INSERTPS

Insert Scalar Single Precision Floating-Point Value

stableVMJITAOTinstruction

Encodings

OpcodeInstructionOp/En64-bitCompat/LegacyDescription
66 0F 3A 21 /r ibINSERTPS xmm1, xmm2/m32, imm8AValidValidInsert a single precision floating-point value selected by imm8 from xmm2/m32 into xmm1 at the specified destination element specified by imm8 and zero out destination elements in xmm1 as indicated in imm8.
VEX.128.66.0F3A.WIG 21 /r ibVINSERTPS xmm1, xmm2, xmm3/m32, imm8BValidValidInsert a single precision floating-point value selected by imm8 from xmm3/m32 and merge with values in xmm2 at the specified destination element specified by imm8 and write out the result and zero out destination elements in xmm1 as indicated in imm8.
EVEX.128.66.0F3A.W0 21 /r ibVINSERTPS xmm1, xmm2, xmm3/m32, imm8CValidValidInsert a single precision floating-point value selected OR AVX10.1 by imm8 from xmm3/m32 and merge with values in xmm2 at the specified destination element specified by imm8 and write out the result and zero out destination elements in xmm1 as indicated in imm8.

Operand encoding

Each mode is a value of the Op/En column above. It says which field of the encoded instruction carries each operand, in the order they are written, and whether the instruction reads it, writes it or both.

A

  1. modrm.reg lectura y escrituraModRM byte, reg field (bits 5-3)
  2. modrm.rm lecturaModRM byte, r/m field (bits 2-0); with the SIB byte and the displacement when the mod field asks for them
  3. imm8immediate byte after the instruction

B

  1. modrm.reg escrituraModRM byte, reg field (bits 5-3)
  2. vex.vvvv lecturaVEX prefix, vvvv field (inverted)
  3. modrm.rm lecturaModRM byte, r/m field (bits 2-0); with the SIB byte and the displacement when the mod field asks for them
  4. imm8immediate byte after the instruction

C

  1. modrm.reg escrituraModRM byte, reg field (bits 5-3)
  2. evex.vvvv lecturaEVEX prefix, vvvv field (inverted)
  3. modrm.rm lecturaModRM byte, r/m field (bits 2-0); with the SIB byte and the displacement when the mod field asks for them
  4. imm8immediate byte after the instruction

Tupla: Tuple1 Scalar

Measured cost

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Description

(register source form)

Copy a single precision scalar floating-point element into a 128-bit vector register. The immediate operand has three fields, where the ZMask bits specify which elements of the destination will be set to zero, the Count_D bits specify which element of the destination will be overwritten with the scalar value, and for vector register sources the Count_S bits specify which element of the source will be copied. When the scalar source is a memory operand the Count_S bits are ignored.

(memory source form)

Load a floating-point element from a 32-bit memory location and destination operand it into the first source at the location indicated by the Count_D bits of the immediate operand. Store in the destination and zero out destination elements based on the ZMask bits of the immediate operand.

128-bit Legacy SSE version: The first source register is an XMM register. The second source operand is either an XMM register or a 32-bit memory location. The destination is not distinct from the first source XMM register and the upper bits (MAXVL-1:128) of the corresponding register destination are unmodified.

VEX.128 and EVEX encoded version: The destination and first source register is an XMM register. The second source operand is either an XMM register or a 32-bit memory location. The upper bits (MAXVL-1:128) of the corresponding register destination are zeroed.

If VINSERTPS is encoded with VEX.L= 1, an attempt to execute the instruction encoded with VEX.L= 1 will cause an #UD exception.

Operation

VINSERTPS (VEX.128 and EVEX Encoded Version)
IF (SRC = REG) THEN COUNT_S := imm8[7:6]

    ELSE COUNT_S := 0
COUNT_D := imm8[5:4]
ZMASK := imm8[3:0]
CASE (COUNT_S) OF

    0: TMP := SRC2[31:0]
    1: TMP := SRC2[63:32]
    2: TMP := SRC2[95:64]
    3: TMP := SRC2[127:96]
ESAC;
CASE (COUNT_D) OF
    0: TMP2[31:0] := TMP

          TMP2[127:32] := SRC1[127:32]
    1: TMP2[63:32] := TMP

          TMP2[31:0] := SRC1[31:0]
          TMP2[127:64] := SRC1[127:64]
    2: TMP2[95:64] := TMP
          TMP2[63:0] := SRC1[63:0]
          TMP2[127:96] := SRC1[127:96]
    3: TMP2[127:96] := TMP
          TMP2[95:0] := SRC1[95:0]
ESAC;

IF (ZMASK[0] = 1) THEN DEST[31:0] := 00000000H
    ELSE DEST[31:0] := TMP2[31:0]

IF (ZMASK[1] = 1) THEN DEST[63:32] := 00000000H
    ELSE DEST[63:32] := TMP2[63:32]

IF (ZMASK[2] = 1) THEN DEST[95:64] := 00000000H
    ELSE DEST[95:64] := TMP2[95:64]

IF (ZMASK[3] = 1) THEN DEST[127:96] := 00000000H
    ELSE DEST[127:96] := TMP2[127:96]

DEST[MAXVL-1:128] := 0

INSERTPS (128-bit Legacy SSE Version)
IF (SRC = REG) THEN COUNT_S :=imm8[7:6]

    ELSE COUNT_S :=0
COUNT_D := imm8[5:4]
ZMASK := imm8[3:0]
CASE (COUNT_S) OF

    0: TMP := SRC[31:0]
    1: TMP := SRC[63:32]
    2: TMP := SRC[95:64]
    3: TMP := SRC[127:96]
ESAC;

CASE (COUNT_D) OF
    0: TMP2[31:0] := TMP
          TMP2[127:32] := DEST[127:32]
    1: TMP2[63:32] := TMP
          TMP2[31:0] := DEST[31:0]
          TMP2[127:64] := DEST[127:64]
    2: TMP2[95:64] := TMP


          TMP2[63:0] := DEST[63:0]
          TMP2[127:96] := DEST[127:96]
    3: TMP2[127:96] := TMP
          TMP2[95:0] := DEST[95:0]
ESAC;

IF (ZMASK[0] = 1) THEN DEST[31:0] := 00000000H
    ELSE DEST[31:0] := TMP2[31:0]

IF (ZMASK[1] = 1) THEN DEST[63:32] := 00000000H
    ELSE DEST[63:32] := TMP2[63:32]

IF (ZMASK[2] = 1) THEN DEST[95:64] := 00000000H
    ELSE DEST[95:64] := TMP2[95:64]

IF (ZMASK[3] = 1) THEN DEST[127:96] := 00000000H
    ELSE DEST[127:96] := TMP2[127:96]

DEST[MAXVL-1:128] (Unmodified)

Intel C/C++ compiler intrinsics

VINSERTPS __m128 _mm_insert_ps(__m128 dst, __m128 src, const int nidx);
INSETRTPS __m128 _mm_insert_ps(__m128 dst, __m128 src, const int nidx);

SIMD Floating-Point Exceptions

None.

Other Exceptions

Non-EVEX-encoded instruction, see Table 2-22, "Type 5 Class Exception Conditions," additionally:

#UD               If VEX.L = 0.

EVEX-encoded instruction, see Table 2-59, "Type E9NF Class Exception Conditions."

Sources