inst: Air.Inst.Index) !void { |
| 1088 | const ty_pl = self.air.instructions.items(.data)[inst].ty_pl; |
| 1089 | const extra = self.air.extraData(Air.Bin, ty_pl.payload).data; |
| 1090 | const result: MCValue = if (self.liveness.isUnused(inst)) .dead else return self.fail("TODO implement ptr_elem_ptr for {}", .{self.target.cpu.arch}); |
| 1091 | return self.finishAir(inst, result, .{ extra.lhs, extra.rhs, .none }); |
| 1092 | } |
| 1093 | |
| 1094 | fn airPtrPtrElemVal(self: *Self, inst: Air.Inst.Index) !void { |
| 1095 | const is_volatile = false; // TODO |
| 1096 | const bin_op = self.air.instructions.items(.data)[inst].bin_op; |
| 1097 | const result: MCValue = if (!is_volatile and self.liveness.isUnused(inst)) .dead else return self.fail("TODO implement ptr_ptr_elem_val for {}", .{self.target.cpu.arch}); |
| 1098 | return self.finishAir(inst, result, .{ bin_op.lhs, bin_op.rhs, .none }); |
| 1099 | } |
| 1100 | |
| 1101 | fn airSetUnionTag(self: *Self, inst: Air.Inst.Index) !void { |
| 1102 | const bin_op = self.air.instructions.items(.data)[inst].bin_op; |
| 1103 | _ = bin_op; |
| 1104 | return self.fail("TODO implement airSetUnionTag for {}", .{self.target.cpu.arch}); |
| 1105 | } |
| 1106 | |
| 1107 | fn airGetUnionTag(self: *Self, inst: Air.Inst.Index) !void { |
| 1108 | const ty_op = self.air.instructions.items(.data)[inst].ty_op; |
| 1109 | const result: MCValue = if (self.liveness.isUnused(inst)) .dead else return self.fail("TODO implement airGetUnionTag for {}", .{self.target.cpu.arch}); |
| 1110 | return self.finishAir(inst, result, .{ ty_op.operand, .none, .none }); |
| 1111 | } |
| 1112 | |
| 1113 | fn airClz(self: *Self, inst: Air.Inst.Index) !void { |
| 1114 | const ty_op = self.air.instructions.items(.data)[inst].ty_op; |
| 1115 | const result: MCValue = if (self.liveness.isUnused(inst)) .dead else return self.fail("TODO implement airClz for {}", .{self.target.cpu.arch}); |
| 1116 | return self.finishAir(inst, result, .{ ty_op.operand, .none, .none }); |
| 1117 | } |
| 1118 | |
| 1119 | fn airCtz(self: *Self, inst: Air.Inst.Index) !void { |
| 1120 | const ty_op = self.air.instructions.items(.data)[inst].ty_op; |
| 1121 | const result: MCValue = if (self.liveness.isUnused(inst)) .dead else return self.fail("TODO implement airCtz for {}", .{self.target.cpu.arch}); |
| 1122 | return self.finishAir(inst, result, .{ ty_op.operand, .none, .none }); |
| 1123 | } |
| 1124 | |
| 1125 | fn reuseOperand(self: *Self, inst: Air.Inst.Index, operand: Air.Inst.Ref, op_index: Liveness.OperandInt, mcv: MCValue) bool { |
| 1126 | if (!self.liveness.operandDies(inst, op_index)) |
| 1127 | return false; |
| 1128 | |
| 1129 | switch (mcv) { |
| 1130 | .register => |reg| { |
| 1131 | // If it's in the registers table, need to associate the register with the |
| 1132 | // new instruction. |
| 1133 | if (reg.allocIndex()) |index| { |
| 1134 | if (!self.register_manager.isRegFree(reg)) { |
| 1135 | self.register_manager.registers[index] = inst; |
| 1136 | } |
| 1137 | } |
| 1138 | log.debug("%{d} => {} (reused)", .{ inst, reg }); |
| 1139 | }, |
| 1140 | .stack_offset => |off| { |
| 1141 | log.debug("%{d} => stack offset {d} (reused)", .{ inst, off }); |
| 1142 | }, |
| 1143 | else => return false, |
| 1144 | } |
| 1145 | |
| 1146 | // Prevent the operand deaths processing code from deallocating it. |
| 1147 | self.liveness.clearOperandDeath(inst, op_index); |
| 1148 | |
| 1149 | // That makes us responsible for doing the rest of the stuff that processDeath would have done. |
| 1150 | const branch = &self.branch_stack.items[self.branch_stack.items.len - 1]; |
| 1151 | branch.inst_table.putAssumeCapacity(Air.refToIndex(operand).?, .dead); |
| 1152 | |
| 1153 | return true; |
| 1154 | } |
| 1155 | |
| 1156 | fn load(self: *Self, dst_mcv: MCValue, ptr: MCValue, ptr_ty: Type) InnerError!void { |
| 1157 | const elem_ty = ptr_ty.elemType(); |
| 1158 | switch (ptr) { |
| 1159 | .none => unreachable, |
| 1160 | .undef => unreachable, |
| 1161 | .unreach => unreachable, |
| 1162 | .dead => unreachable, |
| 1163 | .compare_flags_unsigned => unreachable, |
| 1164 | .compare_flags_signed => unreachable, |
| 1165 | .immediate => |imm| try self.setRegOrMem(elem_ty, dst_mcv, .{ .memory = imm }), |
| 1166 | .ptr_stack_offset => |off| try self.setRegOrMem(elem_ty, dst_mcv, .{ .stack_offset = off }), |
| 1167 | .ptr_embedded_in_code => |off| { |
| 1168 | try self.setRegOrMem(elem_ty, dst_mcv, .{ .embedded_in_code = off }); |
| 1169 | }, |
| 1170 | .embedded_in_code => { |
| 1171 | return self.fail("TODO implement loading from MCValue.embedded_in_code", .{}); |
| 1172 | }, |
| 1173 | .register => { |
| 1174 | return self.fail("TODO implement loading from MCValue.register for {}", .{self.target.cpu.arch}); |
| 1175 | }, |
| 1176 | .memory => |addr| { |
| 1177 | const reg = try self.register_manager.allocReg(null, &.{}); |
| 1178 | try self.genSetReg(ptr_ty, reg, .{ .memory = addr }); |
| 1179 | try self.load(dst_mcv, .{ .register = reg }, ptr_ty); |
| 1180 | }, |
| 1181 | .stack_offset => { |
| 1182 | return self.fail("TODO implement loading from MCValue.stack_offset", .{}); |
| 1183 | }, |
| 1184 | } |
| 1185 | } |
| 1186 | |
| 1187 | fn airLoad(self: *Self, inst: Air.Inst.Index) !void { |
| 1188 | const ty_op = self.air.instructions.items(.data)[inst].ty_op; |
| 1189 | const elem_ty = self.air.typeOfIndex(inst); |
| 1190 | const result: MCValue = result: { |
| 1191 | if (!elem_ty.hasCodeGenBits()) |
| 1192 | break :result MCValue.none; |
| 1193 | |
| 1194 | const ptr = try self.resolveInst(ty_op.operand); |
| 1195 | const is_volatile = self.air.typeOf(ty_op.operand).isVolatilePtr(); |
| 1196 | if (self.liveness.isUnused(inst) and !is_volatile) |
| 1197 | break :result MCValue.dead; |
| 1198 | |
| 1199 | const dst_mcv: MCValue = blk: { |
| 1200 | if (self.reuseOperand(inst, ty_op.operand, 0, ptr)) { |
| 1201 | // The MCValue that holds the pointer can be re-used as the value. |
| 1202 | break :blk ptr; |
| 1203 | } else { |
| 1204 | break :blk try self.allocRegOrMem(inst, true); |
| 1205 | } |
| 1206 | }; |
| 1207 | try self.load(dst_mcv, ptr, self.air.typeOf(ty_op.operand)); |
| 1208 | break :result dst_mcv; |
| 1209 | }; |
| 1210 | return self.finishAir(inst, result, .{ ty_op.operand, .none, .none }); |
| 1211 | } |
| 1212 | |
| 1213 | fn airStore(self: *Self, inst: Air.Inst.Index) !void { |
| 1214 | const bin_op = self.air.instructions.items(.data)[inst].bin_op; |
| 1215 | const ptr = try self.resolveInst(bin_op.lhs); |
| 1216 | const value = try self.resolveInst(bin_op.rhs); |
| 1217 | const elem_ty = self.air.typeOf(bin_op.rhs); |
| 1218 | switch (ptr) { |
| 1219 | .none => unreachable, |
| 1220 | .undef => unreachable, |
| 1221 | .unreach => unreachable, |
| 1222 | .dead => unreachable, |
| 1223 | .compare_flags_unsigned => unreachable, |
| 1224 | .compare_flags_signed => unreachable, |
| 1225 | .immediate => |imm| { |
| 1226 | try self.setRegOrMem(elem_ty, .{ .memory = imm }, value); |
| 1227 | }, |
| 1228 | .ptr_stack_offset => |off| { |
| 1229 | try self.genSetStack(elem_ty, off, value); |
| 1230 | }, |
| 1231 | .ptr_embedded_in_code => |off| { |
| 1232 | try self.setRegOrMem(elem_ty, .{ .embedded_in_code = off }, value); |
| 1233 | }, |
| 1234 | .embedded_in_code => { |
| 1235 | return self.fail("TODO implement storing to MCValue.embedded_in_code", .{}); |
| 1236 | }, |
| 1237 | .register => { |
| 1238 | return self.fail("TODO implement storing to MCValue.register", .{}); |
| 1239 | }, |
| 1240 | .memory => { |
| 1241 | return self.fail("TODO implement storing to MCValue.memory", .{}); |
| 1242 | }, |
| 1243 | .stack_offset => { |
| 1244 | return self.fail("TODO implement storing to MCValue.stack_offset", .{}); |
| 1245 | }, |
| 1246 | } |
| 1247 | return self.finishAir(inst, .dead, .{ bin_op.lhs, bin_op.rhs, .none }); |
| 1248 | } |
| 1249 | |
| 1250 | fn airStructFieldPtr(self: *Self, inst: Air.Inst.Index) !void { |
| 1251 | const ty_pl = self.air.instructions.items(.data)[inst].ty_pl; |
| 1252 | const extra = self.air.extraData(Air.StructField, ty_pl.payload).data; |
| 1253 | return self.structFieldPtr(extra.struct_operand, ty_pl.ty, extra.field_index); |
| 1254 | } |
| 1255 | |
| 1256 | fn airStructFieldPtrIndex(self: *Self, inst: Air.Inst.Index, index: u8) !void { |
| 1257 | const ty_op = self.air.instructions.items(.data)[inst].ty_op; |
| 1258 | return self.structFieldPtr(ty_op.operand, ty_op.ty, index); |
| 1259 | } |
| 1260 | fn structFieldPtr(self: *Self, operand: Air.Inst.Ref, ty: Air.Inst.Ref, index: u32) !void { |
| 1261 | _ = self; |
| 1262 | _ = operand; |
| 1263 | _ = ty; |
| 1264 | _ = index; |
| 1265 | return self.fail("TODO implement codegen struct_field_ptr", .{}); |
| 1266 | //return self.finishAir(inst, result, .{ extra.struct_ptr, .none, .none }); |
| 1267 | } |
| 1268 | |
| 1269 | fn airStructFieldVal(self: *Self, inst: Air.Inst.Index) !void { |
| 1270 | const ty_pl = self.air.instructions.items(.data)[inst].ty_pl; |
| 1271 | const extra = self.air.extraData(Air.StructField, ty_pl.payload).data; |
| 1272 | _ = extra; |
| 1273 | return self.fail("TODO implement codegen struct_field_val", .{}); |
| 1274 | //return self.finishAir(inst, result, .{ extra.struct_ptr, .none, .none }); |
| 1275 | } |
| 1276 | |
| 1277 | fn armOperandShouldBeRegister(self: *Self, mcv: MCValue) !bool { |
| 1278 | return switch (mcv) { |
| 1279 | .none => unreachable, |
| 1280 | .undef => unreachable, |
| 1281 | .dead, .unreach => unreachable, |
| 1282 | .compare_flags_unsigned => unreachable, |
| 1283 | .compare_flags_signed => unreachable, |
| 1284 | .ptr_stack_offset => unreachable, |
| 1285 | .ptr_embedded_in_code => unreachable, |
| 1286 | .immediate => |imm| blk: { |
| 1287 | if (imm > std.math.maxInt(u32)) return self.fail("TODO ARM binary arithmetic immediate larger than u32", .{}); |
| 1288 | |
| 1289 | // Load immediate into register if it doesn't fit |
| 1290 | // in an operand |
| 1291 | break :blk Instruction.Operand.fromU32(@intCast(u32, imm)) == null; |
| 1292 | }, |
| 1293 | .register => true, |
| 1294 | .stack_offset, |
| 1295 | .embedded_in_code, |
| 1296 | .memory, |
| 1297 | => true, |
| 1298 | }; |
| 1299 | } |
| 1300 | |
| 1301 | fn genArmBinOp(self: *Self, inst: Air.Inst.Index, op_lhs: Air.Inst.Ref, op_rhs: Air.Inst.Ref, op: Air.Inst.Tag) !MCValue { |
| 1302 | // In the case of bitshifts, the type of rhs is different |
| 1303 | // from the resulting type |
| 1304 | const ty = self.air.typeOf(op_lhs); |
| 1305 | |
| 1306 | switch (ty.zigTypeTag()) { |
| 1307 | .Float => return self.fail("TODO ARM binary operations on floats", .{}), |
| 1308 | .Vector => return self.fail("TODO ARM binary operations on vectors", .{}), |
| 1309 | .Bool => { |
| 1310 | return self.genArmBinIntOp(inst, op_lhs, op_rhs, op, 1, .unsigned); |
| 1311 | }, |
| 1312 | .Int => { |
| 1313 | const int_info = ty.intInfo(self.target.*); |
| 1314 | return self.genArmBinIntOp(inst, op_lhs, op_rhs, op, int_info.bits, int_info.signedness); |
| 1315 | }, |
| 1316 | else => unreachable, |
| 1317 | } |
| 1318 | } |
| 1319 | |
| 1320 | fn genArmBinIntOp( |
| 1321 | self: *Self, |
| 1322 | inst: Air.Inst.Index, |
| 1323 | op_lhs: Air.Inst.Ref, |
| 1324 | op_rhs: Air.Inst.Ref, |
| 1325 | op: Air.Inst.Tag, |
| 1326 | bits: u16, |
| 1327 | signedness: std.builtin.Signedness, |
| 1328 | ) !MCValue { |
| 1329 | if (bits > 32) { |
| 1330 | return self.fail("TODO ARM binary operations on integers > u32/i32", .{}); |
| 1331 | } |
| 1332 | |
| 1333 | const lhs = try self.resolveInst(op_lhs); |
| 1334 | const rhs = try self.resolveInst(op_rhs); |
| 1335 | |
| 1336 | const lhs_is_register = lhs == .register; |
| 1337 | const rhs_is_register = rhs == .register; |
| 1338 | const lhs_should_be_register = switch (op) { |
| 1339 | .shr, .shl => true, |
| 1340 | else => try self.armOperandShouldBeRegister(lhs), |
| 1341 | }; |
| 1342 | const rhs_should_be_register = try self.armOperandShouldBeRegister(rhs); |
| 1343 | const reuse_lhs = lhs_is_register and self.reuseOperand(inst, op_lhs, 0, lhs); |
| 1344 | const reuse_rhs = !reuse_lhs and rhs_is_register and self.reuseOperand(inst, op_rhs, 1, rhs); |
| 1345 | const can_swap_lhs_and_rhs = switch (op) { |
| 1346 | .shr, .shl => false, |
| 1347 | else => true, |
| 1348 | }; |
| 1349 | |
| 1350 | // Destination must be a register |
| 1351 | var dst_mcv: MCValue = undefined; |
| 1352 | var lhs_mcv = lhs; |
| 1353 | var rhs_mcv = rhs; |
| 1354 | var swap_lhs_and_rhs = false; |
| 1355 | |
| 1356 | // Allocate registers for operands and/or destination |
| 1357 | const branch = &self.branch_stack.items[self.branch_stack.items.len - 1]; |
| 1358 | if (reuse_lhs) { |
| 1359 | // Allocate 0 or 1 registers |
| 1360 | if (!rhs_is_register and rhs_should_be_register) { |
| 1361 | rhs_mcv = MCValue{ .register = try self.register_manager.allocReg(Air.refToIndex(op_rhs).?, &.{lhs.register}) }; |
| 1362 | branch.inst_table.putAssumeCapacity(Air.refToIndex(op_rhs).?, rhs_mcv); |
| 1363 | } |
| 1364 | dst_mcv = lhs; |
| 1365 | } else if (reuse_rhs and can_swap_lhs_and_rhs) { |
| 1366 | // Allocate 0 or 1 registers |
| 1367 | if (!lhs_is_register and lhs_should_be_register) { |
| 1368 | lhs_mcv = MCValue{ .register = try self.register_manager.allocReg(Air.refToIndex(op_lhs).?, &.{rhs.register}) }; |
| 1369 | branch.inst_table.putAssumeCapacity(Air.refToIndex(op_lhs).?, lhs_mcv); |
| 1370 | } |
| 1371 | dst_mcv = rhs; |
| 1372 | |
| 1373 | swap_lhs_and_rhs = true; |
| 1374 | } else { |
| 1375 | // Allocate 1 or 2 registers |
| 1376 | if (lhs_should_be_register and rhs_should_be_register) { |
| 1377 | if (lhs_is_register and rhs_is_register) { |
| 1378 | dst_mcv = MCValue{ .register = try self.register_manager.allocReg(inst, &.{ lhs.register, rhs.register }) }; |
| 1379 | } else if (lhs_is_register) { |
| 1380 | // Move RHS to register |
| 1381 | dst_mcv = MCValue{ .register = try self.register_manager.allocReg(inst, &.{lhs.register}) }; |
| 1382 | rhs_mcv = dst_mcv; |
| 1383 | } else if (rhs_is_register) { |
| 1384 | // Move LHS to register |
| 1385 | dst_mcv = MCValue{ .register = try self.register_manager.allocReg(inst, &.{rhs.register}) }; |
| 1386 | lhs_mcv = dst_mcv; |
| 1387 | } else { |
| 1388 | // Move LHS and RHS to register |
| 1389 | const regs = try self.register_manager.allocRegs(2, .{ inst, Air.refToIndex(op_rhs).? }, &.{}); |
| 1390 | lhs_mcv = MCValue{ .register = regs[0] }; |
| 1391 | rhs_mcv = MCValue{ .register = regs[1] }; |
| 1392 | dst_mcv = lhs_mcv; |
| 1393 | |
| 1394 | branch.inst_table.putAssumeCapacity(Air.refToIndex(op_rhs).?, rhs_mcv); |
| 1395 | } |
| 1396 | } else if (lhs_should_be_register) { |
| 1397 | // RHS is immediate |
| 1398 | if (lhs_is_register) { |
| 1399 | dst_mcv = MCValue{ .register = try self.register_manager.allocReg(inst, &.{lhs.register}) }; |
| 1400 | } else { |
| 1401 | dst_mcv = MCValue{ .register = try self.register_manager.allocReg(inst, &.{}) }; |
| 1402 | lhs_mcv = dst_mcv; |
| 1403 | } |
| 1404 | } else if (rhs_should_be_register and can_swap_lhs_and_rhs) { |
| 1405 | // LHS is immediate |
| 1406 | if (rhs_is_register) { |
| 1407 | dst_mcv = MCValue{ .register = try self.register_manager.allocReg(inst, &.{rhs.register}) }; |
| 1408 | } else { |
| 1409 | dst_mcv = MCValue{ .register = try self.register_manager.allocReg(inst, &.{}) }; |
| 1410 | rhs_mcv = dst_mcv; |
| 1411 | } |
| 1412 | |
| 1413 | swap_lhs_and_rhs = true; |
| 1414 | } else unreachable; // binary operation on two immediates |
| 1415 | } |
| 1416 | |
| 1417 | // Move the operands to the newly allocated registers |
| 1418 | if (lhs_mcv == .register and !lhs_is_register) { |
| 1419 | try self.genSetReg(self.air.typeOf(op_lhs), lhs_mcv.register, lhs); |
| 1420 | } |
| 1421 | if (rhs_mcv == .register and !rhs_is_register) { |
| 1422 | try self.genSetReg(self.air.typeOf(op_rhs), rhs_mcv.register, rhs); |
| 1423 | } |
| 1424 | |
| 1425 | try self.genArmBinOpCode( |
| 1426 | dst_mcv.register, |
| 1427 | lhs_mcv, |
| 1428 | rhs_mcv, |
| 1429 | swap_lhs_and_rhs, |
| 1430 | op, |
| 1431 | signedness, |
| 1432 | ); |
| 1433 | return dst_mcv; |
| 1434 | } |
| 1435 | |
| 1436 | fn genArmBinOpCode( |
| 1437 | self: *Self, |
| 1438 | dst_reg: Register, |
| 1439 | lhs_mcv: MCValue, |
| 1440 | rhs_mcv: MCValue, |
| 1441 | swap_lhs_and_rhs: bool, |
| 1442 | op: Air.Inst.Tag, |
| 1443 | signedness: std.builtin.Signedness, |
| 1444 | ) !void { |
| 1445 | assert(lhs_mcv == .register or rhs_mcv == .register); |
| 1446 | |
| 1447 | const op1 = if (swap_lhs_and_rhs) rhs_mcv.register else lhs_mcv.register; |
| 1448 | const op2 = if (swap_lhs_and_rhs) lhs_mcv else rhs_mcv; |
| 1449 | |
| 1450 | const operand = switch (op2) { |
| 1451 | .none => unreachable, |
| 1452 | .undef => unreachable, |
| 1453 | .dead, .unreach => unreachable, |
| 1454 | .compare_flags_unsigned => unreachable, |
| 1455 | .compare_flags_signed => unreachable, |
| 1456 | .ptr_stack_offset => unreachable, |
| 1457 | .ptr_embedded_in_code => unreachable, |
| 1458 | .immediate => |imm| Instruction.Operand.fromU32(@intCast(u32, imm)).?, |
| 1459 | .register => |reg| Instruction.Operand.reg(reg, Instruction.Operand.Shift.none), |
| 1460 | .stack_offset, |
| 1461 | .embedded_in_code, |
| 1462 | .memory, |
| 1463 | => unreachable, |
| 1464 | }; |
| 1465 | |
| 1466 | switch (op) { |
| 1467 | .add => { |
| 1468 | mem.writeIntLittle(u32, try self.code.addManyAsArray(4), Instruction.add(.al, dst_reg, op1, operand).toU32()); |
| 1469 | }, |
| 1470 | .sub => { |
| 1471 | if (swap_lhs_and_rhs) { |
| 1472 | mem.writeIntLittle(u32, try self.code.addManyAsArray(4), Instruction.rsb(.al, dst_reg, op1, operand).toU32()); |
| 1473 | } else { |
| 1474 | mem.writeIntLittle(u32, try self.code.addManyAsArray(4), Instruction.sub(.al, dst_reg, op1, operand).toU32()); |
| 1475 | } |
| 1476 | }, |
| 1477 | .bool_and, .bit_and => { |
| 1478 | mem.writeIntLittle(u32, try self.code.addManyAsArray(4), Instruction.@"and"(.al, dst_reg, op1, operand).toU32()); |
| 1479 | }, |
| 1480 | .bool_or, .bit_or => { |
| 1481 | mem.writeIntLittle(u32, try self.code.addManyAsArray(4), Instruction.orr(.al, dst_reg, op1, operand).toU32()); |
| 1482 | }, |
| 1483 | .not, .xor => { |
| 1484 | mem.writeIntLittle(u32, try self.code.addManyAsArray(4), Instruction.eor(.al, dst_reg, op1, operand).toU32()); |
| 1485 | }, |
| 1486 | .cmp_eq => { |
| 1487 | mem.writeIntLittle(u32, try self.code.addManyAsArray(4), Instruction.cmp(.al, op1, operand).toU32()); |
| 1488 | }, |
| 1489 | .shl => { |
| 1490 | assert(!swap_lhs_and_rhs); |
| 1491 | const shift_amount = switch (operand) { |
| 1492 | .Register => |reg_op| Instruction.ShiftAmount.reg(@intToEnum(Register, reg_op.rm)), |
| 1493 | .Immediate => |imm_op| Instruction.ShiftAmount.imm(@intCast(u5, imm_op.imm)), |
| 1494 | }; |
| 1495 | mem.writeIntLittle(u32, try self.code.addManyAsArray(4), Instruction.lsl(.al, dst_reg, op1, shift_amount).toU32()); |
| 1496 | }, |
| 1497 | .shr => { |
| 1498 | assert(!swap_lhs_and_rhs); |
| 1499 | const shift_amount = switch (operand) { |
| 1500 | .Register => |reg_op| Instruction.ShiftAmount.reg(@intToEnum(Register, reg_op.rm)), |
| 1501 | .Immediate => |imm_op| Instruction.ShiftAmount.imm(@intCast(u5, imm_op.imm)), |
| 1502 | }; |
| 1503 | |
| 1504 | const shr = switch (signedness) { |
| 1505 | .signed => Instruction.asr, |
| 1506 | .unsigned => Instruction.lsr, |
| 1507 | }; |
| 1508 | mem.writeIntLittle(u32, try self.code.addManyAsArray(4), shr(.al, dst_reg, op1, shift_amount).toU32()); |
| 1509 | }, |
| 1510 | else => unreachable, // not a binary instruction |
| 1511 | } |
| 1512 | } |
| 1513 | |
| 1514 | fn genArmMul(self: *Self, inst: Air.Inst.Index, op_lhs: Air.Inst.Ref, op_rhs: Air.Inst.Ref) !MCValue { |
| 1515 | const lhs = try self.resolveInst(op_lhs); |
| 1516 | const rhs = try self.resolveInst(op_rhs); |
| 1517 | |
| 1518 | const lhs_is_register = lhs == .register; |
| 1519 | const rhs_is_register = rhs == .register; |
| 1520 | const reuse_lhs = lhs_is_register and self.reuseOperand(inst, op_lhs, 0, lhs); |
| 1521 | const reuse_rhs = !reuse_lhs and rhs_is_register and self.reuseOperand(inst, op_rhs, 1, rhs); |
| 1522 | |
| 1523 | // Destination must be a register |
| 1524 | // LHS must be a register |
| 1525 | // RHS must be a register |
| 1526 | var dst_mcv: MCValue = undefined; |
| 1527 | var lhs_mcv: MCValue = lhs; |
| 1528 | var rhs_mcv: MCValue = rhs; |
| 1529 | |
| 1530 | // Allocate registers for operands and/or destination |
| 1531 | const branch = &self.branch_stack.items[self.branch_stack.items.len - 1]; |
| 1532 | if (reuse_lhs) { |
| 1533 | // Allocate 0 or 1 registers |
| 1534 | if (!rhs_is_register) { |
| 1535 | rhs_mcv = MCValue{ .register = try self.register_manager.allocReg(Air.refToIndex(op_rhs).?, &.{lhs.register}) }; |
| 1536 | branch.inst_table.putAssumeCapacity(Air.refToIndex(op_rhs).?, rhs_mcv); |
| 1537 | } |
| 1538 | dst_mcv = lhs; |
| 1539 | } else if (reuse_rhs) { |
| 1540 | // Allocate 0 or 1 registers |
| 1541 | if (!lhs_is_register) { |
| 1542 | lhs_mcv = MCValue{ .register = try self.register_manager.allocReg(Air.refToIndex(op_lhs).?, &.{rhs.register}) }; |
| 1543 | branch.inst_table.putAssumeCapacity(Air.refToIndex(op_lhs).?, lhs_mcv); |
| 1544 | } |
| 1545 | dst_mcv = rhs; |
| 1546 | } else { |
| 1547 | // Allocate 1 or 2 registers |
| 1548 | if (lhs_is_register and rhs_is_register) { |
| 1549 | dst_mcv = MCValue{ .register = try self.register_manager.allocReg(inst, &.{ lhs.register, rhs.register }) }; |
| 1550 | } else if (lhs_is_register) { |
| 1551 | // Move RHS to register |
| 1552 | dst_mcv = MCValue{ .register = try self.register_manager.allocReg(inst, &.{lhs.register}) }; |
| 1553 | rhs_mcv = dst_mcv; |
| 1554 | } else if (rhs_is_register) { |
| 1555 | // Move LHS to register |
| 1556 | dst_mcv = MCValue{ .register = try self.register_manager.allocReg(inst, &.{rhs.register}) }; |
| 1557 | lhs_mcv = dst_mcv; |
| 1558 | } else { |
| 1559 | // Move LHS and RHS to register |
| 1560 | const regs = try self.register_manager.allocRegs(2, .{ inst, Air.refToIndex(op_rhs).? }, &.{}); |
| 1561 | lhs_mcv = MCValue{ .register = regs[0] }; |
| 1562 | rhs_mcv = MCValue{ .register = regs[1] }; |
| 1563 | dst_mcv = lhs_mcv; |
| 1564 | |
| 1565 | branch.inst_table.putAssumeCapacity(Air.refToIndex(op_rhs).?, rhs_mcv); |
| 1566 | } |
| 1567 | } |
| 1568 | |
| 1569 | // Move the operands to the newly allocated registers |
| 1570 | if (!lhs_is_register) { |
| 1571 | try self.genSetReg(self.air.typeOf(op_lhs), lhs_mcv.register, lhs); |
| 1572 | } |
| 1573 | if (!rhs_is_register) { |
| 1574 | try self.genSetReg(self.air.typeOf(op_rhs), rhs_mcv.register, rhs); |
| 1575 | } |
| 1576 | |
| 1577 | mem.writeIntLittle(u32, try self.code.addManyAsArray(4), Instruction.mul(.al, dst_mcv.register, lhs_mcv.register, rhs_mcv.register).toU32()); |
| 1578 | return dst_mcv; |
| 1579 | } |
| 1580 | |
| 1581 | fn genArgDbgInfo(self: *Self, inst: Air.Inst.Index, mcv: MCValue) !void { |
| 1582 | const ty_str = self.air.instructions.items(.data)[inst].ty_str; |
| 1583 | const zir = &self.mod_fn.owner_decl.getFileScope().zir; |
| 1584 | const name = zir.nullTerminatedString(ty_str.str); |
| 1585 | const name_with_null = name.ptr[0 .. name.len + 1]; |
| 1586 | const ty = self.air.getRefType(ty_str.ty); |
| 1587 | |
| 1588 | switch (mcv) { |
| 1589 | .register => |reg| { |
| 1590 | switch (self.debug_output) { |
| 1591 | .dwarf => |dbg_out| { |
| 1592 | try dbg_out.dbg_info.ensureUnusedCapacity(3); |
| 1593 | dbg_out.dbg_info.appendAssumeCapacity(link.File.Elf.abbrev_parameter); |
| 1594 | dbg_out.dbg_info.appendSliceAssumeCapacity(&[2]u8{ // DW.AT.location, DW.FORM.exprloc |
| 1595 | 1, // ULEB128 dwarf expression length |
| 1596 | reg.dwarfLocOp(), |
| 1597 | }); |
| 1598 | try dbg_out.dbg_info.ensureUnusedCapacity(5 + name_with_null.len); |
| 1599 | try self.addDbgInfoTypeReloc(ty); // DW.AT.type, DW.FORM.ref4 |
| 1600 | dbg_out.dbg_info.appendSliceAssumeCapacity(name_with_null); // DW.AT.name, DW.FORM.string |
| 1601 | }, |
| 1602 | .plan9 => {}, |
| 1603 | .none => {}, |
| 1604 | } |
| 1605 | }, |
| 1606 | .stack_offset => {}, |
| 1607 | else => {}, |
| 1608 | } |
| 1609 | } |
| 1610 | |
| 1611 | fn airArg(self: *Self, inst: Air.Inst.Index) !void { |
| 1612 | const arg_index = self.arg_index; |
| 1613 | self.arg_index += 1; |
| 1614 | |
| 1615 | const ty = self.air.typeOfIndex(inst); |
| 1616 | |
| 1617 | const result = self.args[arg_index]; |
| 1618 | const mcv = switch (result) { |
| 1619 | // Copy registers to the stack |
| 1620 | .register => |reg| blk: { |
| 1621 | const abi_size = math.cast(u32, ty.abiSize(self.target.*)) catch { |
| 1622 | return self.fail("type '{}' too big to fit into stack frame", .{ty}); |
| 1623 | }; |
| 1624 | const abi_align = ty.abiAlignment(self.target.*); |
| 1625 | const stack_offset = try self.allocMem(inst, abi_size, abi_align); |
| 1626 | try self.genSetStack(ty, stack_offset, MCValue{ .register = reg }); |
| 1627 | |
| 1628 | break :blk MCValue{ .stack_offset = stack_offset }; |
| 1629 | }, |
| 1630 | else => result, |
| 1631 | }; |
| 1632 | try self.genArgDbgInfo(inst, mcv); |
| 1633 | |
| 1634 | if (self.liveness.isUnused(inst)) |
| 1635 | return self.finishAirBookkeeping(); |
| 1636 | |
| 1637 | switch (mcv) { |
| 1638 | .register => |reg| { |
| 1639 | self.register_manager.getRegAssumeFree(toCanonicalReg(reg), inst); |
| 1640 | }, |
| 1641 | else => {}, |
| 1642 | } |
| 1643 | |
| 1644 | return self.finishAir(inst, mcv, .{ .none, .none, .none }); |
| 1645 | } |
| 1646 | |
| 1647 | fn airBreakpoint(self: *Self) !void { |
| 1648 | mem.writeIntLittle(u32, try self.code.addManyAsArray(4), Instruction.brk(1).toU32()); |
| 1649 | return self.finishAirBookkeeping(); |
| 1650 | } |
| 1651 | |
| 1652 | fn airFence(self: *Self) !void { |
| 1653 | return self.fail("TODO implement fence() for {}", .{self.target.cpu.arch}); |
| 1654 | //return self.finishAirBookkeeping(); |
| 1655 | } |
| 1656 | |
| 1657 | fn airCall(self: *Self, inst: Air.Inst.Index) !void { |
| 1658 | const pl_op = self.air.instructions.items(.data)[inst].pl_op; |
| 1659 | const fn_ty = self.air.typeOf(pl_op.operand); |
| 1660 | const callee = pl_op.operand; |
| 1661 | const extra = self.air.extraData(Air.Call, pl_op.payload); |
| 1662 | const args = @bitCast([]const Air.Inst.Ref, self.air.extra[extra.end..][0..extra.data.args_len]); |
| 1663 | |
| 1664 | var info = try self.resolveCallingConventionValues(fn_ty); |
| 1665 | defer info.deinit(self); |
| 1666 | |
| 1667 | // Due to incremental compilation, how function calls are generated depends |
| 1668 | // on linking. |
| 1669 | if (self.bin_file.tag == link.File.Elf.base_tag or self.bin_file.tag == link.File.Coff.base_tag) { |
| 1670 | for (info.args) |mc_arg, arg_i| { |
| 1671 | const arg = args[arg_i]; |
| 1672 | const arg_ty = self.air.typeOf(arg); |
| 1673 | const arg_mcv = try self.resolveInst(args[arg_i]); |
| 1674 | |
| 1675 | switch (mc_arg) { |
| 1676 | .none => continue, |
| 1677 | .undef => unreachable, |
| 1678 | .immediate => unreachable, |
| 1679 | .unreach => unreachable, |
| 1680 | .dead => unreachable, |
| 1681 | .embedded_in_code => unreachable, |
| 1682 | .memory => unreachable, |
| 1683 | .compare_flags_signed => unreachable, |
| 1684 | .compare_flags_unsigned => unreachable, |
| 1685 | .register => |reg| { |
| 1686 | try self.register_manager.getReg(reg, null); |
| 1687 | try self.genSetReg(arg_ty, reg, arg_mcv); |
| 1688 | }, |
| 1689 | .stack_offset => { |
| 1690 | return self.fail("TODO implement calling with parameters in memory", .{}); |
| 1691 | }, |
| 1692 | .ptr_stack_offset => { |
| 1693 | return self.fail("TODO implement calling with MCValue.ptr_stack_offset arg", .{}); |
| 1694 | }, |
| 1695 | .ptr_embedded_in_code => { |
| 1696 | return self.fail("TODO implement calling with MCValue.ptr_embedded_in_code arg", .{}); |
| 1697 | }, |
| 1698 | } |
| 1699 | } |
| 1700 | |
| 1701 | if (self.air.value(callee)) |func_value| { |
| 1702 | if (func_value.castTag(.function)) |func_payload| { |
| 1703 | const func = func_payload.data; |
| 1704 | const ptr_bits = self.target.cpu.arch.ptrBitWidth(); |
| 1705 | const ptr_bytes: u64 = @divExact(ptr_bits, 8); |
| 1706 | const got_addr = if (self.bin_file.cast(link.File.Elf)) |elf_file| blk: { |
| 1707 | const got = &elf_file.program_headers.items[elf_file.phdr_got_index.?]; |
| 1708 | break :blk @intCast(u32, got.p_vaddr + func.owner_decl.link.elf.offset_table_index * ptr_bytes); |
| 1709 | } else if (self.bin_file.cast(link.File.Coff)) |coff_file| |
| 1710 | coff_file.offset_table_virtual_address + func.owner_decl.link.coff.offset_table_index * ptr_bytes |
| 1711 | else |
| 1712 | unreachable; |
| 1713 | |
| 1714 | try self.genSetReg(Type.initTag(.usize), .x30, .{ .memory = got_addr }); |
| 1715 | |
| 1716 | mem.writeIntLittle(u32, try self.code.addManyAsArray(4), Instruction.blr(.x30).toU32()); |
| 1717 | } else if (func_value.castTag(.extern_fn)) |_| { |
| 1718 | return self.fail("TODO implement calling extern functions", .{}); |
| 1719 | } else { |
| 1720 | return self.fail("TODO implement calling bitcasted functions", .{}); |
| 1721 | } |
| 1722 | } else { |
| 1723 | return self.fail("TODO implement calling runtime known function pointer", .{}); |
| 1724 | } |
| 1725 | } else if (self.bin_file.cast(link.File.MachO)) |macho_file| { |
| 1726 | for (info.args) |mc_arg, arg_i| { |
| 1727 | const arg = args[arg_i]; |
| 1728 | const arg_ty = self.air.typeOf(arg); |
| 1729 | const arg_mcv = try self.resolveInst(args[arg_i]); |
| 1730 | // Here we do not use setRegOrMem even though the logic is similar, because |
| 1731 | // the function call will move the stack pointer, so the offsets are different. |
| 1732 | switch (mc_arg) { |
| 1733 | .none => continue, |
| 1734 | .register => |reg| { |
| 1735 | try self.register_manager.getReg(reg, null); |
| 1736 | try self.genSetReg(arg_ty, reg, arg_mcv); |
| 1737 | }, |
| 1738 | .stack_offset => { |
| 1739 | // Here we need to emit instructions like this: |
| 1740 | // mov qword ptr [rsp + stack_offset], x |
| 1741 | return self.fail("TODO implement calling with parameters in memory", .{}); |
| 1742 | }, |
| 1743 | .ptr_stack_offset => { |
| 1744 | return self.fail("TODO implement calling with MCValue.ptr_stack_offset arg", .{}); |
| 1745 | }, |
| 1746 | .ptr_embedded_in_code => { |
| 1747 | return self.fail("TODO implement calling with MCValue.ptr_embedded_in_code arg", .{}); |
| 1748 | }, |
| 1749 | .undef => unreachable, |
| 1750 | .immediate => unreachable, |
| 1751 | .unreach => unreachable, |
| 1752 | .dead => unreachable, |
| 1753 | .embedded_in_code => unreachable, |
| 1754 | .memory => unreachable, |
| 1755 | .compare_flags_signed => unreachable, |
| 1756 | .compare_flags_unsigned => unreachable, |
| 1757 | } |
| 1758 | } |
| 1759 | |
| 1760 | if (self.air.value(callee)) |func_value| { |
| 1761 | if (func_value.castTag(.function)) |func_payload| { |
| 1762 | const func = func_payload.data; |
| 1763 | // TODO I'm hacking my way through here by repurposing .memory for storing |
| 1764 | // index to the GOT target symbol index. |
| 1765 | try self.genSetReg(Type.initTag(.u64), .x30, .{ |
| 1766 | .memory = func.owner_decl.link.macho.local_sym_index, |
| 1767 | }); |
| 1768 | // blr x30 |
| 1769 | mem.writeIntLittle(u32, try self.code.addManyAsArray(4), Instruction.blr(.x30).toU32()); |
| 1770 | } else if (func_value.castTag(.extern_fn)) |func_payload| { |
| 1771 | const decl = func_payload.data; |
| 1772 | const n_strx = try macho_file.addExternFn(mem.spanZ(decl.name)); |
| 1773 | const offset = blk: { |
| 1774 | const offset = @intCast(u32, self.code.items.len); |
| 1775 | // bl |
| 1776 | mem.writeIntLittle(u32, try self.code.addManyAsArray(4), Instruction.bl(0).toU32()); |
| 1777 | break :blk offset; |
| 1778 | }; |
| 1779 | // Add relocation to the decl. |
| 1780 | try macho_file.active_decl.?.link.macho.relocs.append(self.bin_file.allocator, .{ |
| 1781 | .offset = offset, |
| 1782 | .target = .{ .global = n_strx }, |
| 1783 | .addend = 0, |
| 1784 | .subtractor = null, |
| 1785 | .pcrel = true, |
| 1786 | .length = 2, |
| 1787 | .@"type" = @enumToInt(std.macho.reloc_type_arm64.ARM64_RELOC_BRANCH26), |
| 1788 | }); |
| 1789 | } else { |
| 1790 | return self.fail("TODO implement calling bitcasted functions", .{}); |
| 1791 | } |
| 1792 | } else { |
| 1793 | return self.fail("TODO implement calling runtime known function pointer", .{}); |
| 1794 | } |
| 1795 | } else if (self.bin_file.cast(link.File.Plan9)) |p9| { |
| 1796 | for (info.args) |mc_arg, arg_i| { |
| 1797 | const arg = args[arg_i]; |
| 1798 | const arg_ty = self.air.typeOf(arg); |
| 1799 | const arg_mcv = try self.resolveInst(args[arg_i]); |
| 1800 | |
| 1801 | switch (mc_arg) { |
| 1802 | .none => continue, |
| 1803 | .undef => unreachable, |
| 1804 | .immediate => unreachable, |
| 1805 | .unreach => unreachable, |
| 1806 | .dead => unreachable, |
| 1807 | .embedded_in_code => unreachable, |
| 1808 | .memory => unreachable, |
| 1809 | .compare_flags_signed => unreachable, |
| 1810 | .compare_flags_unsigned => unreachable, |
| 1811 | .register => |reg| { |
| 1812 | try self.register_manager.getReg(reg, null); |
| 1813 | try self.genSetReg(arg_ty, reg, arg_mcv); |
| 1814 | }, |
| 1815 | .stack_offset => { |
| 1816 | return self.fail("TODO implement calling with parameters in memory", .{}); |
| 1817 | }, |
| 1818 | .ptr_stack_offset => { |
| 1819 | return self.fail("TODO implement calling with MCValue.ptr_stack_offset arg", .{}); |
| 1820 | }, |
| 1821 | .ptr_embedded_in_code => { |
| 1822 | return self.fail("TODO implement calling with MCValue.ptr_embedded_in_code arg", .{}); |
| 1823 | }, |
| 1824 | } |
| 1825 | } |
| 1826 | if (self.air.value(callee)) |func_value| { |
| 1827 | if (func_value.castTag(.function)) |func_payload| { |
| 1828 | try p9.seeDecl(func_payload.data.owner_decl); |
| 1829 | const ptr_bits = self.target.cpu.arch.ptrBitWidth(); |
| 1830 | const ptr_bytes: u64 = @divExact(ptr_bits, 8); |
| 1831 | const got_addr = p9.bases.data; |
| 1832 | const got_index = func_payload.data.owner_decl.link.plan9.got_index.?; |
| 1833 | const fn_got_addr = got_addr + got_index * ptr_bytes; |
| 1834 | |
| 1835 | try self.genSetReg(Type.initTag(.usize), .x30, .{ .memory = fn_got_addr }); |
| 1836 | |
| 1837 | mem.writeIntLittle(u32, try self.code.addManyAsArray(4), Instruction.blr(.x30).toU32()); |
| 1838 | } else if (func_value.castTag(.extern_fn)) |_| { |
| 1839 | return self.fail("TODO implement calling extern functions", .{}); |
| 1840 | } else { |
| 1841 | return self.fail("TODO implement calling bitcasted functions", .{}); |
| 1842 | } |
| 1843 | } else { |
| 1844 | return self.fail("TODO implement calling runtime known function pointer", .{}); |
| 1845 | } |
| 1846 | } else unreachable; |
| 1847 | |
| 1848 | const result: MCValue = result: { |
| 1849 | switch (info.return_value) { |
| 1850 | .register => |reg| { |
| 1851 | if (Register.allocIndex(reg) == null) { |
| 1852 | // Save function return value in a callee saved register |
| 1853 | break :result try self.copyToNewRegister(inst, info.return_value); |
| 1854 | } |
| 1855 | }, |
| 1856 | else => {}, |
| 1857 | } |
| 1858 | break :result info.return_value; |
| 1859 | }; |
| 1860 | |
| 1861 | if (args.len <= Liveness.bpi - 2) { |
| 1862 | var buf = [1]Air.Inst.Ref{.none} ** (Liveness.bpi - 1); |
| 1863 | buf[0] = callee; |
| 1864 | std.mem.copy(Air.Inst.Ref, buf[1..], args); |
| 1865 | return self.finishAir(inst, result, buf); |
| 1866 | } |
| 1867 | var bt = try self.iterateBigTomb(inst, 1 + args.len); |
| 1868 | bt.feed(callee); |
| 1869 | for (args) |arg| { |
| 1870 | bt.feed(arg); |
| 1871 | } |
| 1872 | return bt.finishAir(result); |
| 1873 | } |
| 1874 | |
| 1875 | fn ret(self: *Self, mcv: MCValue) !void { |
| 1876 | const ret_ty = self.fn_type.fnReturnType(); |
| 1877 | try self.setRegOrMem(ret_ty, self.ret_mcv, mcv); |
| 1878 | // Just add space for an instruction, patch this later |
| 1879 | try self.code.resize(self.code.items.len + 4); |
| 1880 | try self.exitlude_jump_relocs.append(self.gpa, self.code.items.len - 4); |
| 1881 | } |
| 1882 | |
| 1883 | fn airRet(self: *Self, inst: Air.Inst.Index) !void { |
| 1884 | const un_op = self.air.instructions.items(.data)[inst].un_op; |
| 1885 | const operand = try self.resolveInst(un_op); |
| 1886 | try self.ret(operand); |
| 1887 | return self.finishAir(inst, .dead, .{ un_op, .none, .none }); |
| 1888 | } |
| 1889 | |
| 1890 | fn airRetLoad(self: *Self, inst: Air.Inst.Index) !void { |
| 1891 | const un_op = self.air.instructions.items(.data)[inst].un_op; |
| 1892 | const ptr = try self.resolveInst(un_op); |
| 1893 | _ = ptr; |
| 1894 | return self.fail("TODO implement airRetLoad for {}", .{self.target.cpu.arch}); |
| 1895 | //return self.finishAir(inst, .dead, .{ un_op, .none, .none }); |
| 1896 | } |
| 1897 | |
| 1898 | fn airCmp(self: *Self, inst: Air.Inst.Index, op: math.CompareOperator) !void { |
| 1899 | _ = op; |
| 1900 | |
| 1901 | const bin_op = self.air.instructions.items(.data)[inst].bin_op; |
| 1902 | if (self.liveness.isUnused(inst)) |
| 1903 | return self.finishAir(inst, .dead, .{ bin_op.lhs, bin_op.rhs, .none }); |
| 1904 | const ty = self.air.typeOf(bin_op.lhs); |
| 1905 | assert(ty.eql(self.air.typeOf(bin_op.rhs))); |
| 1906 | if (ty.zigTypeTag() == .ErrorSet) |
| 1907 | return self.fail("TODO implement cmp for errors", .{}); |
| 1908 | |
| 1909 | const lhs = try self.resolveInst(bin_op.lhs); |
| 1910 | const rhs = try self.resolveInst(bin_op.rhs); |
| 1911 | _ = lhs; |
| 1912 | _ = rhs; |
| 1913 | |
| 1914 | return self.fail("TODO implement cmp for {}", .{self.target.cpu.arch}); |
| 1915 | } |
| 1916 | |
| 1917 | fn airDbgStmt(self: *Self, inst: Air.Inst.Index) !void { |
| 1918 | const dbg_stmt = self.air.instructions.items(.data)[inst].dbg_stmt; |
| 1919 | try self.dbgAdvancePCAndLine(dbg_stmt.line, dbg_stmt.column); |
| 1920 | return self.finishAirBookkeeping(); |
| 1921 | } |
| 1922 | |
| 1923 | fn airCondBr(self: *Self, inst: Air.Inst.Index) !void { |
| 1924 | _ = inst; |
| 1925 | |
| 1926 | return self.fail("TODO implement condbr {}", .{self.target.cpu.arch}); |
| 1927 | } |
| 1928 | |
| 1929 | fn isNull(self: *Self, operand: MCValue) !MCValue { |
| 1930 | _ = operand; |
| 1931 | // Here you can specialize this instruction if it makes sense to, otherwise the default |
| 1932 | // will call isNonNull and invert the result. |
| 1933 | return self.fail("TODO call isNonNull and invert the result", .{}); |
| 1934 | } |
| 1935 | |
| 1936 | fn isNonNull(self: *Self, operand: MCValue) !MCValue { |
| 1937 | _ = operand; |
| 1938 | // Here you can specialize this instruction if it makes sense to, otherwise the default |
| 1939 | // will call isNull and invert the result. |
| 1940 | return self.fail("TODO call isNull and invert the result", .{}); |
| 1941 | } |
| 1942 | |
| 1943 | fn isErr(self: *Self, operand: MCValue) !MCValue { |
| 1944 | _ = operand; |
| 1945 | // Here you can specialize this instruction if it makes sense to, otherwise the default |
| 1946 | // will call isNonNull and invert the result. |
| 1947 | return self.fail("TODO call isNonErr and invert the result", .{}); |
| 1948 | } |
| 1949 | |
| 1950 | fn isNonErr(self: *Self, operand: MCValue) !MCValue { |
| 1951 | _ = operand; |
| 1952 | // Here you can specialize this instruction if it makes sense to, otherwise the default |
| 1953 | // will call isNull and invert the result. |
| 1954 | return self.fail("TODO call isErr and invert the result", .{}); |
| 1955 | } |
| 1956 | |
| 1957 | fn airIsNull(self: *Self, inst: Air.Inst.Index) !void { |
| 1958 | const un_op = self.air.instructions.items(.data)[inst].un_op; |
| 1959 | const result: MCValue = if (self.liveness.isUnused(inst)) .dead else result: { |
| 1960 | const operand = try self.resolveInst(un_op); |
| 1961 | break :result try self.isNull(operand); |
| 1962 | }; |
| 1963 | return self.finishAir(inst, result, .{ un_op, .none, .none }); |
| 1964 | } |
| 1965 | |
| 1966 | fn airIsNullPtr(self: *Self, inst: Air.Inst.Index) !void { |
| 1967 | const un_op = self.air.instructions.items(.data)[inst].un_op; |
| 1968 | const result: MCValue = if (self.liveness.isUnused(inst)) .dead else result: { |
| 1969 | const operand_ptr = try self.resolveInst(un_op); |
| 1970 | const operand: MCValue = blk: { |
| 1971 | if (self.reuseOperand(inst, un_op, 0, operand_ptr)) { |
| 1972 | // The MCValue that holds the pointer can be re-used as the value. |
| 1973 | break :blk operand_ptr; |
| 1974 | } else { |
| 1975 | break :blk try self.allocRegOrMem(inst, true); |
| 1976 | } |
| 1977 | }; |
| 1978 | try self.load(operand, operand_ptr, self.air.typeOf(un_op)); |
| 1979 | break :result try self.isNull(operand); |
| 1980 | }; |
| 1981 | return self.finishAir(inst, result, .{ un_op, .none, .none }); |
| 1982 | } |
| 1983 | |
| 1984 | fn airIsNonNull(self: *Self, inst: Air.Inst.Index) !void { |
| 1985 | const un_op = self.air.instructions.items(.data)[inst].un_op; |
| 1986 | const result: MCValue = if (self.liveness.isUnused(inst)) .dead else result: { |
| 1987 | const operand = try self.resolveInst(un_op); |
| 1988 | break :result try self.isNonNull(operand); |
| 1989 | }; |
| 1990 | return self.finishAir(inst, result, .{ un_op, .none, .none }); |
| 1991 | } |
| 1992 | |
| 1993 | fn airIsNonNullPtr(self: *Self, inst: Air.Inst.Index) !void { |
| 1994 | const un_op = self.air.instructions.items(.data)[inst].un_op; |
| 1995 | const result: MCValue = if (self.liveness.isUnused(inst)) .dead else result: { |
| 1996 | const operand_ptr = try self.resolveInst(un_op); |
| 1997 | const operand: MCValue = blk: { |
| 1998 | if (self.reuseOperand(inst, un_op, 0, operand_ptr)) { |
| 1999 | // The MCValue that holds the pointer can be re-used as the value. |
| 2000 | break :blk operand_ptr; |
| 2001 | } else { |
| 2002 | break :blk try self.allocRegOrMem(inst, true); |
| 2003 | } |
| 2004 | }; |
| 2005 | try self.load(operand, operand_ptr, self.air.typeOf(un_op)); |
| 2006 | break :result try self.isNonNull(operand); |
| 2007 | }; |
| 2008 | return self.finishAir(inst, result, .{ un_op, .none, .none }); |
| 2009 | } |
| 2010 | |
| 2011 | fn airIsErr(self: *Self, inst: Air.Inst.Index) !void { |
| 2012 | const un_op = self.air.instructions.items(.data)[inst].un_op; |
| 2013 | const result: MCValue = if (self.liveness.isUnused(inst)) .dead else result: { |
| 2014 | const operand = try self.resolveInst(un_op); |
| 2015 | break :result try self.isErr(operand); |
| 2016 | }; |
| 2017 | return self.finishAir(inst, result, .{ un_op, .none, .none }); |
| 2018 | } |
| 2019 | |
| 2020 | fn airIsErrPtr(self: *Self, inst: Air.Inst.Index) !void { |
| 2021 | const un_op = self.air.instructions.items(.data)[inst].un_op; |
| 2022 | const result: MCValue = if (self.liveness.isUnused(inst)) .dead else result: { |
| 2023 | const operand_ptr = try self.resolveInst(un_op); |
| 2024 | const operand: MCValue = blk: { |
| 2025 | if (self.reuseOperand(inst, un_op, 0, operand_ptr)) { |
| 2026 | // The MCValue that holds the pointer can be re-used as the value. |
| 2027 | break :blk operand_ptr; |
| 2028 | } else { |
| 2029 | break :blk try self.allocRegOrMem(inst, true); |
| 2030 | } |
| 2031 | }; |
| 2032 | try self.load(operand, operand_ptr, self.air.typeOf(un_op)); |
| 2033 | break :result try self.isErr(operand); |
| 2034 | }; |
| 2035 | return self.finishAir(inst, result, .{ un_op, .none, .none }); |
| 2036 | } |
| 2037 | |
| 2038 | fn airIsNonErr(self: *Self, inst: Air.Inst.Index) !void { |
| 2039 | const un_op = self.air.instructions.items(.data)[inst].un_op; |
| 2040 | const result: MCValue = if (self.liveness.isUnused(inst)) .dead else result: { |
| 2041 | const operand = try self.resolveInst(un_op); |
| 2042 | break :result try self.isNonErr(operand); |
| 2043 | }; |
| 2044 | return self.finishAir(inst, result, .{ un_op, .none, .none }); |
| 2045 | } |
| 2046 | |
| 2047 | fn airIsNonErrPtr(self: *Self, inst: Air.Inst.Index) !void { |
| 2048 | const un_op = self.air.instructions.items(.data)[inst].un_op; |
| 2049 | const result: MCValue = if (self.liveness.isUnused(inst)) .dead else result: { |
| 2050 | const operand_ptr = try self.resolveInst(un_op); |
| 2051 | const operand: MCValue = blk: { |
| 2052 | if (self.reuseOperand(inst, un_op, 0, operand_ptr)) { |
| 2053 | // The MCValue that holds the pointer can be re-used as the value. |
| 2054 | break :blk operand_ptr; |
| 2055 | } else { |
| 2056 | break :blk try self.allocRegOrMem(inst, true); |
| 2057 | } |
| 2058 | }; |
| 2059 | try self.load(operand, operand_ptr, self.air.typeOf(un_op)); |
| 2060 | break :result try self.isNonErr(operand); |
| 2061 | }; |
| 2062 | return self.finishAir(inst, result, .{ un_op, .none, .none }); |
| 2063 | } |
| 2064 | |
| 2065 | fn airLoop(self: *Self, inst: Air.Inst.Index) !void { |
| 2066 | // A loop is a setup to be able to jump back to the beginning. |
| 2067 | const ty_pl = self.air.instructions.items(.data)[inst].ty_pl; |
| 2068 | const loop = self.air.extraData(Air.Block, ty_pl.payload); |
| 2069 | const body = self.air.extra[loop.end..][0..loop.data.body_len]; |
| 2070 | const start_index = self.code.items.len; |
| 2071 | try self.genBody(body); |
| 2072 | try self.jump(start_index); |
| 2073 | return self.finishAirBookkeeping(); |
| 2074 | } |
| 2075 | |
| 2076 | /// Send control flow to the `index` of `self.code`. |
| 2077 | fn jump(self: *Self, index: usize) !void { |
| 2078 | if (math.cast(i28, @intCast(i32, index) - @intCast(i32, self.code.items.len + 8))) |delta| { |
| 2079 | mem.writeIntLittle(u32, try self.code.addManyAsArray(4), Instruction.b(delta).toU32()); |
| 2080 | } else |_| { |
| 2081 | return self.fail("TODO: enable larger branch offset", .{}); |
| 2082 | } |
| 2083 | } |
| 2084 | |
| 2085 | fn airBlock(self: *Self, inst: Air.Inst.Index) !void { |
| 2086 | try self.blocks.putNoClobber(self.gpa, inst, .{ |
| 2087 | // A block is a setup to be able to jump to the end. |
| 2088 | .relocs = .{}, |
| 2089 | // It also acts as a receptacle for break operands. |
| 2090 | // Here we use `MCValue.none` to represent a null value so that the first |
| 2091 | // break instruction will choose a MCValue for the block result and overwrite |
| 2092 | // this field. Following break instructions will use that MCValue to put their |
| 2093 | // block results. |
| 2094 | .mcv = MCValue{ .none = {} }, |
| 2095 | }); |
| 2096 | const block_data = self.blocks.getPtr(inst).?; |
| 2097 | defer block_data.relocs.deinit(self.gpa); |
| 2098 | |
| 2099 | const ty_pl = self.air.instructions.items(.data)[inst].ty_pl; |
| 2100 | const extra = self.air.extraData(Air.Block, ty_pl.payload); |
| 2101 | const body = self.air.extra[extra.end..][0..extra.data.body_len]; |
| 2102 | try self.genBody(body); |
| 2103 | |
| 2104 | for (block_data.relocs.items) |reloc| try self.performReloc(reloc); |
| 2105 | |
| 2106 | const result = @bitCast(MCValue, block_data.mcv); |
| 2107 | return self.finishAir(inst, result, .{ .none, .none, .none }); |
| 2108 | } |
| 2109 | |
| 2110 | fn airSwitch(self: *Self, inst: Air.Inst.Index) !void { |
| 2111 | const pl_op = self.air.instructions.items(.data)[inst].pl_op; |
| 2112 | const condition = pl_op.operand; |
| 2113 | _ = condition; |
| 2114 | |
| 2115 | return self.fail("TODO airSwitch for {}", .{self.target.cpu.arch}); |
| 2116 | } |
| 2117 | |
| 2118 | fn performReloc(self: *Self, reloc: Reloc) !void { |
| 2119 | switch (reloc) { |
| 2120 | .rel32 => |pos| { |
| 2121 | const amt = self.code.items.len - (pos + 4); |
| 2122 | // Here it would be tempting to implement testing for amt == 0 and then elide the |
| 2123 | // jump. However, that will cause a problem because other jumps may assume that they |
| 2124 | // can jump to this code. Or maybe I didn't understand something when I was debugging. |
| 2125 | // It could be worth another look. Anyway, that's why that isn't done here. Probably the |
| 2126 | // best place to elide jumps will be in semantic analysis, by inlining blocks that only |
| 2127 | // only have 1 break instruction. |
| 2128 | const s32_amt = math.cast(i32, amt) catch |
| 2129 | return self.fail("unable to perform relocation: jump too far", .{}); |
| 2130 | mem.writeIntLittle(i32, self.code.items[pos..][0..4], s32_amt); |
| 2131 | }, |
| 2132 | .arm_branch => unreachable, |
| 2133 | } |
| 2134 | } |
| 2135 | |
| 2136 | fn airBr(self: *Self, inst: Air.Inst.Index) !void { |
| 2137 | const branch = self.air.instructions.items(.data)[inst].br; |
| 2138 | try self.br(branch.block_inst, branch.operand); |
| 2139 | return self.finishAir(inst, .dead, .{ branch.operand, .none, .none }); |
| 2140 | } |
| 2141 | |
| 2142 | fn airBoolOp(self: *Self, inst: Air.Inst.Index) !void { |
| 2143 | const bin_op = self.air.instructions.items(.data)[inst].bin_op; |
| 2144 | const air_tags = self.air.instructions.items(.tag); |
| 2145 | _ = air_tags; |
| 2146 | |
| 2147 | const result: MCValue = if (self.liveness.isUnused(inst)) .dead else return self.fail("TODO implement boolean operations for {}", .{self.target.cpu.arch}); |
| 2148 | return self.finishAir(inst, result, .{ bin_op.lhs, bin_op.rhs, .none }); |
| 2149 | } |
| 2150 | |
| 2151 | fn br(self: *Self, block: Air.Inst.Index, operand: Air.Inst.Ref) !void { |
| 2152 | const block_data = self.blocks.getPtr(block).?; |
| 2153 | |
| 2154 | if (self.air.typeOf(operand).hasCodeGenBits()) { |
| 2155 | const operand_mcv = try self.resolveInst(operand); |
| 2156 | const block_mcv = block_data.mcv; |
| 2157 | if (block_mcv == .none) { |
| 2158 | block_data.mcv = operand_mcv; |
| 2159 | } else { |
| 2160 | try self.setRegOrMem(self.air.typeOfIndex(block), block_mcv, operand_mcv); |
| 2161 | } |
| 2162 | } |
| 2163 | return self.brVoid(block); |
| 2164 | } |
| 2165 | |
| 2166 | fn brVoid(self: *Self, block: Air.Inst.Index) !void { |
| 2167 | const block_data = self.blocks.getPtr(block).?; |
| 2168 | |
| 2169 | // Emit a jump with a relocation. It will be patched up after the block ends. |
| 2170 | try block_data.relocs.ensureUnusedCapacity(self.gpa, 1); |
| 2171 | |
| 2172 | return self.fail("TODO implement brvoid for {}", .{self.target.cpu.arch}); |
| 2173 | } |
| 2174 | |
| 2175 | fn airAsm(self: *Self, inst: Air.Inst.Index) !void { |
| 2176 | const air_datas = self.air.instructions.items(.data); |
| 2177 | const air_extra = self.air.extraData(Air.Asm, air_datas[inst].ty_pl.payload); |
| 2178 | const zir = self.mod_fn.owner_decl.getFileScope().zir; |
| 2179 | const extended = zir.instructions.items(.data)[air_extra.data.zir_index].extended; |
| 2180 | const zir_extra = zir.extraData(Zir.Inst.Asm, extended.operand); |
| 2181 | const asm_source = zir.nullTerminatedString(zir_extra.data.asm_source); |
| 2182 | const outputs_len = @truncate(u5, extended.small); |
| 2183 | const args_len = @truncate(u5, extended.small >> 5); |
| 2184 | const clobbers_len = @truncate(u5, extended.small >> 10); |
| 2185 | _ = clobbers_len; // TODO honor these |
| 2186 | const is_volatile = @truncate(u1, extended.small >> 15) != 0; |
| 2187 | const outputs = @bitCast([]const Air.Inst.Ref, self.air.extra[air_extra.end..][0..outputs_len]); |
| 2188 | const args = @bitCast([]const Air.Inst.Ref, self.air.extra[air_extra.end + outputs.len ..][0..args_len]); |
| 2189 | |
| 2190 | if (outputs_len > 1) { |
| 2191 | return self.fail("TODO implement codegen for asm with more than 1 output", .{}); |
| 2192 | } |
| 2193 | var extra_i: usize = zir_extra.end; |
| 2194 | const output_constraint: ?[]const u8 = out: { |
| 2195 | var i: usize = 0; |
| 2196 | while (i < outputs_len) : (i += 1) { |
| 2197 | const output = zir.extraData(Zir.Inst.Asm.Output, extra_i); |
| 2198 | extra_i = output.end; |
| 2199 | break :out zir.nullTerminatedString(output.data.constraint); |
| 2200 | } |
| 2201 | break :out null; |
| 2202 | }; |
| 2203 | |
| 2204 | const dead = !is_volatile and self.liveness.isUnused(inst); |
| 2205 | const result: MCValue = if (dead) .dead else result: { |
| 2206 | for (args) |arg| { |
| 2207 | const input = zir.extraData(Zir.Inst.Asm.Input, extra_i); |
| 2208 | extra_i = input.end; |
| 2209 | const constraint = zir.nullTerminatedString(input.data.constraint); |
| 2210 | |
| 2211 | if (constraint.len < 3 or constraint[0] != '{' or constraint[constraint.len - 1] != '}') { |
| 2212 | return self.fail("unrecognized asm input constraint: '{s}'", .{constraint}); |
| 2213 | } |
| 2214 | const reg_name = constraint[1 .. constraint.len - 1]; |
| 2215 | const reg = parseRegName(reg_name) orelse |
| 2216 | return self.fail("unrecognized register: '{s}'", .{reg_name}); |
| 2217 | |
| 2218 | const arg_mcv = try self.resolveInst(arg); |
| 2219 | try self.register_manager.getReg(reg, null); |
| 2220 | try self.genSetReg(self.air.typeOf(arg), reg, arg_mcv); |
| 2221 | } |
| 2222 | |
| 2223 | if (mem.eql(u8, asm_source, "svc #0")) { |
| 2224 | mem.writeIntLittle(u32, try self.code.addManyAsArray(4), Instruction.svc(0x0).toU32()); |
| 2225 | } else if (mem.eql(u8, asm_source, "svc #0x80")) { |
| 2226 | mem.writeIntLittle(u32, try self.code.addManyAsArray(4), Instruction.svc(0x80).toU32()); |
| 2227 | } else { |
| 2228 | return self.fail("TODO implement support for more aarch64 assembly instructions", .{}); |
| 2229 | } |
| 2230 | |
| 2231 | if (output_constraint) |output| { |
| 2232 | if (output.len < 4 or output[0] != '=' or output[1] != '{' or output[output.len - 1] != '}') { |
| 2233 | return self.fail("unrecognized asm output constraint: '{s}'", .{output}); |
| 2234 | } |
| 2235 | const reg_name = output[2 .. output.len - 1]; |
| 2236 | const reg = parseRegName(reg_name) orelse |
| 2237 | return self.fail("unrecognized register: '{s}'", .{reg_name}); |
| 2238 | break :result MCValue{ .register = reg }; |
| 2239 | } else { |
| 2240 | break :result MCValue{ .none = {} }; |
| 2241 | } |
| 2242 | }; |
| 2243 | if (outputs.len + args.len <= Liveness.bpi - 1) { |
| 2244 | var buf = [1]Air.Inst.Ref{.none} ** (Liveness.bpi - 1); |
| 2245 | std.mem.copy(Air.Inst.Ref, &buf, outputs); |
| 2246 | std.mem.copy(Air.Inst.Ref, buf[outputs.len..], args); |
| 2247 | return self.finishAir(inst, result, buf); |
| 2248 | } |
| 2249 | var bt = try self.iterateBigTomb(inst, outputs.len + args.len); |
| 2250 | for (outputs) |output| { |
| 2251 | bt.feed(output); |
| 2252 | } |
| 2253 | for (args) |arg| { |
| 2254 | bt.feed(arg); |
| 2255 | } |
| 2256 | return bt.finishAir(result); |
| 2257 | } |
| 2258 | |
| 2259 | fn iterateBigTomb(self: *Self, inst: Air.Inst.Index, operand_count: usize) !BigTomb { |
| 2260 | try self.ensureProcessDeathCapacity(operand_count + 1); |
| 2261 | return BigTomb{ |
| 2262 | .function = self, |
| 2263 | .inst = inst, |
| 2264 | .tomb_bits = self.liveness.getTombBits(inst), |
| 2265 | .big_tomb_bits = self.liveness.special.get(inst) orelse 0, |
| 2266 | .bit_index = 0, |
| 2267 | }; |
| 2268 | } |
| 2269 | |
| 2270 | /// Sets the value without any modifications to register allocation metadata or stack allocation metadata. |
| 2271 | fn setRegOrMem(self: *Self, ty: Type, loc: MCValue, val: MCValue) !void { |
| 2272 | switch (loc) { |
| 2273 | .none => return, |
| 2274 | .register => |reg| return self.genSetReg(ty, reg, val), |
| 2275 | .stack_offset => |off| return self.genSetStack(ty, off, val), |
| 2276 | .memory => { |
| 2277 | return self.fail("TODO implement setRegOrMem for memory", .{}); |
| 2278 | }, |
| 2279 | else => unreachable, |
| 2280 | } |
| 2281 | } |
| 2282 | |
| 2283 | fn genSetStack(self: *Self, ty: Type, stack_offset: u32, mcv: MCValue) InnerError!void { |
| 2284 | switch (mcv) { |
| 2285 | .dead => unreachable, |
| 2286 | .ptr_stack_offset => unreachable, |
| 2287 | .ptr_embedded_in_code => unreachable, |
| 2288 | .unreach, .none => return, // Nothing to do. |
| 2289 | .undef => { |
| 2290 | if (!self.wantSafety()) |
| 2291 | return; // The already existing value will do just fine. |
| 2292 | // TODO Upgrade this to a memset call when we have that available. |
| 2293 | switch (ty.abiSize(self.target.*)) { |
| 2294 | 1 => return self.genSetStack(ty, stack_offset, .{ .immediate = 0xaa }), |
| 2295 | 2 => return self.genSetStack(ty, stack_offset, .{ .immediate = 0xaaaa }), |
| 2296 | 4 => return self.genSetStack(ty, stack_offset, .{ .immediate = 0xaaaaaaaa }), |
| 2297 | 8 => return self.genSetStack(ty, stack_offset, .{ .immediate = 0xaaaaaaaaaaaaaaaa }), |
| 2298 | else => return self.fail("TODO implement memset", .{}), |
| 2299 | } |
| 2300 | }, |
| 2301 | .compare_flags_unsigned, |
| 2302 | .compare_flags_signed, |
| 2303 | .immediate, |
| 2304 | => { |
| 2305 | const reg = try self.copyToTmpRegister(ty, mcv); |
| 2306 | return self.genSetStack(ty, stack_offset, MCValue{ .register = reg }); |
| 2307 | }, |
| 2308 | .embedded_in_code => |code_offset| { |
| 2309 | _ = code_offset; |
| 2310 | return self.fail("TODO implement set stack variable from embedded_in_code", .{}); |
| 2311 | }, |
| 2312 | .register => |reg| { |
| 2313 | const abi_size = ty.abiSize(self.target.*); |
| 2314 | const adj_off = stack_offset + abi_size; |
| 2315 | |
| 2316 | switch (abi_size) { |
| 2317 | 1, 2, 4, 8 => { |
| 2318 | const offset = if (math.cast(i9, adj_off)) |imm| |
| 2319 | Instruction.LoadStoreOffset.imm_post_index(-imm) |
| 2320 | else |_| |
| 2321 | Instruction.LoadStoreOffset.reg(try self.copyToTmpRegister(Type.initTag(.u64), MCValue{ .immediate = adj_off })); |
| 2322 | const rn: Register = switch (self.target.cpu.arch) { |
| 2323 | .aarch64, .aarch64_be => .x29, |
| 2324 | .aarch64_32 => .w29, |
| 2325 | else => unreachable, |
| 2326 | }; |
| 2327 | const str = switch (abi_size) { |
| 2328 | 1 => Instruction.strb, |
| 2329 | 2 => Instruction.strh, |
| 2330 | 4, 8 => Instruction.str, |
| 2331 | else => unreachable, // unexpected abi size |
| 2332 | }; |
| 2333 | |
| 2334 | mem.writeIntLittle(u32, try self.code.addManyAsArray(4), str(reg, rn, .{ |
| 2335 | .offset = offset, |
| 2336 | }).toU32()); |
| 2337 | }, |
| 2338 | else => return self.fail("TODO implement storing other types abi_size={}", .{abi_size}), |
| 2339 | } |
| 2340 | }, |
| 2341 | .memory => |vaddr| { |
| 2342 | _ = vaddr; |
| 2343 | return self.fail("TODO implement set stack variable from memory vaddr", .{}); |
| 2344 | }, |
| 2345 | .stack_offset => |off| { |
| 2346 | if (stack_offset == off) |
| 2347 | return; // Copy stack variable to itself; nothing to do. |
| 2348 | |
| 2349 | const reg = try self.copyToTmpRegister(ty, mcv); |
| 2350 | return self.genSetStack(ty, stack_offset, MCValue{ .register = reg }); |
| 2351 | }, |
| 2352 | } |
| 2353 | } |
| 2354 | |
| 2355 | fn genSetReg(self: *Self, ty: Type, reg: Register, mcv: MCValue) InnerError!void { |
| 2356 | switch (mcv) { |
| 2357 | .dead => unreachable, |
| 2358 | .ptr_stack_offset => unreachable, |
| 2359 | .ptr_embedded_in_code => unreachable, |
| 2360 | .unreach, .none => return, // Nothing to do. |
| 2361 | .undef => { |
| 2362 | if (!self.wantSafety()) |
| 2363 | return; // The already existing value will do just fine. |
| 2364 | // Write the debug undefined value. |
| 2365 | switch (reg.size()) { |
| 2366 | 32 => return self.genSetReg(ty, reg, .{ .immediate = 0xaaaaaaaa }), |
| 2367 | 64 => return self.genSetReg(ty, reg, .{ .immediate = 0xaaaaaaaaaaaaaaaa }), |
| 2368 | else => unreachable, // unexpected register size |
| 2369 | } |
| 2370 | }, |
| 2371 | .immediate => |x| { |
| 2372 | if (x <= math.maxInt(u16)) { |
| 2373 | mem.writeIntLittle(u32, try self.code.addManyAsArray(4), Instruction.movz(reg, @intCast(u16, x), 0).toU32()); |
| 2374 | } else if (x <= math.maxInt(u32)) { |
| 2375 | mem.writeIntLittle(u32, try self.code.addManyAsArray(4), Instruction.movz(reg, @truncate(u16, x), 0).toU32()); |
| 2376 | mem.writeIntLittle(u32, try self.code.addManyAsArray(4), Instruction.movk(reg, @intCast(u16, x >> 16), 16).toU32()); |
| 2377 | } else if (x <= math.maxInt(u32)) { |
| 2378 | mem.writeIntLittle(u32, try self.code.addManyAsArray(4), Instruction.movz(reg, @truncate(u16, x), 0).toU32()); |
| 2379 | mem.writeIntLittle(u32, try self.code.addManyAsArray(4), Instruction.movk(reg, @truncate(u16, x >> 16), 16).toU32()); |
| 2380 | mem.writeIntLittle(u32, try self.code.addManyAsArray(4), Instruction.movk(reg, @intCast(u16, x >> 32), 32).toU32()); |
| 2381 | } else { |
| 2382 | mem.writeIntLittle(u32, try self.code.addManyAsArray(4), Instruction.movz(reg, @truncate(u16, x), 0).toU32()); |
| 2383 | mem.writeIntLittle(u32, try self.code.addManyAsArray(4), Instruction.movk(reg, @truncate(u16, x >> 16), 16).toU32()); |
| 2384 | mem.writeIntLittle(u32, try self.code.addManyAsArray(4), Instruction.movk(reg, @truncate(u16, x >> 32), 32).toU32()); |
| 2385 | mem.writeIntLittle(u32, try self.code.addManyAsArray(4), Instruction.movk(reg, @intCast(u16, x >> 48), 48).toU32()); |
| 2386 | } |
| 2387 | }, |
| 2388 | .register => |src_reg| { |
| 2389 | // If the registers are the same, nothing to do. |
| 2390 | if (src_reg.id() == reg.id()) |
| 2391 | return; |
| 2392 | |
| 2393 | // mov reg, src_reg |
| 2394 | mem.writeIntLittle(u32, try self.code.addManyAsArray(4), Instruction.orr( |
| 2395 | reg, |
| 2396 | .xzr, |
| 2397 | src_reg, |
| 2398 | Instruction.Shift.none, |
| 2399 | ).toU32()); |
| 2400 | }, |
| 2401 | .memory => |addr| { |
| 2402 | if (self.bin_file.options.pie) { |
| 2403 | // PC-relative displacement to the entry in the GOT table. |
| 2404 | // adrp |
| 2405 | const offset = @intCast(u32, self.code.items.len); |
| 2406 | mem.writeIntLittle( |
| 2407 | u32, |
| 2408 | try self.code.addManyAsArray(4), |
| 2409 | Instruction.adrp(reg, 0).toU32(), |
| 2410 | ); |
| 2411 | // ldr reg, reg, offset |
| 2412 | mem.writeIntLittle(u32, try self.code.addManyAsArray(4), Instruction.ldr(reg, .{ |
| 2413 | .register = .{ |
| 2414 | .rn = reg, |
| 2415 | .offset = Instruction.LoadStoreOffset.imm(0), |
| 2416 | }, |
| 2417 | }).toU32()); |
| 2418 | |
| 2419 | if (self.bin_file.cast(link.File.MachO)) |macho_file| { |
| 2420 | // TODO I think the reloc might be in the wrong place. |
| 2421 | const decl = macho_file.active_decl.?; |
| 2422 | // Page reloc for adrp instruction. |
| 2423 | try decl.link.macho.relocs.append(self.bin_file.allocator, .{ |
| 2424 | .offset = offset, |
| 2425 | .target = .{ .local = @intCast(u32, addr) }, |
| 2426 | .addend = 0, |
| 2427 | .subtractor = null, |
| 2428 | .pcrel = true, |
| 2429 | .length = 2, |
| 2430 | .@"type" = @enumToInt(std.macho.reloc_type_arm64.ARM64_RELOC_GOT_LOAD_PAGE21), |
| 2431 | }); |
| 2432 | // Pageoff reloc for adrp instruction. |
| 2433 | try decl.link.macho.relocs.append(self.bin_file.allocator, .{ |
| 2434 | .offset = offset + 4, |
| 2435 | .target = .{ .local = @intCast(u32, addr) }, |
| 2436 | .addend = 0, |
| 2437 | .subtractor = null, |
| 2438 | .pcrel = false, |
| 2439 | .length = 2, |
| 2440 | .@"type" = @enumToInt(std.macho.reloc_type_arm64.ARM64_RELOC_GOT_LOAD_PAGEOFF12), |
| 2441 | }); |
| 2442 | } else { |
| 2443 | return self.fail("TODO implement genSetReg for PIE GOT indirection on this platform", .{}); |
| 2444 | } |
| 2445 | } else { |
| 2446 | // The value is in memory at a hard-coded address. |
| 2447 | // If the type is a pointer, it means the pointer address is at this memory location. |
| 2448 | try self.genSetReg(Type.initTag(.usize), reg, .{ .immediate = addr }); |
| 2449 | mem.writeIntLittle(u32, try self.code.addManyAsArray(4), Instruction.ldr(reg, .{ .register = .{ .rn = reg } }).toU32()); |
| 2450 | } |
| 2451 | }, |
| 2452 | .stack_offset => |unadjusted_off| { |
| 2453 | // TODO: maybe addressing from sp instead of fp |
| 2454 | const abi_size = ty.abiSize(self.target.*); |
| 2455 | const adj_off = unadjusted_off + abi_size; |
| 2456 | |
| 2457 | const rn: Register = switch (self.target.cpu.arch) { |
| 2458 | .aarch64, .aarch64_be => .x29, |
| 2459 | .aarch64_32 => .w29, |
| 2460 | else => unreachable, |
| 2461 | }; |
| 2462 | |
| 2463 | const offset = if (math.cast(i9, adj_off)) |imm| |
| 2464 | Instruction.LoadStoreOffset.imm_post_index(-imm) |
| 2465 | else |_| |
| 2466 | Instruction.LoadStoreOffset.reg(try self.copyToTmpRegister(Type.initTag(.u64), MCValue{ .immediate = adj_off })); |
| 2467 | |
| 2468 | switch (abi_size) { |
| 2469 | 1, 2 => { |
| 2470 | const ldr = switch (abi_size) { |
| 2471 | 1 => Instruction.ldrb, |
| 2472 | 2 => Instruction.ldrh, |
| 2473 | else => unreachable, // unexpected abi size |
| 2474 | }; |
| 2475 | |
| 2476 | mem.writeIntLittle(u32, try self.code.addManyAsArray(4), ldr(reg, rn, .{ |
| 2477 | .offset = offset, |
| 2478 | }).toU32()); |
| 2479 | }, |
| 2480 | 4, 8 => { |
| 2481 | mem.writeIntLittle(u32, try self.code.addManyAsArray(4), Instruction.ldr(reg, .{ .register = .{ |
| 2482 | .rn = rn, |
| 2483 | .offset = offset, |
| 2484 | } }).toU32()); |
| 2485 | }, |
| 2486 | else => return self.fail("TODO implement genSetReg other types abi_size={}", .{abi_size}), |
| 2487 | } |
| 2488 | }, |
| 2489 | else => return self.fail("TODO implement genSetReg for aarch64 {}", .{mcv}), |
| 2490 | } |
| 2491 | } |
| 2492 | |
| 2493 | fn airPtrToInt(self: *Self, inst: Air.Inst.Index) !void { |
| 2494 | const un_op = self.air.instructions.items(.data)[inst].un_op; |
| 2495 | const result = try self.resolveInst(un_op); |
| 2496 | return self.finishAir(inst, result, .{ un_op, .none, .none }); |
| 2497 | } |
| 2498 | |
| 2499 | fn airBitCast(self: *Self, inst: Air.Inst.Index) !void { |
| 2500 | const ty_op = self.air.instructions.items(.data)[inst].ty_op; |
| 2501 | const result = try self.resolveInst(ty_op.operand); |
| 2502 | return self.finishAir(inst, result, .{ ty_op.operand, .none, .none }); |
| 2503 | } |
| 2504 | |
| 2505 | fn airArrayToSlice(self: *Self, inst: Air.Inst.Index) !void { |
| 2506 | const ty_op = self.air.instructions.items(.data)[inst].ty_op; |
| 2507 | const result: MCValue = if (self.liveness.isUnused(inst)) .dead else return self.fail("TODO implement airArrayToSlice for {}", .{ |
| 2508 | self.target.cpu.arch, |
| 2509 | }); |
| 2510 | return self.finishAir(inst, result, .{ ty_op.operand, .none, .none }); |
| 2511 | } |
| 2512 | |
| 2513 | fn airIntToFloat(self: *Self, inst: Air.Inst.Index) !void { |
| 2514 | const ty_op = self.air.instructions.items(.data)[inst].ty_op; |
| 2515 | const result: MCValue = if (self.liveness.isUnused(inst)) .dead else return self.fail("TODO implement airIntToFloat for {}", .{ |
| 2516 | self.target.cpu.arch, |
| 2517 | }); |
| 2518 | return self.finishAir(inst, result, .{ ty_op.operand, .none, .none }); |
| 2519 | } |
| 2520 | |
| 2521 | fn airFloatToInt(self: *Self, inst: Air.Inst.Index) !void { |
| 2522 | const ty_op = self.air.instructions.items(.data)[inst].ty_op; |
| 2523 | const result: MCValue = if (self.liveness.isUnused(inst)) .dead else return self.fail("TODO implement airFloatToInt for {}", .{ |
| 2524 | self.target.cpu.arch, |
| 2525 | }); |
| 2526 | return self.finishAir(inst, result, .{ ty_op.operand, .none, .none }); |
| 2527 | } |
| 2528 | |
| 2529 | fn airCmpxchg(self: *Self, inst: Air.Inst.Index) !void { |
| 2530 | const ty_pl = self.air.instructions.items(.data)[inst].ty_pl; |
| 2531 | const extra = self.air.extraData(Air.Block, ty_pl.payload); |
| 2532 | _ = extra; |
| 2533 | |
| 2534 | return self.fail("TODO implement airCmpxchg for {}", .{ |
| 2535 | self.target.cpu.arch, |
| 2536 | }); |
| 2537 | } |
| 2538 | |
| 2539 | fn airAtomicRmw(self: *Self, inst: Air.Inst.Index) !void { |
| 2540 | _ = inst; |
| 2541 | return self.fail("TODO implement airCmpxchg for {}", .{self.target.cpu.arch}); |
| 2542 | } |
| 2543 | |
| 2544 | fn airAtomicLoad(self: *Self, inst: Air.Inst.Index) !void { |
| 2545 | _ = inst; |
| 2546 | return self.fail("TODO implement airAtomicLoad for {}", .{self.target.cpu.arch}); |
| 2547 | } |
| 2548 | |
| 2549 | fn airAtomicStore(self: *Self, inst: Air.Inst.Index, order: std.builtin.AtomicOrder) !void { |
| 2550 | _ = inst; |
| 2551 | _ = order; |
| 2552 | return self.fail("TODO implement airAtomicStore for {}", .{self.target.cpu.arch}); |
| 2553 | } |
| 2554 | |
| 2555 | fn airMemset(self: *Self, inst: Air.Inst.Index) !void { |
| 2556 | _ = inst; |
| 2557 | return self.fail("TODO implement airMemset for {}", .{self.target.cpu.arch}); |
| 2558 | } |
| 2559 | |
| 2560 | fn airMemcpy(self: *Self, inst: Air.Inst.Index) !void { |
| 2561 | _ = inst; |
| 2562 | return self.fail("TODO implement airMemcpy for {}", .{self.target.cpu.arch}); |
| 2563 | } |
| 2564 | |
| 2565 | fn resolveInst(self: *Self, inst: Air.Inst.Ref) InnerError!MCValue { |
| 2566 | // First section of indexes correspond to a set number of constant values. |
| 2567 | const ref_int = @enumToInt(inst); |
| 2568 | if (ref_int < Air.Inst.Ref.typed_value_map.len) { |
| 2569 | const tv = Air.Inst.Ref.typed_value_map[ref_int]; |
| 2570 | if (!tv.ty.hasCodeGenBits()) { |
| 2571 | return MCValue{ .none = {} }; |
| 2572 | } |
| 2573 | return self.genTypedValue(tv); |
| 2574 | } |
| 2575 | |
| 2576 | // If the type has no codegen bits, no need to store it. |
| 2577 | const inst_ty = self.air.typeOf(inst); |
| 2578 | if (!inst_ty.hasCodeGenBits()) |
| 2579 | return MCValue{ .none = {} }; |
| 2580 | |
| 2581 | const inst_index = @intCast(Air.Inst.Index, ref_int - Air.Inst.Ref.typed_value_map.len); |
| 2582 | switch (self.air.instructions.items(.tag)[inst_index]) { |
| 2583 | .constant => { |
| 2584 | // Constants have static lifetimes, so they are always memoized in the outer most table. |
| 2585 | const branch = &self.branch_stack.items[0]; |
| 2586 | const gop = try branch.inst_table.getOrPut(self.gpa, inst_index); |
| 2587 | if (!gop.found_existing) { |
| 2588 | const ty_pl = self.air.instructions.items(.data)[inst_index].ty_pl; |
| 2589 | gop.value_ptr.* = try self.genTypedValue(.{ |
| 2590 | .ty = inst_ty, |
| 2591 | .val = self.air.values[ty_pl.payload], |
| 2592 | }); |
| 2593 | } |
| 2594 | return gop.value_ptr.*; |
| 2595 | }, |
| 2596 | .const_ty => unreachable, |
| 2597 | else => return self.getResolvedInstValue(inst_index), |
| 2598 | } |
| 2599 | } |
| 2600 | |
| 2601 | fn getResolvedInstValue(self: *Self, inst: Air.Inst.Index) MCValue { |
| 2602 | // Treat each stack item as a "layer" on top of the previous one. |
| 2603 | var i: usize = self.branch_stack.items.len; |
| 2604 | while (true) { |
| 2605 | i -= 1; |
| 2606 | if (self.branch_stack.items[i].inst_table.get(inst)) |mcv| { |
| 2607 | assert(mcv != .dead); |
| 2608 | return mcv; |
| 2609 | } |
| 2610 | } |
| 2611 | } |
| 2612 | |
| 2613 | /// If the MCValue is an immediate, and it does not fit within this type, |
| 2614 | /// we put it in a register. |
| 2615 | /// A potential opportunity for future optimization here would be keeping track |
| 2616 | /// of the fact that the instruction is available both as an immediate |
| 2617 | /// and as a register. |
| 2618 | fn limitImmediateType(self: *Self, operand: Air.Inst.Ref, comptime T: type) !MCValue { |
| 2619 | const mcv = try self.resolveInst(operand); |
| 2620 | const ti = @typeInfo(T).Int; |
| 2621 | switch (mcv) { |
| 2622 | .immediate => |imm| { |
| 2623 | // This immediate is unsigned. |
| 2624 | const U = std.meta.Int(.unsigned, ti.bits - @boolToInt(ti.signedness == .signed)); |
| 2625 | if (imm >= math.maxInt(U)) { |
| 2626 | return MCValue{ .register = try self.copyToTmpRegister(Type.initTag(.usize), mcv) }; |
| 2627 | } |
| 2628 | }, |
| 2629 | else => {}, |
| 2630 | } |
| 2631 | return mcv; |
| 2632 | } |
| 2633 | |
| 2634 | fn genTypedValue(self: *Self, typed_value: TypedValue) InnerError!MCValue { |
| 2635 | if (typed_value.val.isUndef()) |
| 2636 | return MCValue{ .undef = {} }; |
| 2637 | const ptr_bits = self.target.cpu.arch.ptrBitWidth(); |
| 2638 | const ptr_bytes: u64 = @divExact(ptr_bits, 8); |
| 2639 | switch (typed_value.ty.zigTypeTag()) { |
| 2640 | .Pointer => switch (typed_value.ty.ptrSize()) { |
| 2641 | .Slice => { |
| 2642 | var buf: Type.SlicePtrFieldTypeBuffer = undefined; |
| 2643 | const ptr_type = typed_value.ty.slicePtrFieldType(&buf); |
| 2644 | const ptr_mcv = try self.genTypedValue(.{ .ty = ptr_type, .val = typed_value.val }); |
| 2645 | const slice_len = typed_value.val.sliceLen(); |
| 2646 | // Codegen can't handle some kinds of indirection. If the wrong union field is accessed here it may mean |
| 2647 | // the Sema code needs to use anonymous Decls or alloca instructions to store data. |
| 2648 | const ptr_imm = ptr_mcv.memory; |
| 2649 | _ = slice_len; |
| 2650 | _ = ptr_imm; |
| 2651 | // We need more general support for const data being stored in memory to make this work. |
| 2652 | return self.fail("TODO codegen for const slices", .{}); |
| 2653 | }, |
| 2654 | else => { |
| 2655 | if (typed_value.val.castTag(.decl_ref)) |payload| { |
| 2656 | const decl = payload.data; |
| 2657 | decl.alive = true; |
| 2658 | if (self.bin_file.cast(link.File.Elf)) |elf_file| { |
| 2659 | const got = &elf_file.program_headers.items[elf_file.phdr_got_index.?]; |
| 2660 | const got_addr = got.p_vaddr + decl.link.elf.offset_table_index * ptr_bytes; |
| 2661 | return MCValue{ .memory = got_addr }; |
| 2662 | } else if (self.bin_file.cast(link.File.MachO)) |_| { |
| 2663 | // TODO I'm hacking my way through here by repurposing .memory for storing |
| 2664 | // index to the GOT target symbol index. |
| 2665 | return MCValue{ .memory = decl.link.macho.local_sym_index }; |
| 2666 | } else if (self.bin_file.cast(link.File.Coff)) |coff_file| { |
| 2667 | const got_addr = coff_file.offset_table_virtual_address + decl.link.coff.offset_table_index * ptr_bytes; |
| 2668 | return MCValue{ .memory = got_addr }; |
| 2669 | } else if (self.bin_file.cast(link.File.Plan9)) |p9| { |
| 2670 | try p9.seeDecl(decl); |
| 2671 | const got_addr = p9.bases.data + decl.link.plan9.got_index.? * ptr_bytes; |
| 2672 | return MCValue{ .memory = got_addr }; |
| 2673 | } else { |
| 2674 | return self.fail("TODO codegen non-ELF const Decl pointer", .{}); |
| 2675 | } |
| 2676 | } |
| 2677 | if (typed_value.val.tag() == .int_u64) { |
| 2678 | return MCValue{ .immediate = typed_value.val.toUnsignedInt() }; |
| 2679 | } |
| 2680 | return self.fail("TODO codegen more kinds of const pointers", .{}); |
| 2681 | }, |
| 2682 | }, |
| 2683 | .Int => { |
| 2684 | const info = typed_value.ty.intInfo(self.target.*); |
| 2685 | if (info.bits > ptr_bits or info.signedness == .signed) { |
| 2686 | return self.fail("TODO const int bigger than ptr and signed int", .{}); |
| 2687 | } |
| 2688 | return MCValue{ .immediate = typed_value.val.toUnsignedInt() }; |
| 2689 | }, |
| 2690 | .Bool => { |
| 2691 | return MCValue{ .immediate = @boolToInt(typed_value.val.toBool()) }; |
| 2692 | }, |
| 2693 | .ComptimeInt => unreachable, // semantic analysis prevents this |
| 2694 | .ComptimeFloat => unreachable, // semantic analysis prevents this |
| 2695 | .Optional => { |
| 2696 | if (typed_value.ty.isPtrLikeOptional()) { |
| 2697 | if (typed_value.val.isNull()) |
| 2698 | return MCValue{ .immediate = 0 }; |
| 2699 | |
| 2700 | var buf: Type.Payload.ElemType = undefined; |
| 2701 | return self.genTypedValue(.{ |
| 2702 | .ty = typed_value.ty.optionalChild(&buf), |
| 2703 | .val = typed_value.val, |
| 2704 | }); |
| 2705 | } else if (typed_value.ty.abiSize(self.target.*) == 1) { |
| 2706 | return MCValue{ .immediate = @boolToInt(typed_value.val.isNull()) }; |
| 2707 | } |
| 2708 | return self.fail("TODO non pointer optionals", .{}); |
| 2709 | }, |
| 2710 | .Enum => { |
| 2711 | if (typed_value.val.castTag(.enum_field_index)) |field_index| { |
| 2712 | switch (typed_value.ty.tag()) { |
| 2713 | .enum_simple => { |
| 2714 | return MCValue{ .immediate = field_index.data }; |
| 2715 | }, |
| 2716 | .enum_full, .enum_nonexhaustive => { |
| 2717 | const enum_full = typed_value.ty.cast(Type.Payload.EnumFull).?.data; |
| 2718 | if (enum_full.values.count() != 0) { |
| 2719 | const tag_val = enum_full.values.keys()[field_index.data]; |
| 2720 | return self.genTypedValue(.{ .ty = enum_full.tag_ty, .val = tag_val }); |
| 2721 | } else { |
| 2722 | return MCValue{ .immediate = field_index.data }; |
| 2723 | } |
| 2724 | }, |
| 2725 | else => unreachable, |
| 2726 | } |
| 2727 | } else { |
| 2728 | var int_tag_buffer: Type.Payload.Bits = undefined; |
| 2729 | const int_tag_ty = typed_value.ty.intTagType(&int_tag_buffer); |
| 2730 | return self.genTypedValue(.{ .ty = int_tag_ty, .val = typed_value.val }); |
| 2731 | } |
| 2732 | }, |
| 2733 | .ErrorSet => { |
| 2734 | switch (typed_value.val.tag()) { |
| 2735 | .@"error" => { |
| 2736 | const err_name = typed_value.val.castTag(.@"error").?.data.name; |
| 2737 | const module = self.bin_file.options.module.?; |
| 2738 | const global_error_set = module.global_error_set; |
| 2739 | const error_index = global_error_set.get(err_name).?; |
| 2740 | return MCValue{ .immediate = error_index }; |
| 2741 | }, |
| 2742 | else => { |
| 2743 | // In this case we are rendering an error union which has a 0 bits payload. |
| 2744 | return MCValue{ .immediate = 0 }; |
| 2745 | }, |
| 2746 | } |
| 2747 | }, |
| 2748 | .ErrorUnion => { |
| 2749 | const error_type = typed_value.ty.errorUnionSet(); |
| 2750 | const payload_type = typed_value.ty.errorUnionPayload(); |
| 2751 | const sub_val = typed_value.val.castTag(.eu_payload).?.data; |
| 2752 | |
| 2753 | if (!payload_type.hasCodeGenBits()) { |
| 2754 | // We use the error type directly as the type. |
| 2755 | return self.genTypedValue(.{ .ty = error_type, .val = sub_val }); |
| 2756 | } |
| 2757 | |
| 2758 | return self.fail("TODO implement error union const of type '{}'", .{typed_value.ty}); |
| 2759 | }, |
| 2760 | else => return self.fail("TODO implement const of type '{}'", .{typed_value.ty}), |
| 2761 | } |
| 2762 | } |
| 2763 | |
| 2764 | const CallMCValues = struct { |
| 2765 | args: []MCValue, |
| 2766 | return_value: MCValue, |
| 2767 | stack_byte_count: u32, |
| 2768 | stack_align: u32, |
| 2769 | |
| 2770 | fn deinit(self: *CallMCValues, func: *Self) void { |
| 2771 | func.gpa.free(self.args); |
| 2772 | self.* = undefined; |
| 2773 | } |
| 2774 | }; |
| 2775 | |
| 2776 | /// Caller must call `CallMCValues.deinit`. |
| 2777 | fn resolveCallingConventionValues(self: *Self, fn_ty: Type) !CallMCValues { |
| 2778 | const cc = fn_ty.fnCallingConvention(); |
| 2779 | const param_types = try self.gpa.alloc(Type, fn_ty.fnParamLen()); |
| 2780 | defer self.gpa.free(param_types); |
| 2781 | fn_ty.fnParamTypes(param_types); |
| 2782 | var result: CallMCValues = .{ |
| 2783 | .args = try self.gpa.alloc(MCValue, param_types.len), |
| 2784 | // These undefined values must be populated before returning from this function. |
| 2785 | .return_value = undefined, |
| 2786 | .stack_byte_count = undefined, |
| 2787 | .stack_align = undefined, |
| 2788 | }; |
| 2789 | errdefer self.gpa.free(result.args); |
| 2790 | |
| 2791 | const ret_ty = fn_ty.fnReturnType(); |
| 2792 | |
| 2793 | switch (cc) { |
| 2794 | .Naked => { |
| 2795 | assert(result.args.len == 0); |
| 2796 | result.return_value = .{ .unreach = {} }; |
| 2797 | result.stack_byte_count = 0; |
| 2798 | result.stack_align = 1; |
| 2799 | return result; |
| 2800 | }, |
| 2801 | .Unspecified, .C => { |
| 2802 | // ARM64 Procedure Call Standard |
| 2803 | var ncrn: usize = 0; // Next Core Register Number |
| 2804 | var nsaa: u32 = 0; // Next stacked argument address |
| 2805 | |
| 2806 | for (param_types) |ty, i| { |
| 2807 | // We round up NCRN only for non-Apple platforms which allow the 16-byte aligned |
| 2808 | // values to spread across odd-numbered registers. |
| 2809 | if (ty.abiAlignment(self.target.*) == 16 and !self.target.isDarwin()) { |
| 2810 | // Round up NCRN to the next even number |
| 2811 | ncrn += ncrn % 2; |
| 2812 | } |
| 2813 | |
| 2814 | const param_size = @intCast(u32, ty.abiSize(self.target.*)); |
| 2815 | if (std.math.divCeil(u32, param_size, 8) catch unreachable <= 8 - ncrn) { |
| 2816 | if (param_size <= 8) { |
| 2817 | result.args[i] = .{ .register = c_abi_int_param_regs[ncrn] }; |
| 2818 | ncrn += 1; |
| 2819 | } else { |
| 2820 | return self.fail("TODO MCValues with multiple registers", .{}); |
| 2821 | } |
| 2822 | } else if (ncrn < 8 and nsaa == 0) { |
| 2823 | return self.fail("TODO MCValues split between registers and stack", .{}); |
| 2824 | } else { |
| 2825 | ncrn = 8; |
| 2826 | // TODO Apple allows the arguments on the stack to be non-8-byte aligned provided |
| 2827 | // that the entire stack space consumed by the arguments is 8-byte aligned. |
| 2828 | if (ty.abiAlignment(self.target.*) == 8) { |
| 2829 | if (nsaa % 8 != 0) { |
| 2830 | nsaa += 8 - (nsaa % 8); |
| 2831 | } |
| 2832 | } |
| 2833 | |
| 2834 | result.args[i] = .{ .stack_offset = nsaa }; |
| 2835 | nsaa += param_size; |
| 2836 | } |
| 2837 | } |
| 2838 | |
| 2839 | result.stack_byte_count = nsaa; |
| 2840 | result.stack_align = 16; |
| 2841 | }, |
| 2842 | else => return self.fail("TODO implement function parameters for {} on aarch64", .{cc}), |
| 2843 | } |
| 2844 | |
| 2845 | if (ret_ty.zigTypeTag() == .NoReturn) { |
| 2846 | result.return_value = .{ .unreach = {} }; |
| 2847 | } else if (!ret_ty.hasCodeGenBits()) { |
| 2848 | result.return_value = .{ .none = {} }; |
| 2849 | } else switch (cc) { |
| 2850 | .Naked => unreachable, |
| 2851 | .Unspecified, .C => { |
| 2852 | const ret_ty_size = @intCast(u32, ret_ty.abiSize(self.target.*)); |
| 2853 | if (ret_ty_size <= 8) { |
| 2854 | result.return_value = .{ .register = c_abi_int_return_regs[0] }; |
| 2855 | } else { |
| 2856 | return self.fail("TODO support more return types for ARM backend", .{}); |
| 2857 | } |
| 2858 | }, |
| 2859 | else => return self.fail("TODO implement function return values for {}", .{cc}), |
| 2860 | } |
| 2861 | return result; |
| 2862 | } |
| 2863 | |
| 2864 | /// TODO support scope overrides. Also note this logic is duplicated with `Module.wantSafety`. |
| 2865 | fn wantSafety(self: *Self) bool { |
| 2866 | return switch (self.bin_file.options.optimize_mode) { |
| 2867 | .Debug => true, |
| 2868 | .ReleaseSafe => true, |
| 2869 | .ReleaseFast => false, |
| 2870 | .ReleaseSmall => false, |
| 2871 | }; |
| 2872 | } |
| 2873 | |
| 2874 | fn fail(self: *Self, comptime format: []const u8, args: anytype) InnerError { |
| 2875 | @setCold(true); |
| 2876 | assert(self.err_msg == null); |
| 2877 | self.err_msg = try ErrorMsg.create(self.bin_file.allocator, self.src_loc, format, args); |
| 2878 | return error.CodegenFail; |
| 2879 | } |
| 2880 | |
| 2881 | fn failSymbol(self: *Self, comptime format: []const u8, args: anytype) InnerError { |
| 2882 | @setCold(true); |
| 2883 | assert(self.err_msg == null); |
| 2884 | self.err_msg = try ErrorMsg.create(self.bin_file.allocator, self.src_loc, format, args); |
| 2885 | return error.CodegenFail; |
| 2886 | } |
| 2887 | |
| 2888 | const Register = @import("bits.zig").Register; |
| 2889 | const Instruction = @import("bits.zig").Instruction; |
| 2890 | const callee_preserved_regs = @import("bits.zig").callee_preserved_regs; |
| 2891 | const c_abi_int_param_regs = @import("bits.zig").c_abi_int_param_regs; |
| 2892 | const c_abi_int_return_regs = @import("bits.zig").c_abi_int_return_regs; |
| 2893 | |
| 2894 | fn parseRegName(name: []const u8) ?Register { |
| 2895 | if (@hasDecl(Register, "parseRegName")) { |
| 2896 | return Register.parseRegName(name); |
| 2897 | } |
| 2898 | return std.meta.stringToEnum(Register, name); |
| 2899 | } |
| 2900 | |
| 2901 | fn registerAlias(reg: Register, size_bytes: u32) Register { |
| 2902 | _ = size_bytes; |
| 2903 | |
| 2904 | return reg; |
| 2905 | } |
| 2906 | |
| 2907 | /// For most architectures this does nothing. For x86_64 it resolves any aliased registers |
| 2908 | /// to the 64-bit wide ones. |
| 2909 | fn toCanonicalReg(reg: Register) Register { |
| 2910 | return reg; |
| 2911 | } |