519 lines
14 KiB
LLVM
519 lines
14 KiB
LLVM
; NOTE: Assertions have been autogenerated by utils/update_test_checks.py
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; RUN: opt < %s -passes=correlated-propagation -S | FileCheck %s
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declare void @llvm.assume(i1)
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declare i32 @llvm.abs.i32(i32, i1)
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declare i8 @llvm.abs.i8(i8, i1)
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declare i1 @llvm.abs.i1(i1, i1)
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; If we don't know anything about the argument, we can't do anything.
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define i8 @test0(i8 %x) {
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; CHECK-LABEL: @test0(
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; CHECK-NEXT: [[R:%.*]] = call i8 @llvm.abs.i8(i8 [[X:%.*]], i1 false)
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; CHECK-NEXT: ret i8 [[R]]
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;
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%r = call i8 @llvm.abs.i8(i8 %x, i1 0)
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ret i8 %r
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}
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define i8 @test1(i8 %x) {
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; CHECK-LABEL: @test1(
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; CHECK-NEXT: [[R:%.*]] = call i8 @llvm.abs.i8(i8 [[X:%.*]], i1 true)
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; CHECK-NEXT: ret i8 [[R]]
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;
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%r = call i8 @llvm.abs.i8(i8 %x, i1 1)
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ret i8 %r
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}
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; But if we know that the argument is always positive, we can bypass @llvm.abs.
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define i8 @test2(i8 %x) {
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; CHECK-LABEL: @test2(
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; CHECK-NEXT: [[LIM:%.*]] = icmp sge i8 [[X:%.*]], -1
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; CHECK-NEXT: call void @llvm.assume(i1 [[LIM]])
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; CHECK-NEXT: [[R:%.*]] = call i8 @llvm.abs.i8(i8 [[X]], i1 true)
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; CHECK-NEXT: ret i8 [[R]]
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;
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%lim = icmp sge i8 %x, -1
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call void @llvm.assume(i1 %lim)
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%r = call i8 @llvm.abs.i8(i8 %x, i1 0)
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ret i8 %r
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}
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define i8 @test3(i8 %x) {
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; CHECK-LABEL: @test3(
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; CHECK-NEXT: [[LIM:%.*]] = icmp sge i8 [[X:%.*]], -1
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; CHECK-NEXT: call void @llvm.assume(i1 [[LIM]])
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; CHECK-NEXT: [[R:%.*]] = call i8 @llvm.abs.i8(i8 [[X]], i1 true)
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; CHECK-NEXT: ret i8 [[R]]
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;
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%lim = icmp sge i8 %x, -1
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call void @llvm.assume(i1 %lim)
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%r = call i8 @llvm.abs.i8(i8 %x, i1 1)
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ret i8 %r
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}
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define i8 @test4(i8 %x) {
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; CHECK-LABEL: @test4(
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; CHECK-NEXT: [[LIM:%.*]] = icmp sge i8 [[X:%.*]], 0
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; CHECK-NEXT: call void @llvm.assume(i1 [[LIM]])
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; CHECK-NEXT: ret i8 [[X]]
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;
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%lim = icmp sge i8 %x, 0
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call void @llvm.assume(i1 %lim)
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%r = call i8 @llvm.abs.i8(i8 %x, i1 0)
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ret i8 %r
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}
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define i8 @test5(i8 %x) {
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; CHECK-LABEL: @test5(
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; CHECK-NEXT: [[LIM:%.*]] = icmp sge i8 [[X:%.*]], 0
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; CHECK-NEXT: call void @llvm.assume(i1 [[LIM]])
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; CHECK-NEXT: ret i8 [[X]]
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;
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%lim = icmp sge i8 %x, 0
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call void @llvm.assume(i1 %lim)
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%r = call i8 @llvm.abs.i8(i8 %x, i1 1)
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ret i8 %r
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}
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define i8 @test6(i8 %x) {
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; CHECK-LABEL: @test6(
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; CHECK-NEXT: [[LIM:%.*]] = icmp sge i8 [[X:%.*]], 1
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; CHECK-NEXT: call void @llvm.assume(i1 [[LIM]])
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; CHECK-NEXT: ret i8 [[X]]
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;
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%lim = icmp sge i8 %x, 1
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call void @llvm.assume(i1 %lim)
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%r = call i8 @llvm.abs.i8(i8 %x, i1 0)
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ret i8 %r
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}
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define i8 @test7(i8 %x) {
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; CHECK-LABEL: @test7(
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; CHECK-NEXT: [[LIM:%.*]] = icmp sge i8 [[X:%.*]], 1
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; CHECK-NEXT: call void @llvm.assume(i1 [[LIM]])
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; CHECK-NEXT: ret i8 [[X]]
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;
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%lim = icmp sge i8 %x, 1
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call void @llvm.assume(i1 %lim)
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%r = call i8 @llvm.abs.i8(i8 %x, i1 1)
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ret i8 %r
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}
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; Likewise, INT_MIN is fine for otherwise-positive value.
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define i8 @test8(i8 %x) {
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; CHECK-LABEL: @test8(
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; CHECK-NEXT: [[LIM:%.*]] = icmp ule i8 [[X:%.*]], 127
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; CHECK-NEXT: call void @llvm.assume(i1 [[LIM]])
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; CHECK-NEXT: ret i8 [[X]]
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;
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%lim = icmp ule i8 %x, 127
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call void @llvm.assume(i1 %lim)
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%r = call i8 @llvm.abs.i8(i8 %x, i1 0)
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ret i8 %r
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}
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define i8 @test9(i8 %x) {
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; CHECK-LABEL: @test9(
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; CHECK-NEXT: [[LIM:%.*]] = icmp ule i8 [[X:%.*]], 127
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; CHECK-NEXT: call void @llvm.assume(i1 [[LIM]])
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; CHECK-NEXT: ret i8 [[X]]
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;
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%lim = icmp ule i8 %x, 127
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call void @llvm.assume(i1 %lim)
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%r = call i8 @llvm.abs.i8(i8 %x, i1 1)
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ret i8 %r
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}
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define i8 @test10(i8 %x) {
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; CHECK-LABEL: @test10(
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; CHECK-NEXT: [[LIM:%.*]] = icmp ule i8 [[X:%.*]], -128
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; CHECK-NEXT: call void @llvm.assume(i1 [[LIM]])
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; CHECK-NEXT: ret i8 [[X]]
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;
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%lim = icmp ule i8 %x, 128
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call void @llvm.assume(i1 %lim)
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%r = call i8 @llvm.abs.i8(i8 %x, i1 0)
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ret i8 %r
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}
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define i8 @test11(i8 %x) {
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; CHECK-LABEL: @test11(
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; CHECK-NEXT: [[LIM:%.*]] = icmp ule i8 [[X:%.*]], -128
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; CHECK-NEXT: call void @llvm.assume(i1 [[LIM]])
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; CHECK-NEXT: ret i8 [[X]]
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;
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%lim = icmp ule i8 %x, 128
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call void @llvm.assume(i1 %lim)
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%r = call i8 @llvm.abs.i8(i8 %x, i1 1)
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ret i8 %r
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}
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define i8 @test12(i8 %x) {
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; CHECK-LABEL: @test12(
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; CHECK-NEXT: [[LIM:%.*]] = icmp ule i8 [[X:%.*]], -127
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; CHECK-NEXT: call void @llvm.assume(i1 [[LIM]])
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; CHECK-NEXT: [[R:%.*]] = call i8 @llvm.abs.i8(i8 [[X]], i1 false)
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; CHECK-NEXT: ret i8 [[R]]
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;
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%lim = icmp ule i8 %x, 129
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call void @llvm.assume(i1 %lim)
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%r = call i8 @llvm.abs.i8(i8 %x, i1 0)
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ret i8 %r
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}
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define i8 @test13(i8 %x) {
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; CHECK-LABEL: @test13(
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; CHECK-NEXT: [[LIM:%.*]] = icmp ule i8 [[X:%.*]], -127
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; CHECK-NEXT: call void @llvm.assume(i1 [[LIM]])
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; CHECK-NEXT: [[R:%.*]] = call i8 @llvm.abs.i8(i8 [[X]], i1 true)
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; CHECK-NEXT: ret i8 [[R]]
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;
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%lim = icmp ule i8 %x, 129
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call void @llvm.assume(i1 %lim)
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%r = call i8 @llvm.abs.i8(i8 %x, i1 1)
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ret i8 %r
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}
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; Likewise, if we know that argument is always negative,
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; we can expand @llvm.abs into a direct negation.
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; For negative arguments, we must be careful to include 0 though.
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define i8 @test14(i8 %x) {
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; CHECK-LABEL: @test14(
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; CHECK-NEXT: [[LIM:%.*]] = icmp sle i8 [[X:%.*]], -1
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; CHECK-NEXT: call void @llvm.assume(i1 [[LIM]])
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; CHECK-NEXT: [[R1:%.*]] = sub i8 0, [[X]]
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; CHECK-NEXT: ret i8 [[R1]]
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;
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%lim = icmp sle i8 %x, -1
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call void @llvm.assume(i1 %lim)
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%r = call i8 @llvm.abs.i8(i8 %x, i1 0)
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ret i8 %r
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}
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define i8 @test15(i8 %x) {
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; CHECK-LABEL: @test15(
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; CHECK-NEXT: [[LIM:%.*]] = icmp sle i8 [[X:%.*]], -1
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; CHECK-NEXT: call void @llvm.assume(i1 [[LIM]])
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; CHECK-NEXT: [[R1:%.*]] = sub nsw i8 0, [[X]]
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; CHECK-NEXT: ret i8 [[R1]]
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;
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%lim = icmp sle i8 %x, -1
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call void @llvm.assume(i1 %lim)
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%r = call i8 @llvm.abs.i8(i8 %x, i1 1)
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ret i8 %r
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}
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define i8 @test16(i8 %x) {
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; CHECK-LABEL: @test16(
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; CHECK-NEXT: [[LIM:%.*]] = icmp sle i8 [[X:%.*]], 0
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; CHECK-NEXT: call void @llvm.assume(i1 [[LIM]])
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; CHECK-NEXT: [[R1:%.*]] = sub i8 0, [[X]]
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; CHECK-NEXT: ret i8 [[R1]]
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;
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%lim = icmp sle i8 %x, 0
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call void @llvm.assume(i1 %lim)
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%r = call i8 @llvm.abs.i8(i8 %x, i1 0)
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ret i8 %r
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}
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define i8 @test17(i8 %x) {
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; CHECK-LABEL: @test17(
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; CHECK-NEXT: [[LIM:%.*]] = icmp sle i8 [[X:%.*]], 0
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; CHECK-NEXT: call void @llvm.assume(i1 [[LIM]])
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; CHECK-NEXT: [[R1:%.*]] = sub nsw i8 0, [[X]]
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; CHECK-NEXT: ret i8 [[R1]]
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;
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%lim = icmp sle i8 %x, 0
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call void @llvm.assume(i1 %lim)
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%r = call i8 @llvm.abs.i8(i8 %x, i1 1)
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ret i8 %r
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}
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define i8 @test18(i8 %x) {
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; CHECK-LABEL: @test18(
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; CHECK-NEXT: [[LIM:%.*]] = icmp sle i8 [[X:%.*]], 1
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; CHECK-NEXT: call void @llvm.assume(i1 [[LIM]])
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; CHECK-NEXT: [[R:%.*]] = call i8 @llvm.abs.i8(i8 [[X]], i1 false)
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; CHECK-NEXT: ret i8 [[R]]
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;
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%lim = icmp sle i8 %x, 1
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call void @llvm.assume(i1 %lim)
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%r = call i8 @llvm.abs.i8(i8 %x, i1 0)
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ret i8 %r
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}
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define i8 @test19(i8 %x) {
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; CHECK-LABEL: @test19(
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; CHECK-NEXT: [[LIM:%.*]] = icmp sle i8 [[X:%.*]], 1
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; CHECK-NEXT: call void @llvm.assume(i1 [[LIM]])
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; CHECK-NEXT: [[R:%.*]] = call i8 @llvm.abs.i8(i8 [[X]], i1 true)
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; CHECK-NEXT: ret i8 [[R]]
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;
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%lim = icmp sle i8 %x, 1
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call void @llvm.assume(i1 %lim)
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%r = call i8 @llvm.abs.i8(i8 %x, i1 1)
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ret i8 %r
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}
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; And again, INT_MIN is also fine for otherwise-negative range.
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define i8 @test20(i8 %x) {
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; CHECK-LABEL: @test20(
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; CHECK-NEXT: [[LIM:%.*]] = icmp uge i8 [[X:%.*]], 127
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; CHECK-NEXT: call void @llvm.assume(i1 [[LIM]])
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; CHECK-NEXT: [[R:%.*]] = call i8 @llvm.abs.i8(i8 [[X]], i1 false)
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; CHECK-NEXT: ret i8 [[R]]
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;
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%lim = icmp uge i8 %x, 127
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call void @llvm.assume(i1 %lim)
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%r = call i8 @llvm.abs.i8(i8 %x, i1 0)
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ret i8 %r
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}
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define i8 @test21(i8 %x) {
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; CHECK-LABEL: @test21(
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; CHECK-NEXT: [[LIM:%.*]] = icmp uge i8 [[X:%.*]], 127
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; CHECK-NEXT: call void @llvm.assume(i1 [[LIM]])
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; CHECK-NEXT: [[R:%.*]] = call i8 @llvm.abs.i8(i8 [[X]], i1 true)
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; CHECK-NEXT: ret i8 [[R]]
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;
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%lim = icmp uge i8 %x, 127
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call void @llvm.assume(i1 %lim)
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%r = call i8 @llvm.abs.i8(i8 %x, i1 1)
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ret i8 %r
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}
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define i8 @test22(i8 %x) {
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; CHECK-LABEL: @test22(
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; CHECK-NEXT: [[LIM:%.*]] = icmp uge i8 [[X:%.*]], -128
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; CHECK-NEXT: call void @llvm.assume(i1 [[LIM]])
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; CHECK-NEXT: [[R1:%.*]] = sub i8 0, [[X]]
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; CHECK-NEXT: ret i8 [[R1]]
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;
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%lim = icmp uge i8 %x, 128
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call void @llvm.assume(i1 %lim)
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%r = call i8 @llvm.abs.i8(i8 %x, i1 0)
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ret i8 %r
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}
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define i8 @test23(i8 %x) {
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; CHECK-LABEL: @test23(
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; CHECK-NEXT: [[LIM:%.*]] = icmp uge i8 [[X:%.*]], -128
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; CHECK-NEXT: call void @llvm.assume(i1 [[LIM]])
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; CHECK-NEXT: [[R1:%.*]] = sub nsw i8 0, [[X]]
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; CHECK-NEXT: ret i8 [[R1]]
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;
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%lim = icmp uge i8 %x, 128
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call void @llvm.assume(i1 %lim)
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%r = call i8 @llvm.abs.i8(i8 %x, i1 1)
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ret i8 %r
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}
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define i8 @test24(i8 %x) {
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; CHECK-LABEL: @test24(
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; CHECK-NEXT: [[LIM:%.*]] = icmp uge i8 [[X:%.*]], -127
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; CHECK-NEXT: call void @llvm.assume(i1 [[LIM]])
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; CHECK-NEXT: [[R1:%.*]] = sub nsw i8 0, [[X]]
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; CHECK-NEXT: ret i8 [[R1]]
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;
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%lim = icmp uge i8 %x, 129
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call void @llvm.assume(i1 %lim)
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%r = call i8 @llvm.abs.i8(i8 %x, i1 0)
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ret i8 %r
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}
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define i8 @test25(i8 %x) {
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; CHECK-LABEL: @test25(
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; CHECK-NEXT: [[LIM:%.*]] = icmp uge i8 [[X:%.*]], -127
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; CHECK-NEXT: call void @llvm.assume(i1 [[LIM]])
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; CHECK-NEXT: [[R1:%.*]] = sub nsw i8 0, [[X]]
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; CHECK-NEXT: ret i8 [[R1]]
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;
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%lim = icmp uge i8 %x, 129
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call void @llvm.assume(i1 %lim)
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%r = call i8 @llvm.abs.i8(i8 %x, i1 1)
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ret i8 %r
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}
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; If all else fails, we can sometimes at least inferr NSW.
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define i8 @test26(i8 %x) {
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; CHECK-LABEL: @test26(
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; CHECK-NEXT: [[LIM:%.*]] = icmp ne i8 [[X:%.*]], -128
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; CHECK-NEXT: call void @llvm.assume(i1 [[LIM]])
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; CHECK-NEXT: [[R:%.*]] = call i8 @llvm.abs.i8(i8 [[X]], i1 true)
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; CHECK-NEXT: ret i8 [[R]]
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;
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%lim = icmp ne i8 %x, 128
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call void @llvm.assume(i1 %lim)
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%r = call i8 @llvm.abs.i8(i8 %x, i1 0)
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ret i8 %r
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}
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define i8 @test27(i8 %x) {
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; CHECK-LABEL: @test27(
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; CHECK-NEXT: [[LIM:%.*]] = icmp ne i8 [[X:%.*]], -128
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; CHECK-NEXT: call void @llvm.assume(i1 [[LIM]])
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; CHECK-NEXT: [[R:%.*]] = call i8 @llvm.abs.i8(i8 [[X]], i1 true)
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; CHECK-NEXT: ret i8 [[R]]
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;
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%lim = icmp ne i8 %x, 128
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call void @llvm.assume(i1 %lim)
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%r = call i8 @llvm.abs.i8(i8 %x, i1 1)
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ret i8 %r
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}
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define i1 @pr59887(i1 %x, i1 %c) {
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; CHECK-LABEL: @pr59887(
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; CHECK-NEXT: [[RES:%.*]] = select i1 [[C:%.*]], i1 [[X:%.*]], i1 false
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; CHECK-NEXT: ret i1 [[RES]]
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;
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%abs = call i1 @llvm.abs.i1(i1 %x, i1 false)
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%res = select i1 %c, i1 %abs, i1 false
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ret i1 %res
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}
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; Because of `undef`, We can't delete `abs`.
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; We can't replace the `abs` argument with true either.
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define i32 @pr68381_undef_abs_false(i1 %c0, i1 %c1, i8 %v1) {
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; CHECK-LABEL: @pr68381_undef_abs_false(
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; CHECK-NEXT: start:
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; CHECK-NEXT: br i1 [[C0:%.*]], label [[BB0:%.*]], label [[BB1:%.*]]
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; CHECK: bb0:
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; CHECK-NEXT: [[V1_I32:%.*]] = zext i8 [[V1:%.*]] to i32
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; CHECK-NEXT: br label [[BB1]]
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; CHECK: bb1:
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; CHECK-NEXT: [[X:%.*]] = phi i32 [ [[V1_I32]], [[BB0]] ], [ undef, [[START:%.*]] ]
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; CHECK-NEXT: br i1 [[C1:%.*]], label [[BB0]], label [[BB2:%.*]]
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; CHECK: bb2:
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; CHECK-NEXT: [[Z:%.*]] = call i32 @llvm.abs.i32(i32 [[X]], i1 false)
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; CHECK-NEXT: ret i32 [[Z]]
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;
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start:
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br i1 %c0, label %bb0, label %bb1
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bb0:
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%v1_i32 = zext i8 %v1 to i32
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br label %bb1
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bb1:
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%x = phi i32 [ %v1_i32, %bb0 ], [ undef, %start ]
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br i1 %c1, label %bb0, label %bb2
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bb2:
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%z = call i32 @llvm.abs.i32(i32 %x, i1 false)
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ret i32 %z
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}
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; Because of `and`, we can delete `abs`.
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define i32 @pr68381_undef_abs_false_and(i1 %c0, i1 %c1, i8 %v1) {
|
|
; CHECK-LABEL: @pr68381_undef_abs_false_and(
|
|
; CHECK-NEXT: start:
|
|
; CHECK-NEXT: br i1 [[C0:%.*]], label [[BB0:%.*]], label [[BB1:%.*]]
|
|
; CHECK: bb0:
|
|
; CHECK-NEXT: [[V1_I32:%.*]] = zext i8 [[V1:%.*]] to i32
|
|
; CHECK-NEXT: br label [[BB1]]
|
|
; CHECK: bb1:
|
|
; CHECK-NEXT: [[X:%.*]] = phi i32 [ [[V1_I32]], [[BB0]] ], [ undef, [[START:%.*]] ]
|
|
; CHECK-NEXT: br i1 [[C1:%.*]], label [[BB0]], label [[BB2:%.*]]
|
|
; CHECK: bb2:
|
|
; CHECK-NEXT: [[Y:%.*]] = and i32 [[X]], 255
|
|
; CHECK-NEXT: ret i32 [[Y]]
|
|
;
|
|
start:
|
|
br i1 %c0, label %bb0, label %bb1
|
|
|
|
bb0:
|
|
%v1_i32 = zext i8 %v1 to i32
|
|
br label %bb1
|
|
|
|
bb1:
|
|
%x = phi i32 [ %v1_i32, %bb0 ], [ undef, %start ]
|
|
br i1 %c1, label %bb0, label %bb2
|
|
|
|
bb2:
|
|
%y = and i32 %x, 255
|
|
%z = call i32 @llvm.abs.i32(i32 %y, i1 false)
|
|
ret i32 %z
|
|
}
|
|
|
|
; Because of `undef`, we can't replace `abs` with `sub`.
|
|
define i32 @pr68381_undef_abs_false_sub(i1 %c0, i1 %c1, i32 %v1, i32 %v2) {
|
|
; CHECK-LABEL: @pr68381_undef_abs_false_sub(
|
|
; CHECK-NEXT: start:
|
|
; CHECK-NEXT: br i1 [[C0:%.*]], label [[BB0:%.*]], label [[BB1:%.*]]
|
|
; CHECK: bb0:
|
|
; CHECK-NEXT: [[V3:%.*]] = add i32 [[V1:%.*]], [[V2:%.*]]
|
|
; CHECK-NEXT: [[LIM:%.*]] = icmp sle i32 [[V3]], -1
|
|
; CHECK-NEXT: call void @llvm.assume(i1 [[LIM]])
|
|
; CHECK-NEXT: br label [[BB1]]
|
|
; CHECK: bb1:
|
|
; CHECK-NEXT: [[X:%.*]] = phi i32 [ [[V3]], [[BB0]] ], [ undef, [[START:%.*]] ]
|
|
; CHECK-NEXT: br i1 [[C1:%.*]], label [[BB0]], label [[BB2:%.*]]
|
|
; CHECK: bb2:
|
|
; CHECK-NEXT: [[Z:%.*]] = call i32 @llvm.abs.i32(i32 [[X]], i1 false)
|
|
; CHECK-NEXT: ret i32 [[Z]]
|
|
;
|
|
start:
|
|
br i1 %c0, label %bb0, label %bb1
|
|
|
|
bb0:
|
|
%v3 = add i32 %v1, %v2
|
|
%lim = icmp sle i32 %v3, -1
|
|
call void @llvm.assume(i1 %lim)
|
|
br label %bb1
|
|
|
|
bb1:
|
|
%x = phi i32 [ %v3, %bb0 ], [ undef, %start ]
|
|
br i1 %c1, label %bb0, label %bb2
|
|
|
|
bb2:
|
|
%z = call i32 @llvm.abs.i32(i32 %x, i1 false)
|
|
ret i32 %z
|
|
}
|
|
|
|
; We can delete `abs`.
|
|
define i32 @pr68381_undef_abs_true(i1 %c0, i1 %c1, i8 %v1) {
|
|
; CHECK-LABEL: @pr68381_undef_abs_true(
|
|
; CHECK-NEXT: start:
|
|
; CHECK-NEXT: br i1 [[C0:%.*]], label [[BB0:%.*]], label [[BB1:%.*]]
|
|
; CHECK: bb0:
|
|
; CHECK-NEXT: [[V1_I32:%.*]] = zext i8 [[V1:%.*]] to i32
|
|
; CHECK-NEXT: br label [[BB1]]
|
|
; CHECK: bb1:
|
|
; CHECK-NEXT: [[X:%.*]] = phi i32 [ [[V1_I32]], [[BB0]] ], [ undef, [[START:%.*]] ]
|
|
; CHECK-NEXT: br i1 [[C1:%.*]], label [[BB0]], label [[BB2:%.*]]
|
|
; CHECK: bb2:
|
|
; CHECK-NEXT: ret i32 [[X]]
|
|
;
|
|
start:
|
|
br i1 %c0, label %bb0, label %bb1
|
|
|
|
bb0:
|
|
%v1_i32 = zext i8 %v1 to i32
|
|
br label %bb1
|
|
|
|
bb1:
|
|
%x = phi i32 [ %v1_i32, %bb0 ], [ undef, %start ]
|
|
br i1 %c1, label %bb0, label %bb2
|
|
|
|
bb2:
|
|
%z = call i32 @llvm.abs.i32(i32 %x, i1 true)
|
|
ret i32 %z
|
|
}
|