forked from OSchip/llvm-project
139 lines
5.6 KiB
LLVM
139 lines
5.6 KiB
LLVM
; RUN: opt -S -loop-predication -loop-predication-enable-iv-truncation=true < %s 2>&1 | FileCheck %s
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declare void @llvm.experimental.guard(i1, ...)
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declare i32 @length(i8*)
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declare i16 @short_length(i8*)
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; Consider range check of type i16 and i32, while IV is of type i64
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; We can loop predicate this because the IV range is within i16 and within i32.
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define i64 @iv_wider_type_rc_two_narrow_types(i32 %offA, i16 %offB, i8* %arrA, i8* %arrB) {
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; CHECK-LABEL: iv_wider_type_rc_two_narrow_types
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entry:
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; CHECK-LABEL: entry:
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; CHECK: [[idxB:[^ ]+]] = sub i16 %lengthB, %offB
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; CHECK-NEXT: [[limit_checkB:[^ ]+]] = icmp ule i16 16, [[idxB]]
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; CHECK-NEXT: [[first_iteration_checkB:[^ ]+]] = icmp ult i16 %offB, %lengthB
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; CHECK-NEXT: [[WideChkB:[^ ]+]] = and i1 [[first_iteration_checkB]], [[limit_checkB]]
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; CHECK-NEXT: [[idxA:[^ ]+]] = sub i32 %lengthA, %offA
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; CHECK-NEXT: [[limit_checkA:[^ ]+]] = icmp ule i32 16, [[idxA]]
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; CHECK-NEXT: [[first_iteration_checkA:[^ ]+]] = icmp ult i32 %offA, %lengthA
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; CHECK-NEXT: [[WideChkA:[^ ]+]] = and i1 [[first_iteration_checkA]], [[limit_checkA]]
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%lengthA = call i32 @length(i8* %arrA)
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%lengthB = call i16 @short_length(i8* %arrB)
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br label %loop
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loop:
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; CHECK-LABEL: loop:
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; CHECK: [[invariant_check:[^ ]+]] = and i1 [[WideChkB]], [[WideChkA]]
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; CHECK-NEXT: call void (i1, ...) @llvm.experimental.guard(i1 [[invariant_check]], i32 9)
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%iv = phi i64 [0, %entry ], [ %iv.next, %loop ]
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%iv.trunc.32 = trunc i64 %iv to i32
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%iv.trunc.16 = trunc i64 %iv to i16
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%indexA = add i32 %iv.trunc.32, %offA
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%indexB = add i16 %iv.trunc.16, %offB
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%rcA = icmp ult i32 %indexA, %lengthA
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%rcB = icmp ult i16 %indexB, %lengthB
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%wide.chk = and i1 %rcA, %rcB
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call void (i1, ...) @llvm.experimental.guard(i1 %wide.chk, i32 9) [ "deopt"() ]
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%indexA.ext = zext i32 %indexA to i64
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%addrA = getelementptr inbounds i8, i8* %arrA, i64 %indexA.ext
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%eltA = load i8, i8* %addrA
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%indexB.ext = zext i16 %indexB to i64
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%addrB = getelementptr inbounds i8, i8* %arrB, i64 %indexB.ext
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store i8 %eltA, i8* %addrB
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%iv.next = add nuw nsw i64 %iv, 1
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%latch.check = icmp ult i64 %iv.next, 16
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br i1 %latch.check, label %loop, label %exit
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exit:
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ret i64 %iv
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}
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; Consider an IV of type long and an array access into int array.
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; IV is of type i64 while the range check operands are of type i32 and i64.
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define i64 @iv_rc_different_types(i32 %offA, i32 %offB, i8* %arrA, i8* %arrB, i64 %max)
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{
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; CHECK-LABEL: iv_rc_different_types
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entry:
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; CHECK-LABEL: entry:
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; CHECK: [[lenB:[^ ]+]] = add i32 %lengthB, -1
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; CHECK-NEXT: [[idxB:[^ ]+]] = sub i32 [[lenB]], %offB
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; CHECK-NEXT: [[limit_checkB:[^ ]+]] = icmp ule i32 15, [[idxB]]
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; CHECK-NEXT: [[first_iteration_checkB:[^ ]+]] = icmp ult i32 %offB, %lengthB
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; CHECK-NEXT: [[WideChkB:[^ ]+]] = and i1 [[first_iteration_checkB]], [[limit_checkB]]
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; CHECK-NEXT: [[maxMinusOne:[^ ]+]] = add i64 %max, -1
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; CHECK-NEXT: [[limit_checkMax:[^ ]+]] = icmp ule i64 15, [[maxMinusOne]]
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; CHECK-NEXT: [[first_iteration_checkMax:[^ ]+]] = icmp ult i64 0, %max
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; CHECK-NEXT: [[WideChkMax:[^ ]+]] = and i1 [[first_iteration_checkMax]], [[limit_checkMax]]
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; CHECK-NEXT: [[lenA:[^ ]+]] = add i32 %lengthA, -1
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; CHECK-NEXT: [[idxA:[^ ]+]] = sub i32 [[lenA]], %offA
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; CHECK-NEXT: [[limit_checkA:[^ ]+]] = icmp ule i32 15, [[idxA]]
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; CHECK-NEXT: [[first_iteration_checkA:[^ ]+]] = icmp ult i32 %offA, %lengthA
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; CHECK-NEXT: [[WideChkA:[^ ]+]] = and i1 [[first_iteration_checkA]], [[limit_checkA]]
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%lengthA = call i32 @length(i8* %arrA)
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%lengthB = call i32 @length(i8* %arrB)
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br label %loop
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loop:
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; CHECK-LABEL: loop:
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; CHECK: [[BandMax:[^ ]+]] = and i1 [[WideChkB]], [[WideChkMax]]
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; CHECK: [[ABandMax:[^ ]+]] = and i1 [[BandMax]], [[WideChkA]]
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; CHECK: call void (i1, ...) @llvm.experimental.guard(i1 [[ABandMax]], i32 9)
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%iv = phi i64 [0, %entry ], [ %iv.next, %loop ]
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%iv.trunc = trunc i64 %iv to i32
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%indexA = add i32 %iv.trunc, %offA
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%indexB = add i32 %iv.trunc, %offB
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%rcA = icmp ult i32 %indexA, %lengthA
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%rcIV = icmp ult i64 %iv, %max
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%wide.chk = and i1 %rcA, %rcIV
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%rcB = icmp ult i32 %indexB, %lengthB
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%wide.chk.final = and i1 %wide.chk, %rcB
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call void (i1, ...) @llvm.experimental.guard(i1 %wide.chk.final, i32 9) [ "deopt"() ]
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%indexA.ext = zext i32 %indexA to i64
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%addrA = getelementptr inbounds i8, i8* %arrA, i64 %indexA.ext
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%eltA = load i8, i8* %addrA
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%indexB.ext = zext i32 %indexB to i64
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%addrB = getelementptr inbounds i8, i8* %arrB, i64 %indexB.ext
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%eltB = load i8, i8* %addrB
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%result = xor i8 %eltA, %eltB
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store i8 %result, i8* %addrA
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%iv.next = add nuw nsw i64 %iv, 1
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%latch.check = icmp ult i64 %iv, 15
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br i1 %latch.check, label %loop, label %exit
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exit:
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ret i64 %iv
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}
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; cannot narrow the IV to the range type, because we lose information.
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; for (i64 i= 5; i>= 2; i++)
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; this loop wraps around after reaching 2^64.
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define i64 @iv_rc_different_type(i32 %offA, i8* %arrA) {
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; CHECK-LABEL: iv_rc_different_type
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entry:
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%lengthA = call i32 @length(i8* %arrA)
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br label %loop
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loop:
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; CHECK-LABEL: loop:
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; CHECK: %rcA = icmp ult i32 %indexA, %lengthA
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; CHECK-NEXT: call void (i1, ...) @llvm.experimental.guard(i1 %rcA, i32 9)
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%iv = phi i64 [ 5, %entry ], [ %iv.next, %loop ]
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%iv.trunc.32 = trunc i64 %iv to i32
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%indexA = add i32 %iv.trunc.32, %offA
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%rcA = icmp ult i32 %indexA, %lengthA
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call void (i1, ...) @llvm.experimental.guard(i1 %rcA, i32 9) [ "deopt"() ]
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%indexA.ext = zext i32 %indexA to i64
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%addrA = getelementptr inbounds i8, i8* %arrA, i64 %indexA.ext
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%eltA = load i8, i8* %addrA
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%res = add i8 %eltA, 2
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store i8 %eltA, i8* %addrA
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%iv.next = add i64 %iv, 1
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%latch.check = icmp sge i64 %iv.next, 2
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br i1 %latch.check, label %loop, label %exit
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exit:
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ret i64 %iv
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}
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