180 lines
7.0 KiB
C
180 lines
7.0 KiB
C
// NOTE: Assertions have been autogenerated by utils/update_cc_test_checks.py
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// RUN: %clang_cc1 -triple riscv32 -target-feature +experimental-zbp -emit-llvm %s -o - \
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// RUN: | FileCheck %s -check-prefix=RV32ZBP
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// RV32ZBP-LABEL: @grev(
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// RV32ZBP-NEXT: entry:
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// RV32ZBP-NEXT: [[RS1_ADDR:%.*]] = alloca i32, align 4
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// RV32ZBP-NEXT: [[RS2_ADDR:%.*]] = alloca i32, align 4
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// RV32ZBP-NEXT: store i32 [[RS1:%.*]], i32* [[RS1_ADDR]], align 4
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// RV32ZBP-NEXT: store i32 [[RS2:%.*]], i32* [[RS2_ADDR]], align 4
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// RV32ZBP-NEXT: [[TMP0:%.*]] = load i32, i32* [[RS1_ADDR]], align 4
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// RV32ZBP-NEXT: [[TMP1:%.*]] = load i32, i32* [[RS2_ADDR]], align 4
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// RV32ZBP-NEXT: [[TMP2:%.*]] = call i32 @llvm.riscv.grev.i32(i32 [[TMP0]], i32 [[TMP1]])
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// RV32ZBP-NEXT: ret i32 [[TMP2]]
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//
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long grev(long rs1, long rs2)
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{
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return __builtin_riscv_grev_32(rs1, rs2);
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}
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// RV32ZBP-LABEL: @grevi(
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// RV32ZBP-NEXT: entry:
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// RV32ZBP-NEXT: [[RS1_ADDR:%.*]] = alloca i32, align 4
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// RV32ZBP-NEXT: [[I:%.*]] = alloca i32, align 4
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// RV32ZBP-NEXT: store i32 [[RS1:%.*]], i32* [[RS1_ADDR]], align 4
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// RV32ZBP-NEXT: store i32 13, i32* [[I]], align 4
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// RV32ZBP-NEXT: [[TMP0:%.*]] = load i32, i32* [[RS1_ADDR]], align 4
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// RV32ZBP-NEXT: [[TMP1:%.*]] = call i32 @llvm.riscv.grev.i32(i32 [[TMP0]], i32 13)
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// RV32ZBP-NEXT: ret i32 [[TMP1]]
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//
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long grevi(long rs1)
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{
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const int i = 13;
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return __builtin_riscv_grev_32(rs1, i);
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}
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// RV32ZBP-LABEL: @gorc(
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// RV32ZBP-NEXT: entry:
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// RV32ZBP-NEXT: [[RS1_ADDR:%.*]] = alloca i32, align 4
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// RV32ZBP-NEXT: [[RS2_ADDR:%.*]] = alloca i32, align 4
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// RV32ZBP-NEXT: store i32 [[RS1:%.*]], i32* [[RS1_ADDR]], align 4
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// RV32ZBP-NEXT: store i32 [[RS2:%.*]], i32* [[RS2_ADDR]], align 4
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// RV32ZBP-NEXT: [[TMP0:%.*]] = load i32, i32* [[RS1_ADDR]], align 4
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// RV32ZBP-NEXT: [[TMP1:%.*]] = load i32, i32* [[RS2_ADDR]], align 4
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// RV32ZBP-NEXT: [[TMP2:%.*]] = call i32 @llvm.riscv.gorc.i32(i32 [[TMP0]], i32 [[TMP1]])
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// RV32ZBP-NEXT: ret i32 [[TMP2]]
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//
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long gorc(long rs1, long rs2)
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{
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return __builtin_riscv_gorc_32(rs1, rs2);
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}
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// RV32ZBP-LABEL: @gorci(
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// RV32ZBP-NEXT: entry:
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// RV32ZBP-NEXT: [[RS1_ADDR:%.*]] = alloca i32, align 4
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// RV32ZBP-NEXT: [[I:%.*]] = alloca i32, align 4
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// RV32ZBP-NEXT: store i32 [[RS1:%.*]], i32* [[RS1_ADDR]], align 4
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// RV32ZBP-NEXT: store i32 13, i32* [[I]], align 4
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// RV32ZBP-NEXT: [[TMP0:%.*]] = load i32, i32* [[RS1_ADDR]], align 4
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// RV32ZBP-NEXT: [[TMP1:%.*]] = call i32 @llvm.riscv.gorc.i32(i32 [[TMP0]], i32 13)
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// RV32ZBP-NEXT: ret i32 [[TMP1]]
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//
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long gorci(long rs1)
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{
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const int i = 13;
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return __builtin_riscv_gorc_32(rs1, i);
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}
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// RV32ZBP-LABEL: @shfl(
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// RV32ZBP-NEXT: entry:
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// RV32ZBP-NEXT: [[RS1_ADDR:%.*]] = alloca i32, align 4
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// RV32ZBP-NEXT: [[RS2_ADDR:%.*]] = alloca i32, align 4
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// RV32ZBP-NEXT: store i32 [[RS1:%.*]], i32* [[RS1_ADDR]], align 4
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// RV32ZBP-NEXT: store i32 [[RS2:%.*]], i32* [[RS2_ADDR]], align 4
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// RV32ZBP-NEXT: [[TMP0:%.*]] = load i32, i32* [[RS1_ADDR]], align 4
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// RV32ZBP-NEXT: [[TMP1:%.*]] = load i32, i32* [[RS2_ADDR]], align 4
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// RV32ZBP-NEXT: [[TMP2:%.*]] = call i32 @llvm.riscv.shfl.i32(i32 [[TMP0]], i32 [[TMP1]])
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// RV32ZBP-NEXT: ret i32 [[TMP2]]
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//
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long shfl(long rs1, long rs2)
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{
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return __builtin_riscv_shfl_32(rs1, rs2);
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}
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// RV32ZBP-LABEL: @shfli(
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// RV32ZBP-NEXT: entry:
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// RV32ZBP-NEXT: [[RS1_ADDR:%.*]] = alloca i32, align 4
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// RV32ZBP-NEXT: [[I:%.*]] = alloca i32, align 4
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// RV32ZBP-NEXT: store i32 [[RS1:%.*]], i32* [[RS1_ADDR]], align 4
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// RV32ZBP-NEXT: store i32 13, i32* [[I]], align 4
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// RV32ZBP-NEXT: [[TMP0:%.*]] = load i32, i32* [[RS1_ADDR]], align 4
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// RV32ZBP-NEXT: [[TMP1:%.*]] = call i32 @llvm.riscv.shfl.i32(i32 [[TMP0]], i32 13)
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// RV32ZBP-NEXT: ret i32 [[TMP1]]
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//
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long shfli(long rs1)
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{
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const int i = 13;
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return __builtin_riscv_shfl_32(rs1, i);
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}
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// RV32ZBP-LABEL: @unshfl(
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// RV32ZBP-NEXT: entry:
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// RV32ZBP-NEXT: [[RS1_ADDR:%.*]] = alloca i32, align 4
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// RV32ZBP-NEXT: [[RS2_ADDR:%.*]] = alloca i32, align 4
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// RV32ZBP-NEXT: store i32 [[RS1:%.*]], i32* [[RS1_ADDR]], align 4
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// RV32ZBP-NEXT: store i32 [[RS2:%.*]], i32* [[RS2_ADDR]], align 4
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// RV32ZBP-NEXT: [[TMP0:%.*]] = load i32, i32* [[RS1_ADDR]], align 4
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// RV32ZBP-NEXT: [[TMP1:%.*]] = load i32, i32* [[RS2_ADDR]], align 4
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// RV32ZBP-NEXT: [[TMP2:%.*]] = call i32 @llvm.riscv.unshfl.i32(i32 [[TMP0]], i32 [[TMP1]])
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// RV32ZBP-NEXT: ret i32 [[TMP2]]
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//
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long unshfl(long rs1, long rs2)
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{
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return __builtin_riscv_unshfl_32(rs1, rs2);
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}
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// RV32ZBP-LABEL: @unshfli(
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// RV32ZBP-NEXT: entry:
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// RV32ZBP-NEXT: [[RS1_ADDR:%.*]] = alloca i32, align 4
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// RV32ZBP-NEXT: [[I:%.*]] = alloca i32, align 4
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// RV32ZBP-NEXT: store i32 [[RS1:%.*]], i32* [[RS1_ADDR]], align 4
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// RV32ZBP-NEXT: store i32 13, i32* [[I]], align 4
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// RV32ZBP-NEXT: [[TMP0:%.*]] = load i32, i32* [[RS1_ADDR]], align 4
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// RV32ZBP-NEXT: [[TMP1:%.*]] = call i32 @llvm.riscv.unshfl.i32(i32 [[TMP0]], i32 13)
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// RV32ZBP-NEXT: ret i32 [[TMP1]]
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//
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long unshfli(long rs1)
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{
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const int i = 13;
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return __builtin_riscv_unshfl_32(rs1, i);
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}
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// RV32ZBP-LABEL: @xperm_n(
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// RV32ZBP-NEXT: entry:
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// RV32ZBP-NEXT: [[RS1_ADDR:%.*]] = alloca i32, align 4
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// RV32ZBP-NEXT: [[RS2_ADDR:%.*]] = alloca i32, align 4
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// RV32ZBP-NEXT: store i32 [[RS1:%.*]], i32* [[RS1_ADDR]], align 4
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// RV32ZBP-NEXT: store i32 [[RS2:%.*]], i32* [[RS2_ADDR]], align 4
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// RV32ZBP-NEXT: [[TMP0:%.*]] = load i32, i32* [[RS1_ADDR]], align 4
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// RV32ZBP-NEXT: [[TMP1:%.*]] = load i32, i32* [[RS2_ADDR]], align 4
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// RV32ZBP-NEXT: [[TMP2:%.*]] = call i32 @llvm.riscv.xperm.n.i32(i32 [[TMP0]], i32 [[TMP1]])
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// RV32ZBP-NEXT: ret i32 [[TMP2]]
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//
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long xperm_n(long rs1, long rs2)
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{
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return __builtin_riscv_xperm_n(rs1, rs2);
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}
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// RV32ZBP-LABEL: @xperm_b(
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// RV32ZBP-NEXT: entry:
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// RV32ZBP-NEXT: [[RS1_ADDR:%.*]] = alloca i32, align 4
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// RV32ZBP-NEXT: [[RS2_ADDR:%.*]] = alloca i32, align 4
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// RV32ZBP-NEXT: store i32 [[RS1:%.*]], i32* [[RS1_ADDR]], align 4
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// RV32ZBP-NEXT: store i32 [[RS2:%.*]], i32* [[RS2_ADDR]], align 4
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// RV32ZBP-NEXT: [[TMP0:%.*]] = load i32, i32* [[RS1_ADDR]], align 4
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// RV32ZBP-NEXT: [[TMP1:%.*]] = load i32, i32* [[RS2_ADDR]], align 4
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// RV32ZBP-NEXT: [[TMP2:%.*]] = call i32 @llvm.riscv.xperm.b.i32(i32 [[TMP0]], i32 [[TMP1]])
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// RV32ZBP-NEXT: ret i32 [[TMP2]]
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//
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long xperm_b(long rs1, long rs2)
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{
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return __builtin_riscv_xperm_b(rs1, rs2);
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}
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// RV32ZBP-LABEL: @xperm_h(
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// RV32ZBP-NEXT: entry:
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// RV32ZBP-NEXT: [[RS1_ADDR:%.*]] = alloca i32, align 4
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// RV32ZBP-NEXT: [[RS2_ADDR:%.*]] = alloca i32, align 4
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// RV32ZBP-NEXT: store i32 [[RS1:%.*]], i32* [[RS1_ADDR]], align 4
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// RV32ZBP-NEXT: store i32 [[RS2:%.*]], i32* [[RS2_ADDR]], align 4
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// RV32ZBP-NEXT: [[TMP0:%.*]] = load i32, i32* [[RS1_ADDR]], align 4
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// RV32ZBP-NEXT: [[TMP1:%.*]] = load i32, i32* [[RS2_ADDR]], align 4
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// RV32ZBP-NEXT: [[TMP2:%.*]] = call i32 @llvm.riscv.xperm.h.i32(i32 [[TMP0]], i32 [[TMP1]])
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// RV32ZBP-NEXT: ret i32 [[TMP2]]
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//
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long xperm_h(long rs1, long rs2)
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{
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return __builtin_riscv_xperm_h(rs1, rs2);
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}
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