forked from OSchip/llvm-project
197 lines
7.8 KiB
TableGen
197 lines
7.8 KiB
TableGen
//===- WebAssemblyInstrControl.td-WebAssembly control-flow ------*- tablegen -*-
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//
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// The LLVM Compiler Infrastructure
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//
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// This file is distributed under the University of Illinois Open Source
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// License. See LICENSE.TXT for details.
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//
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//===----------------------------------------------------------------------===//
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///
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/// \file
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/// WebAssembly control-flow code-gen constructs.
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///
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//===----------------------------------------------------------------------===//
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let Defs = [ARGUMENTS] in {
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let isBranch = 1, isTerminator = 1, hasCtrlDep = 1 in {
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// The condition operand is a boolean value which WebAssembly represents as i32.
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defm BR_IF : I<(outs), (ins bb_op:$dst, I32:$cond),
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(outs), (ins bb_op:$dst),
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[(brcond I32:$cond, bb:$dst)],
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"br_if \t$dst, $cond", "br_if \t$dst", 0x0d>;
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let isCodeGenOnly = 1 in
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defm BR_UNLESS : I<(outs), (ins bb_op:$dst, I32:$cond),
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(outs), (ins bb_op:$dst), []>;
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let isBarrier = 1 in {
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defm BR : NRI<(outs), (ins bb_op:$dst),
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[(br bb:$dst)],
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"br \t$dst", 0x0c>;
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} // isBarrier = 1
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} // isBranch = 1, isTerminator = 1, hasCtrlDep = 1
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} // Defs = [ARGUMENTS]
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def : Pat<(brcond (i32 (setne I32:$cond, 0)), bb:$dst),
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(BR_IF bb_op:$dst, I32:$cond)>;
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def : Pat<(brcond (i32 (seteq I32:$cond, 0)), bb:$dst),
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(BR_UNLESS bb_op:$dst, I32:$cond)>;
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let Defs = [ARGUMENTS] in {
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// TODO: SelectionDAG's lowering insists on using a pointer as the index for
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// jump tables, so in practice we don't ever use BR_TABLE_I64 in wasm32 mode
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// currently.
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// Set TSFlags{0} to 1 to indicate that the variable_ops are immediates.
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// Set TSFlags{1} to 1 to indicate that the immediates represent labels.
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// FIXME: this can't inherit from I<> since there is no way to inherit from a
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// multiclass and still have the let statements.
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let isTerminator = 1, hasCtrlDep = 1, isBarrier = 1 in {
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def BR_TABLE_I32 : NI<(outs), (ins I32:$index, variable_ops),
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[(WebAssemblybr_table I32:$index)], 0,
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"br_table \t$index", 0x0e> {
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let TSFlags{0} = 1;
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let TSFlags{1} = 1;
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}
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def BR_TABLE_I32_S : NI<(outs), (ins variable_ops),
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[], 1,
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"br_table", 0x0e> {
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let TSFlags{0} = 1;
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let TSFlags{1} = 1;
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}
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def BR_TABLE_I64 : NI<(outs), (ins I64:$index, variable_ops),
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[(WebAssemblybr_table I64:$index)], 0,
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"br_table \t$index"> {
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let TSFlags{0} = 1;
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let TSFlags{1} = 1;
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}
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def BR_TABLE_I64_S : NI<(outs), (ins variable_ops),
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[], 1,
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"br_table"> {
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let TSFlags{0} = 1;
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let TSFlags{1} = 1;
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}
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} // isTerminator = 1, hasCtrlDep = 1, isBarrier = 1
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// This is technically a control-flow instruction, since all it affects is the
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// IP.
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defm NOP : NRI<(outs), (ins), [], "nop", 0x01>;
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// Placemarkers to indicate the start or end of a block or loop scope.
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// These use/clobber VALUE_STACK to prevent them from being moved into the
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// middle of an expression tree.
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let Uses = [VALUE_STACK], Defs = [VALUE_STACK] in {
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defm BLOCK : NRI<(outs), (ins Signature:$sig), [], "block \t$sig", 0x02>;
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defm LOOP : NRI<(outs), (ins Signature:$sig), [], "loop \t$sig", 0x03>;
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// END_BLOCK, END_LOOP, and END_FUNCTION are represented with the same opcode in
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// wasm.
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defm END_BLOCK : NRI<(outs), (ins), [], "end_block", 0x0b>;
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defm END_LOOP : NRI<(outs), (ins), [], "end_loop", 0x0b>;
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let isTerminator = 1, isBarrier = 1 in
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defm END_FUNCTION : NRI<(outs), (ins), [], "end_function", 0x0b>;
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} // Uses = [VALUE_STACK], Defs = [VALUE_STACK]
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multiclass RETURN<WebAssemblyRegClass vt> {
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defm RETURN_#vt : I<(outs), (ins vt:$val), (outs), (ins),
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[(WebAssemblyreturn vt:$val)],
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"return \t$val", "return", 0x0f>;
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// Equivalent to RETURN_#vt, for use at the end of a function when wasm
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// semantics return by falling off the end of the block.
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let isCodeGenOnly = 1 in
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defm FALLTHROUGH_RETURN_#vt : I<(outs), (ins vt:$val), (outs), (ins), []>;
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}
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multiclass SIMD_RETURN<ValueType vt> {
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defm RETURN_#vt : I<(outs), (ins V128:$val), (outs), (ins),
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[(WebAssemblyreturn (vt V128:$val))],
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"return \t$val", "return", 0x0f>,
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Requires<[HasSIMD128]>;
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// Equivalent to RETURN_#vt, for use at the end of a function when wasm
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// semantics return by falling off the end of the block.
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let isCodeGenOnly = 1 in
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defm FALLTHROUGH_RETURN_#vt : I<(outs), (ins V128:$val), (outs), (ins),
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[]>,
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Requires<[HasSIMD128]>;
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}
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let isTerminator = 1, hasCtrlDep = 1, isBarrier = 1 in {
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let isReturn = 1 in {
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defm "": RETURN<I32>;
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defm "": RETURN<I64>;
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defm "": RETURN<F32>;
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defm "": RETURN<F64>;
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defm "": RETURN<EXCEPT_REF>;
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defm "": SIMD_RETURN<v16i8>;
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defm "": SIMD_RETURN<v8i16>;
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defm "": SIMD_RETURN<v4i32>;
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defm "": SIMD_RETURN<v2i64>;
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defm "": SIMD_RETURN<v4f32>;
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defm "": SIMD_RETURN<v2f64>;
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defm RETURN_VOID : NRI<(outs), (ins), [(WebAssemblyreturn)], "return", 0x0f>;
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// This is to RETURN_VOID what FALLTHROUGH_RETURN_#vt is to RETURN_#vt.
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let isCodeGenOnly = 1 in
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defm FALLTHROUGH_RETURN_VOID : NRI<(outs), (ins), []>;
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} // isReturn = 1
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defm UNREACHABLE : NRI<(outs), (ins), [(trap)], "unreachable", 0x00>;
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} // isTerminator = 1, hasCtrlDep = 1, isBarrier = 1
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//===----------------------------------------------------------------------===//
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// Exception handling instructions
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//===----------------------------------------------------------------------===//
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let Predicates = [HasExceptionHandling] in {
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// Throwing an exception: throw / rethrow
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let isTerminator = 1, hasCtrlDep = 1, isBarrier = 1 in {
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defm THROW_I32 : I<(outs), (ins i32imm:$tag, I32:$val),
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(outs), (ins i32imm:$tag),
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[(int_wasm_throw imm:$tag, I32:$val)],
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"throw \t$tag, $val", "throw \t$tag",
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0x08>;
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defm THROW_I64 : I<(outs), (ins i32imm:$tag, I64:$val),
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(outs), (ins i32imm:$tag),
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[(int_wasm_throw imm:$tag, I64:$val)],
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"throw \t$tag, $val", "throw \t$tag",
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0x08>;
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defm RETHROW : NRI<(outs), (ins bb_op:$dst), [], "rethrow \t$dst", 0x09>;
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let isCodeGenOnly = 1 in
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// This is used when the destination for rethrow is the caller function. This
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// will be converted to a rethrow in CFGStackify.
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defm RETHROW_TO_CALLER : NRI<(outs), (ins), [], "rethrow">;
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} // isTerminator = 1, hasCtrlDep = 1, isBarrier = 1
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// Region within which an exception is caught: try / end_try
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let Uses = [VALUE_STACK], Defs = [VALUE_STACK] in {
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defm TRY : NRI<(outs), (ins Signature:$sig), [], "try \t$sig", 0x06>;
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defm END_TRY : NRI<(outs), (ins), [], "end_try", 0x0b>;
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} // Uses = [VALUE_STACK], Defs = [VALUE_STACK]
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// Catching an exception: catch / catch_all
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let hasCtrlDep = 1, hasSideEffects = 1 in {
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defm CATCH_I32 : I<(outs I32:$dst), (ins i32imm:$tag),
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(outs), (ins i32imm:$tag),
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[(set I32:$dst, (int_wasm_catch imm:$tag))],
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"i32.catch \t$dst, $tag", "i32.catch \t$tag", 0x07>;
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defm CATCH_I64 : I<(outs I64:$dst), (ins i32imm:$tag),
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(outs), (ins i32imm:$tag),
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[(set I64:$dst, (int_wasm_catch imm:$tag))],
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"i64.catch \t$dst, $tag", "i64.catch \t$tag", 0x07>;
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defm CATCH_ALL : NRI<(outs), (ins), [], "catch_all", 0x05>;
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}
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// Pseudo instructions: cleanupret / catchret
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let isTerminator = 1, hasSideEffects = 1, isBarrier = 1, hasCtrlDep = 1,
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isCodeGenOnly = 1, isEHScopeReturn = 1 in {
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defm CLEANUPRET : NRI<(outs), (ins), [(cleanupret)], "", 0>;
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defm CATCHRET : NRI<(outs), (ins bb_op:$dst, bb_op:$from),
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[(catchret bb:$dst, bb:$from)], "", 0>;
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}
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}
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} // Defs = [ARGUMENTS]
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