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sidh: use SIMD for performing CSWAP
Loads data into 128-bit XMM registers and performs conditional swap. This is probably less useful for SIDH, but will be useful for cSIDH
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@ -90,31 +90,42 @@ TEXT ·fp503ConditionalSwap(SB),NOSPLIT,$0-17
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MOVQ x+0(FP), REG_P1
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MOVQ y+8(FP), REG_P2
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MOVB choice+16(FP), AL // AL = 0 or 1
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MOVBLZX AL, AX // AX = 0 or 1
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NEGQ AX // RAX = 0x00..00 or 0xff..ff
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MOVBLZX choice+16(FP), AX // AL = 0 or 1
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// Make AX, so that either all bits are set or non
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// AX = 0 or 1
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NEGQ AX
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// Fill xmm15. After this step first half of XMM15 is
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// just zeros and second half is whatever in AX
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MOVQ AX, X15
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// Copy lower double word everywhere else. So that
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// XMM15=AL|AL|AL|AL. As AX has either all bits set
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// or non result will be that XMM15 has also either
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// all bits set or non of them.
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PSHUFD $0, X15, X15
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#ifndef CSWAP_BLOCK
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#define CSWAP_BLOCK(idx) \
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MOVQ (idx*8)(REG_P1), BX \ // BX = x[idx]
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MOVQ (idx*8)(REG_P2), CX \ // CX = y[idx]
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MOVQ CX, DX \ // DX = y[idx]
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XORQ BX, DX \ // DX = y[idx] ^ x[idx]
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ANDQ AX, DX \ // DX = (y[idx] ^ x[idx]) & mask
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XORQ DX, BX \ // BX = (y[idx] ^ x[idx]) & mask) ^ x[idx] = x[idx] or y[idx]
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XORQ DX, CX \ // CX = (y[idx] ^ x[idx]) & mask) ^ y[idx] = y[idx] or x[idx]
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MOVQ BX, (idx*8)(REG_P1) \
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MOVQ CX, (idx*8)(REG_P2)
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MOVOU (idx*16)(REG_P1), X0 \
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MOVOU (idx*16)(REG_P2), X1 \
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\ // X2 = mask & (X0 ^ X1)
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MOVO X1, X2 \
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PXOR X0, X2 \
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PAND X15, X2 \
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\
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PXOR X2, X0 \
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PXOR X2, X1 \
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\
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MOVOU X0, (idx*16)(REG_P1) \
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MOVOU X1, (idx*16)(REG_P2)
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#endif
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CSWAP_BLOCK(0)
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CSWAP_BLOCK(1)
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CSWAP_BLOCK(2)
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CSWAP_BLOCK(3)
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CSWAP_BLOCK(4)
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CSWAP_BLOCK(5)
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CSWAP_BLOCK(6)
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CSWAP_BLOCK(7)
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#ifdef CSWAP_BLOCK
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#undef CSWAP_BLOCK
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@ -126,130 +126,48 @@ TEXT ·fp751ConditionalSwap(SB), NOSPLIT, $0-17
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MOVQ x+0(FP), REG_P1
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MOVQ y+8(FP), REG_P2
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MOVB choice+16(FP), AL // AL = 0 or 1
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MOVBLZX AL, AX // AX = 0 or 1
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NEGQ AX // RAX = 0x00..00 or 0xff..ff
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MOVBLZX choice+16(FP), AX // AL = 0 or 1
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MOVQ (0*8)(REG_P1), BX // BX = x[0]
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MOVQ (0*8)(REG_P2), CX // CX = y[0]
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MOVQ CX, DX // DX = y[0]
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XORQ BX, DX // DX = y[0] ^ x[0]
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ANDQ AX, DX // DX = (y[0] ^ x[0]) & mask
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XORQ DX, BX // BX = (y[0] ^ x[0]) & mask) ^ x[0] = x[0] or y[0]
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XORQ DX, CX // CX = (y[0] ^ x[0]) & mask) ^ y[0] = y[0] or x[0]
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MOVQ BX, (0*8)(REG_P1)
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MOVQ CX, (0*8)(REG_P2)
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// Make AX, so that either all bits are set or non
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// AX = 0 or 1
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NEGQ AX
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MOVQ (1*8)(REG_P1), BX
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MOVQ (1*8)(REG_P2), CX
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MOVQ CX, DX
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XORQ BX, DX
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ANDQ AX, DX
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XORQ DX, BX
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XORQ DX, CX
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MOVQ BX, (1*8)(REG_P1)
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MOVQ CX, (1*8)(REG_P2)
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// Fill xmm15. After this step first half of XMM15 is
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// just zeros and second half is whatever in AX
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MOVQ AX, X15
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MOVQ (2*8)(REG_P1), BX
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MOVQ (2*8)(REG_P2), CX
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MOVQ CX, DX
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XORQ BX, DX
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ANDQ AX, DX
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XORQ DX, BX
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XORQ DX, CX
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MOVQ BX, (2*8)(REG_P1)
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MOVQ CX, (2*8)(REG_P2)
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// Copy lower double word everywhere else. So that
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// XMM15=AL|AL|AL|AL. As AX has either all bits set
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// or non result will be that XMM15 has also either
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// all bits set or non of them.
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PSHUFD $0, X15, X15
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MOVQ (3*8)(REG_P1), BX
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MOVQ (3*8)(REG_P2), CX
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MOVQ CX, DX
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XORQ BX, DX
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ANDQ AX, DX
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XORQ DX, BX
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XORQ DX, CX
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MOVQ BX, (3*8)(REG_P1)
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MOVQ CX, (3*8)(REG_P2)
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#ifndef CSWAP_BLOCK
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#define CSWAP_BLOCK(idx) \
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MOVOU (idx*16)(REG_P1), X0 \
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MOVOU (idx*16)(REG_P2), X1 \
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\ // X2 = mask & (X0 ^ X1)
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MOVO X1, X2 \
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PXOR X0, X2 \
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PAND X15, X2 \
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\
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PXOR X2, X0 \
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PXOR X2, X1 \
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\
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MOVOU X0, (idx*16)(REG_P1) \
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MOVOU X1, (idx*16)(REG_P2)
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#endif
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MOVQ (4*8)(REG_P1), BX
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MOVQ (4*8)(REG_P2), CX
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MOVQ CX, DX
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XORQ BX, DX
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ANDQ AX, DX
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XORQ DX, BX
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XORQ DX, CX
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MOVQ BX, (4*8)(REG_P1)
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MOVQ CX, (4*8)(REG_P2)
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MOVQ (5*8)(REG_P1), BX
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MOVQ (5*8)(REG_P2), CX
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MOVQ CX, DX
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XORQ BX, DX
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ANDQ AX, DX
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XORQ DX, BX
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XORQ DX, CX
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MOVQ BX, (5*8)(REG_P1)
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MOVQ CX, (5*8)(REG_P2)
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MOVQ (6*8)(REG_P1), BX
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MOVQ (6*8)(REG_P2), CX
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MOVQ CX, DX
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XORQ BX, DX
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ANDQ AX, DX
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XORQ DX, BX
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XORQ DX, CX
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MOVQ BX, (6*8)(REG_P1)
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MOVQ CX, (6*8)(REG_P2)
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MOVQ (7*8)(REG_P1), BX
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MOVQ (7*8)(REG_P2), CX
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MOVQ CX, DX
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XORQ BX, DX
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ANDQ AX, DX
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XORQ DX, BX
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XORQ DX, CX
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MOVQ BX, (7*8)(REG_P1)
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MOVQ CX, (7*8)(REG_P2)
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MOVQ (8*8)(REG_P1), BX
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MOVQ (8*8)(REG_P2), CX
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MOVQ CX, DX
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XORQ BX, DX
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ANDQ AX, DX
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XORQ DX, BX
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XORQ DX, CX
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MOVQ BX, (8*8)(REG_P1)
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MOVQ CX, (8*8)(REG_P2)
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MOVQ (9*8)(REG_P1), BX
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MOVQ (9*8)(REG_P2), CX
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MOVQ CX, DX
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XORQ BX, DX
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ANDQ AX, DX
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XORQ DX, BX
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XORQ DX, CX
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MOVQ BX, (9*8)(REG_P1)
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MOVQ CX, (9*8)(REG_P2)
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MOVQ (10*8)(REG_P1), BX
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MOVQ (10*8)(REG_P2), CX
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MOVQ CX, DX
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XORQ BX, DX
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ANDQ AX, DX
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XORQ DX, BX
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XORQ DX, CX
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MOVQ BX, (10*8)(REG_P1)
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MOVQ CX, (10*8)(REG_P2)
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MOVQ (11*8)(REG_P1), BX
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MOVQ (11*8)(REG_P2), CX
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MOVQ CX, DX
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XORQ BX, DX
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ANDQ AX, DX
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XORQ DX, BX
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XORQ DX, CX
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MOVQ BX, (11*8)(REG_P1)
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MOVQ CX, (11*8)(REG_P2)
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CSWAP_BLOCK(0)
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CSWAP_BLOCK(1)
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CSWAP_BLOCK(2)
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CSWAP_BLOCK(3)
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CSWAP_BLOCK(4)
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CSWAP_BLOCK(5)
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#ifdef CSWAP_BLOCK
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#undef CSWAP_BLOCK
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#endif
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RET
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TEXT ·fp751AddReduced(SB), NOSPLIT, $0-24
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