; NOTE: Assertions have been autogenerated by utils/update_test_checks.py ; RUN: opt < %s -passes=instcombine -mtriple=x86_64-unknown-unknown -S | FileCheck %s ;; MASKED LOADS ; If the mask isn't constant, do nothing. define <4 x float> @mload(ptr %f, <4 x i32> %mask) { ; CHECK-LABEL: @mload( ; CHECK-NEXT: [[LD:%.*]] = tail call <4 x float> @llvm.x86.avx.maskload.ps(ptr [[F:%.*]], <4 x i32> [[MASK:%.*]]) ; CHECK-NEXT: ret <4 x float> [[LD]] ; %ld = tail call <4 x float> @llvm.x86.avx.maskload.ps(ptr %f, <4 x i32> %mask) ret <4 x float> %ld } ; If the mask comes from a comparison, convert to an LLVM intrinsic. The backend should optimize further. define <4 x float> @mload_v4f32_cmp(ptr %f, <4 x i32> %src) { ; CHECK-LABEL: @mload_v4f32_cmp( ; CHECK-NEXT: [[ICMP:%.*]] = icmp ne <4 x i32> [[SRC:%.*]], zeroinitializer ; CHECK-NEXT: [[LD:%.*]] = call <4 x float> @llvm.masked.load.v4f32.p0(ptr [[F:%.*]], i32 1, <4 x i1> [[ICMP]], <4 x float> zeroinitializer) ; CHECK-NEXT: ret <4 x float> [[LD]] ; %icmp = icmp ne <4 x i32> %src, zeroinitializer %mask = sext <4 x i1> %icmp to <4 x i32> %ld = tail call <4 x float> @llvm.x86.avx.maskload.ps(ptr %f, <4 x i32> %mask) ret <4 x float> %ld } ; Zero mask returns a zero vector. define <4 x float> @mload_zeros(ptr %f) { ; CHECK-LABEL: @mload_zeros( ; CHECK-NEXT: ret <4 x float> zeroinitializer ; %ld = tail call <4 x float> @llvm.x86.avx.maskload.ps(ptr %f, <4 x i32> zeroinitializer) ret <4 x float> %ld } ; Only the sign bit matters. define <4 x float> @mload_fake_ones(ptr %f) { ; CHECK-LABEL: @mload_fake_ones( ; CHECK-NEXT: ret <4 x float> zeroinitializer ; %ld = tail call <4 x float> @llvm.x86.avx.maskload.ps(ptr %f, <4 x i32> ) ret <4 x float> %ld } ; All mask bits are set, so this is just a vector load. define <4 x float> @mload_real_ones(ptr %f) { ; CHECK-LABEL: @mload_real_ones( ; CHECK-NEXT: [[UNMASKEDLOAD:%.*]] = load <4 x float>, ptr [[F:%.*]], align 1 ; CHECK-NEXT: ret <4 x float> [[UNMASKEDLOAD]] ; %ld = tail call <4 x float> @llvm.x86.avx.maskload.ps(ptr %f, <4 x i32> ) ret <4 x float> %ld } ; It's a constant mask, so convert to an LLVM intrinsic. The backend should optimize further. define <4 x float> @mload_one_one(ptr %f) { ; CHECK-LABEL: @mload_one_one( ; CHECK-NEXT: [[LD:%.*]] = call <4 x float> @llvm.masked.load.v4f32.p0(ptr [[F:%.*]], i32 1, <4 x i1> , <4 x float> ) ; CHECK-NEXT: ret <4 x float> [[LD]] ; %ld = tail call <4 x float> @llvm.x86.avx.maskload.ps(ptr %f, <4 x i32> ) ret <4 x float> %ld } ; Try doubles. define <2 x double> @mload_one_one_double(ptr %f) { ; CHECK-LABEL: @mload_one_one_double( ; CHECK-NEXT: [[LD:%.*]] = call <2 x double> @llvm.masked.load.v2f64.p0(ptr [[F:%.*]], i32 1, <2 x i1> , <2 x double> ) ; CHECK-NEXT: ret <2 x double> [[LD]] ; %ld = tail call <2 x double> @llvm.x86.avx.maskload.pd(ptr %f, <2 x i64> ) ret <2 x double> %ld } ; Try 256-bit FP ops. define <8 x float> @mload_v8f32(ptr %f) { ; CHECK-LABEL: @mload_v8f32( ; CHECK-NEXT: [[LD:%.*]] = call <8 x float> @llvm.masked.load.v8f32.p0(ptr [[F:%.*]], i32 1, <8 x i1> , <8 x float> ) ; CHECK-NEXT: ret <8 x float> [[LD]] ; %ld = tail call <8 x float> @llvm.x86.avx.maskload.ps.256(ptr %f, <8 x i32> ) ret <8 x float> %ld } define <8 x float> @mload_v8f32_cmp(ptr %f, <8 x float> %src0, <8 x float> %src1) { ; CHECK-LABEL: @mload_v8f32_cmp( ; CHECK-NEXT: [[ICMP0:%.*]] = fcmp one <8 x float> [[SRC0:%.*]], zeroinitializer ; CHECK-NEXT: [[ICMP1:%.*]] = fcmp one <8 x float> [[SRC1:%.*]], zeroinitializer ; CHECK-NEXT: [[MASK1:%.*]] = and <8 x i1> [[ICMP0]], [[ICMP1]] ; CHECK-NEXT: [[LD:%.*]] = call <8 x float> @llvm.masked.load.v8f32.p0(ptr [[F:%.*]], i32 1, <8 x i1> [[MASK1]], <8 x float> zeroinitializer) ; CHECK-NEXT: ret <8 x float> [[LD]] ; %icmp0 = fcmp one <8 x float> %src0, zeroinitializer %icmp1 = fcmp one <8 x float> %src1, zeroinitializer %ext0 = sext <8 x i1> %icmp0 to <8 x i32> %ext1 = sext <8 x i1> %icmp1 to <8 x i32> %mask = and <8 x i32> %ext0, %ext1 %ld = tail call <8 x float> @llvm.x86.avx.maskload.ps.256(ptr %f, <8 x i32> %mask) ret <8 x float> %ld } define <4 x double> @mload_v4f64(ptr %f) { ; CHECK-LABEL: @mload_v4f64( ; CHECK-NEXT: [[LD:%.*]] = call <4 x double> @llvm.masked.load.v4f64.p0(ptr [[F:%.*]], i32 1, <4 x i1> , <4 x double> ) ; CHECK-NEXT: ret <4 x double> [[LD]] ; %ld = tail call <4 x double> @llvm.x86.avx.maskload.pd.256(ptr %f, <4 x i64> ) ret <4 x double> %ld } ; Try the AVX2 variants. define <4 x i32> @mload_v4i32(ptr %f) { ; CHECK-LABEL: @mload_v4i32( ; CHECK-NEXT: [[LD:%.*]] = call <4 x i32> @llvm.masked.load.v4i32.p0(ptr [[F:%.*]], i32 1, <4 x i1> , <4 x i32> ) ; CHECK-NEXT: ret <4 x i32> [[LD]] ; %ld = tail call <4 x i32> @llvm.x86.avx2.maskload.d(ptr %f, <4 x i32> ) ret <4 x i32> %ld } define <2 x i64> @mload_v2i64(ptr %f) { ; CHECK-LABEL: @mload_v2i64( ; CHECK-NEXT: [[LD:%.*]] = call <2 x i64> @llvm.masked.load.v2i64.p0(ptr [[F:%.*]], i32 1, <2 x i1> , <2 x i64> ) ; CHECK-NEXT: ret <2 x i64> [[LD]] ; %ld = tail call <2 x i64> @llvm.x86.avx2.maskload.q(ptr %f, <2 x i64> ) ret <2 x i64> %ld } define <8 x i32> @mload_v8i32(ptr %f) { ; CHECK-LABEL: @mload_v8i32( ; CHECK-NEXT: [[LD:%.*]] = call <8 x i32> @llvm.masked.load.v8i32.p0(ptr [[F:%.*]], i32 1, <8 x i1> , <8 x i32> ) ; CHECK-NEXT: ret <8 x i32> [[LD]] ; %ld = tail call <8 x i32> @llvm.x86.avx2.maskload.d.256(ptr %f, <8 x i32> ) ret <8 x i32> %ld } define <4 x i64> @mload_v4i64(ptr %f) { ; CHECK-LABEL: @mload_v4i64( ; CHECK-NEXT: [[LD:%.*]] = call <4 x i64> @llvm.masked.load.v4i64.p0(ptr [[F:%.*]], i32 1, <4 x i1> , <4 x i64> ) ; CHECK-NEXT: ret <4 x i64> [[LD]] ; %ld = tail call <4 x i64> @llvm.x86.avx2.maskload.q.256(ptr %f, <4 x i64> ) ret <4 x i64> %ld } define <4 x i64> @mload_v4i64_cmp(ptr %f, <4 x i64> %src) { ; CHECK-LABEL: @mload_v4i64_cmp( ; CHECK-NEXT: [[ICMP:%.*]] = icmp sgt <4 x i64> [[SRC:%.*]], ; CHECK-NEXT: [[LD:%.*]] = call <4 x i64> @llvm.masked.load.v4i64.p0(ptr [[F:%.*]], i32 1, <4 x i1> [[ICMP]], <4 x i64> zeroinitializer) ; CHECK-NEXT: ret <4 x i64> [[LD]] ; %icmp = icmp sge <4 x i64> %src, zeroinitializer %mask = sext <4 x i1> %icmp to <4 x i64> %ld = tail call <4 x i64> @llvm.x86.avx2.maskload.q.256(ptr %f, <4 x i64> %mask) ret <4 x i64> %ld } ;; MASKED STORES ; If the mask isn't constant, do nothing. define void @mstore(ptr %f, <4 x i32> %mask, <4 x float> %v) { ; CHECK-LABEL: @mstore( ; CHECK-NEXT: tail call void @llvm.x86.avx.maskstore.ps(ptr [[F:%.*]], <4 x i32> [[MASK:%.*]], <4 x float> [[V:%.*]]) ; CHECK-NEXT: ret void ; tail call void @llvm.x86.avx.maskstore.ps(ptr %f, <4 x i32> %mask, <4 x float> %v) ret void } ; If the mask comes from a comparison, convert to an LLVM intrinsic. The backend should optimize further. define void @mstore_v4f32_cmp(ptr %f, <4 x i32> %src, <4 x float> %v) { ; CHECK-LABEL: @mstore_v4f32_cmp( ; CHECK-NEXT: [[ICMP:%.*]] = icmp eq <4 x i32> [[SRC:%.*]], zeroinitializer ; CHECK-NEXT: call void @llvm.masked.store.v4f32.p0(<4 x float> [[V:%.*]], ptr [[F:%.*]], i32 1, <4 x i1> [[ICMP]]) ; CHECK-NEXT: ret void ; %icmp = icmp eq <4 x i32> %src, zeroinitializer %mask = sext <4 x i1> %icmp to <4 x i32> tail call void @llvm.x86.avx.maskstore.ps(ptr %f, <4 x i32> %mask, <4 x float> %v) ret void } ; Zero mask is a nop. define void @mstore_zeros(ptr %f, <4 x float> %v) { ; CHECK-LABEL: @mstore_zeros( ; CHECK-NEXT: ret void ; tail call void @llvm.x86.avx.maskstore.ps(ptr %f, <4 x i32> zeroinitializer, <4 x float> %v) ret void } ; Only the sign bit matters. define void @mstore_fake_ones(ptr %f, <4 x float> %v) { ; CHECK-LABEL: @mstore_fake_ones( ; CHECK-NEXT: ret void ; tail call void @llvm.x86.avx.maskstore.ps(ptr %f, <4 x i32> , <4 x float> %v) ret void } ; All mask bits are set, so this is just a vector store. define void @mstore_real_ones(ptr %f, <4 x float> %v) { ; CHECK-LABEL: @mstore_real_ones( ; CHECK-NEXT: store <4 x float> [[V:%.*]], ptr [[F:%.*]], align 1 ; CHECK-NEXT: ret void ; tail call void @llvm.x86.avx.maskstore.ps(ptr %f, <4 x i32> , <4 x float> %v) ret void } ; It's a constant mask, so convert to an LLVM intrinsic. The backend should optimize further. define void @mstore_one_one(ptr %f, <4 x float> %v) { ; CHECK-LABEL: @mstore_one_one( ; CHECK-NEXT: call void @llvm.masked.store.v4f32.p0(<4 x float> [[V:%.*]], ptr [[F:%.*]], i32 1, <4 x i1> ) ; CHECK-NEXT: ret void ; tail call void @llvm.x86.avx.maskstore.ps(ptr %f, <4 x i32> , <4 x float> %v) ret void } ; Try doubles. define void @mstore_one_one_double(ptr %f, <2 x double> %v) { ; CHECK-LABEL: @mstore_one_one_double( ; CHECK-NEXT: call void @llvm.masked.store.v2f64.p0(<2 x double> [[V:%.*]], ptr [[F:%.*]], i32 1, <2 x i1> ) ; CHECK-NEXT: ret void ; tail call void @llvm.x86.avx.maskstore.pd(ptr %f, <2 x i64> , <2 x double> %v) ret void } ; Try 256-bit FP ops. define void @mstore_v8f32(ptr %f, <8 x float> %v) { ; CHECK-LABEL: @mstore_v8f32( ; CHECK-NEXT: call void @llvm.masked.store.v8f32.p0(<8 x float> [[V:%.*]], ptr [[F:%.*]], i32 1, <8 x i1> ) ; CHECK-NEXT: ret void ; tail call void @llvm.x86.avx.maskstore.ps.256(ptr %f, <8 x i32> , <8 x float> %v) ret void } define void @mstore_v4f64(ptr %f, <4 x double> %v) { ; CHECK-LABEL: @mstore_v4f64( ; CHECK-NEXT: call void @llvm.masked.store.v4f64.p0(<4 x double> [[V:%.*]], ptr [[F:%.*]], i32 1, <4 x i1> ) ; CHECK-NEXT: ret void ; tail call void @llvm.x86.avx.maskstore.pd.256(ptr %f, <4 x i64> , <4 x double> %v) ret void } define void @mstore_v4f64_cmp(ptr %f, <4 x i32> %src, <4 x double> %v) { ; CHECK-LABEL: @mstore_v4f64_cmp( ; CHECK-NEXT: [[ICMP:%.*]] = icmp sgt <4 x i32> [[SRC:%.*]], ; CHECK-NEXT: call void @llvm.masked.store.v4f64.p0(<4 x double> [[V:%.*]], ptr [[F:%.*]], i32 1, <4 x i1> [[ICMP]]) ; CHECK-NEXT: ret void ; %icmp = icmp sge <4 x i32> %src, zeroinitializer %mask = sext <4 x i1> %icmp to <4 x i64> tail call void @llvm.x86.avx.maskstore.pd.256(ptr %f, <4 x i64> %mask, <4 x double> %v) ret void } ; Try the AVX2 variants. define void @mstore_v4i32(ptr %f, <4 x i32> %v) { ; CHECK-LABEL: @mstore_v4i32( ; CHECK-NEXT: call void @llvm.masked.store.v4i32.p0(<4 x i32> [[V:%.*]], ptr [[F:%.*]], i32 1, <4 x i1> ) ; CHECK-NEXT: ret void ; tail call void @llvm.x86.avx2.maskstore.d(ptr %f, <4 x i32> , <4 x i32> %v) ret void } define void @mstore_v2i64(ptr %f, <2 x i64> %v) { ; CHECK-LABEL: @mstore_v2i64( ; CHECK-NEXT: call void @llvm.masked.store.v2i64.p0(<2 x i64> [[V:%.*]], ptr [[F:%.*]], i32 1, <2 x i1> ) ; CHECK-NEXT: ret void ; tail call void @llvm.x86.avx2.maskstore.q(ptr %f, <2 x i64> , <2 x i64> %v) ret void } define void @mstore_v8i32(ptr %f, <8 x i32> %v) { ; CHECK-LABEL: @mstore_v8i32( ; CHECK-NEXT: call void @llvm.masked.store.v8i32.p0(<8 x i32> [[V:%.*]], ptr [[F:%.*]], i32 1, <8 x i1> ) ; CHECK-NEXT: ret void ; tail call void @llvm.x86.avx2.maskstore.d.256(ptr %f, <8 x i32> , <8 x i32> %v) ret void } define void @mstore_v4i64(ptr %f, <4 x i64> %v) { ; CHECK-LABEL: @mstore_v4i64( ; CHECK-NEXT: call void @llvm.masked.store.v4i64.p0(<4 x i64> [[V:%.*]], ptr [[F:%.*]], i32 1, <4 x i1> ) ; CHECK-NEXT: ret void ; tail call void @llvm.x86.avx2.maskstore.q.256(ptr %f, <4 x i64> , <4 x i64> %v) ret void } define void @mstore_v4i64_cmp(ptr %f, <4 x i64> %src0, <4 x i64> %src1, <4 x i64> %v) { ; CHECK-LABEL: @mstore_v4i64_cmp( ; CHECK-NEXT: [[ICMP0:%.*]] = icmp eq <4 x i64> [[SRC0:%.*]], zeroinitializer ; CHECK-NEXT: [[ICMP1:%.*]] = icmp ne <4 x i64> [[SRC1:%.*]], zeroinitializer ; CHECK-NEXT: [[MASK1:%.*]] = and <4 x i1> [[ICMP0]], [[ICMP1]] ; CHECK-NEXT: call void @llvm.masked.store.v4i64.p0(<4 x i64> [[V:%.*]], ptr [[F:%.*]], i32 1, <4 x i1> [[MASK1]]) ; CHECK-NEXT: ret void ; %icmp0 = icmp eq <4 x i64> %src0, zeroinitializer %icmp1 = icmp ne <4 x i64> %src1, zeroinitializer %ext0 = sext <4 x i1> %icmp0 to <4 x i64> %ext1 = sext <4 x i1> %icmp1 to <4 x i64> %mask = and <4 x i64> %ext0, %ext1 tail call void @llvm.x86.avx2.maskstore.q.256(ptr %f, <4 x i64> %mask, <4 x i64> %v) ret void } ; The original SSE2 masked store variant. define void @mstore_v16i8_sse2_zeros(<16 x i8> %d, ptr %p) { ; CHECK-LABEL: @mstore_v16i8_sse2_zeros( ; CHECK-NEXT: ret void ; tail call void @llvm.x86.sse2.maskmov.dqu(<16 x i8> %d, <16 x i8> zeroinitializer, ptr %p) ret void } declare <4 x float> @llvm.x86.avx.maskload.ps(ptr, <4 x i32>) declare <2 x double> @llvm.x86.avx.maskload.pd(ptr, <2 x i64>) declare <8 x float> @llvm.x86.avx.maskload.ps.256(ptr, <8 x i32>) declare <4 x double> @llvm.x86.avx.maskload.pd.256(ptr, <4 x i64>) declare <4 x i32> @llvm.x86.avx2.maskload.d(ptr, <4 x i32>) declare <2 x i64> @llvm.x86.avx2.maskload.q(ptr, <2 x i64>) declare <8 x i32> @llvm.x86.avx2.maskload.d.256(ptr, <8 x i32>) declare <4 x i64> @llvm.x86.avx2.maskload.q.256(ptr, <4 x i64>) declare void @llvm.x86.avx.maskstore.ps(ptr, <4 x i32>, <4 x float>) declare void @llvm.x86.avx.maskstore.pd(ptr, <2 x i64>, <2 x double>) declare void @llvm.x86.avx.maskstore.ps.256(ptr, <8 x i32>, <8 x float>) declare void @llvm.x86.avx.maskstore.pd.256(ptr, <4 x i64>, <4 x double>) declare void @llvm.x86.avx2.maskstore.d(ptr, <4 x i32>, <4 x i32>) declare void @llvm.x86.avx2.maskstore.q(ptr, <2 x i64>, <2 x i64>) declare void @llvm.x86.avx2.maskstore.d.256(ptr, <8 x i32>, <8 x i32>) declare void @llvm.x86.avx2.maskstore.q.256(ptr, <4 x i64>, <4 x i64>) declare void @llvm.x86.sse2.maskmov.dqu(<16 x i8>, <16 x i8>, ptr)