nb_kernel010_ia64_single.s

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	}	{ .mib	(pCont) ld4			NJ0 = [jindexPtr], 4	(pCont) adds		Tmp2 = 1, NN0	(pDone)	br.cond.spnt.few finish	} ;; 		//  THREAD PROLOGUE 4		{ .mmi						ld4				ggid = [gidPtr], 4		shladd			II3 = II, 1, II		shladd			IS3 = IS, 1, IS	}	{ .mfi		ld4				NJ1 = [jindexPtr], 4		nop				0x0		shladd			jjnrPtr = NJ0, 2, JJNR	} ;;//  THREAD PROLOGUE 5		{ .mmi		cmp.lt			pCont, pDone = Tmp2, NRI							shladd			FShiftIS  = IS3, 2, FSHIFT		shladd			typePtr = II, 2, TYPE	}		{ .mmi		shladd			posPtr    = II3, 2, POSITION		shladd			FActII    = II3, 2, FACTION		shladd			shiftVPtr = IS3, 2, SHIFTVEC		} ;;//  THREAD PROLOGUE 6		{ .mmi						ld4				jnr = [jjnrPtr], 4	(pCont)	ld4			IS = [shiftPtr], 4		nop				0x0	}		{ .mmi	(pCont) ld4			II = [iinrPtr], 4			ld4			NTI = [typePtr]	(pLast)	mov			NN1 = NRI	} ;;//  12 bundles in thread prologue - still alignedouterLoop:	//	At this point in the outer loop, the following values are ready	//	//		FActII		Pointer to FACTION XYZ for II	//		FShiftIS	Pointer to FSHIFT XYZ for IS	//		shiftVPtr	Pointer to current shift XYZ values	//		posPtr		Pointer to current XYZ position	//		chargePtr	Pointer to current atom charge	//		ggid		Index for Vc array	//		jjnr		Pointer to next neighbor index	//		jnr			Current jnr value	//		NJ0, NJ1	Bounds of current neighbor list	//	//	Load up all the floating-point values (yes, McKinley can do 4 FP loads	//	per cycle) and initialize the loop counters and predicates. Compute	//	the initial position <x, y, z> and charge. If this isn't the last time	//	through the loop, start loading the next value for NJ1 - we already	//	moved the previous NJ1 -> NJ0.//	OUTER PROLOGUE 1	{	.mfi								nop 		0x0		mov		FIX = f0        nop         0x0	}	{	.mmf		ldfs		shX = [shiftVPtr], 4		ldfs		PosX = [posPtr], 4		mov		FIY = f0	} ;;//	OUTER PROLOGUE 2	{	.mmi		setf.sig	f32 = NTI		ldfs		shY = [shiftVPtr], 4        nop         0x0	}	{	.mii		ldfs		PosY = [posPtr], 4		add		Nouter = 1, Nouter		sub		InnerCnt = NJ1, NJ0, 1	} ;;//	OUTER PROLOGUE 3	{	.mmf								ldfs		shZ = [shiftVPtr]		ldfs		PosZ = [posPtr]		mov		FIZ = f0	}	{	.mmi		ldfs		FShiftX = [FShiftIS], 4		ldfs		FActIX = [FActII], 4		shladd		VNBPtr = ggid, 2, VNB	} ;;//	OUTER PROLOGUE 4	{	.mmf			ldfs		FShiftY = [FShiftIS], 4		ldfs		FActIY = [FActII], 4		xma.l		f32 = f32, f33, fZero	};;//	OUTER PROLOGUE 5	{	.mmi		ldfs		FActIZ = [FActII], -8		ldfs		FShiftZ = [FShiftIS], -8		mov		NJ0 = NJ1	} ;;//	OUTER PROLOGUE 6	{	.mfi		ldfs		VNBTotal = [VNBPtr]		fadd		IX = shX, PosX		add		NN0 = 1, NN0	}	{	.mfi	(pCont)	ld4		NJ1 = [jindexPtr], 4		//	This may seem strange, but we set the first stage of the		//	pipe to execute this way because setting pr.rot doesn't take		//	into account how much the predicates have rotated. If this is		//	the first time through, we cleared all the pipeline predicates		//	in the initialization. If not, flushing the pipeline set all		//	the pipeline predicates to 0		cmp.eq		pPipe[0], p0 = zero, zero	} ;;//	OUTER PROLOGUE 7	{	.mfi				cmp.lt		pCont, pDone = NN0, NN1		fadd		IY = shY, PosY		mov	    	ar.lc = InnerCnt	} ;;//	OUTER PROLOGUE 8	{	.mfi				getf.sig	NTI = f32		fadd		IZ = shZ, PosZ		mov		ar.ec = PIPE_DEPTH	} ;;// 12 bundles in outer loop - still aligned.	//	The inner loop is a 6-stage pipeline. The serial sequence of float ops	//	is folded into a 17-cycle loop (17 * 2 = 34 float ops, one empty),     //  then divided	//	into 5 stages.	innerLoop://	INNER LOOP 1	{	.mfi		(pPipe[0])	shladd	chargePtr = jnr, 2, CHARGE	(pPipe[1])	fsub	DX[1] = IX, DX[1]	(pPipe[0])	shladd	jnr3 = jnr, 1, jnr	}	//	We march through jjnr[] sequentially, so it's usually a good idea	//	to preload the next value. However, we don't want to do this if	//	(1) we're in the epilogue or (2) this is the last time through and	//	there are no more atoms to inspect. Thus, we keep track of the loop	//	trip and use the logic below to see if we should load ahead	.pred.rel "mutex", pCont, pDone	{	.mfi	(pCont)		cmp.ge	pJJNR, p0 = InnerCnt, zero	(pPipe[6])	fnma.s	FActX[6] = FScalar[2], DX[6], FActX[6]		(pDone)		cmp.gt	pJJNR, p0 = InnerCnt, zero	} ;;//	INNER LOOP 2	{	.mfi				nop	0x0	(pPipe[1])	fsub	DY[1] = IY, DY[1]	(pPipe[0])	add	InnerCnt = -1, InnerCnt	}	{	.mfi	(pPipe[0])	shladd	posPtr = jnr3, 2, POSITION	(pPipe[4])	fmpy	C6[2] = C6[2], RInv6[1]	(pPipe[0])	shladd	FActPtr[0] = jnr3, 2, FACTION	} ;;//	INNER LOOP 3	{	.mfi										(pPipe[0])	ldfs	JX = [posPtr], 4	(pPipe[1])	fsub	DZ[1] = IZ, DZ[1]	(pPipe[0])	shladd  TypeJ[0] = jnr, 2, TYPE	}	{  	.mfi	(pJJNR)		ld4	jnr = [jjnrPtr], 4	(pPipe[3])	fma.s	RInv2[1] = RInv2[1], RInv2Err[1], RInv2[1]	(pPipe[2])	add		TypeJ[2] = NTI, TypeJ[2]		} ;;//	INNER LOOP 4	{	.mfi		(pPipe[0])	ldfs	JY = [posPtr], 4	(pPipe[2])	frcpa 	RInv2[0], p0 = fOne, RSqr[1]	     (pPipe[0]) add     Ninner = 1, Ninner	}	{	.mfi				nop		0x0	(pPipe[4])	fmpy	RInv6[1] = RInv6[1], RInv6[1]				nop		0x0	} ;;//	INNER LOOP 5	{	.mfi										(pPipe[0])	ldfs	JZ = [posPtr], 4	(pPipe[1])	fmpy	RSqr[0] = DX[1], DX[1]	(pJJNR)     add     jjnrPtr = JJNR_PREFETCH_DISTANCE, jjnrPtr	}	{	.mfi				nop		0x0	(pPipe[5])	fmpy	FScalar[1] = FScalar[1], RInv2[3]				nop		0x0	} ;;//	INNER LOOP 6	{	.mfi		(pPipe[0])	ldfs	FActX[0] = [FActPtr[0]], 4	(pPipe[4])	fnma	FScalar[0] = C6[2], fSIX, fZero				nop		0x0	}	{	.mfi				nop		0x0	(pPipe[6])	fnma.s	FActY[6] = FScalar[2], DY[6], FActY[6]					nop		0x0	} ;;//	INNER LOOP 7	{	.mfi										(pPipe[0])	ldfs	FActY[0] = [FActPtr[0]], 4	(pPipe[3])	fmpy	RInv6[0] = RInv2[1], RInv2[1]				nop		0x0	}	{	.mfi	(pJJNR)     lfetch.nta  [jjnrPtr]	(pPipe[6])	fnma.s	FActZ[6] = FScalar[2], DZ[6], FActZ[6]					nop		0x0	} ;;//	INNER LOOP 8	{	.mfi		(pPipe[0])	ldfs	FActZ[0] = [FActPtr[0]], -8	(pPipe[2])	fnma	RInv2Err[0] = RInv2[0], RSqr[1], fOne	(pPipe[2])	shladd	TypeJ[2] = TypeJ[2], 3, NBFP	}	{	.mfi				nop		0x0	(pPipe[4])	fmpy	C12[2] = C12[2], RInv6[1]				nop		0x0	} ;;//	INNER LOOP 9	{	.mfi										(pPipe[2])	ldfs	C6[0] = [TypeJ[2]], 4	(pPipe[1])	fma		RSqr[0] = DY[1], DY[1], RSqr[0]    (pJJNR)     add     jjnrPtr = -JJNR_PREFETCH_DISTANCE, jjnrPtr	}	{	.mfi	(pPipe[0])	ld4 	TypeJ[0] = [TypeJ[0]]	(pPipe[4])	fsub	VNBTotal = VNBTotal, C6[2]				nop		0x0	} ;;//	INNER LOOP 10	{	.mfi			(pPipe[2])	ldfs	C12[0] = [TypeJ[2]]	(pPipe[6])	fma 	FIX = DX[6], FScalar[2], FIX				nop		0x0	}	{	.mfi				nop		0x0					(pPipe[6])	fma 	FIY = DY[6], FScalar[2], FIY				nop		0x0	} ;;//	INNER LOOP 11	{	.mfi			(pPipe[6])	stfs	[FActPtr[6]] = FActX[6], 4		(pPipe[3])	fmpy	RInv6[0] = RInv6[0], RInv2[1]				nop		0x0	}	{	.mfi				nop		0x0	(pPipe[6])	fma 	FIZ = DZ[6], FScalar[2], FIZ				nop		0x0	} ;;//	INNER LOOP 12	{	.mfi	(pPipe[6])	stfs	[FActPtr[6]] = FActY[6], 4		(pPipe[2])	fma		RInv2Err[0] = RInv2Err[0], RInv2Err[0], RInv2Err[0]				nop		0x0	}	{	.mfi				nop		0x0	(pPipe[4])	fma	FScalar[0] = C12[2], fTWELVE, FScalar[0]				nop		0x0	} ;;//	INNER LOOP 13	{	.mfi	(pPipe[6])	stfs	[FActPtr[6]] = FActZ[6], 4	(pPipe[1])	fma	RSqr[0] = DZ[1], DZ[1], RSqr[0]				nop		0x0	}	{	.mfb				nop		0x0	(pPipe[4])	fadd	VNBTotal = VNBTotal, C12[2]				br.ctop.sptk.many 	innerLoop	} ;;// 	End of modulo-scheduled inner loop	//	Having finshed the loop, we now compute various quantities to	//	store. In paralllel, start computing computing some of the values	//	for the next loop trip, if we're going there.//	OUTER EPILOGUE 1    {   .mfi	(pCont)	shladd	typePtr = II, 2, TYPE	    	fnorm.s VNBTotal = VNBTotal	(pCont)	shladd	II3 = II, 1, II    }	{	.mfi											nop		0x0			nop		0x0	(pCont)	shladd	IS3 = IS, 1, IS    } ;;//	OUTER EPILOGUE 2    {   .mfi	(pCont)	ld4	IS = [shiftPtr], 4		fadd.s	FActIX = FActIX, FIX		nop		0x0	}    {   .mmf	(pCont)	setf.sig	f33 = NTYPE	(pCont)	ld4	II = [iinrPtr] ,4		fadd.s	FShiftX = FShiftX, FIX	} ;;// 	OUTER EPILOGUE 3    {   .mfi	(pCont)	ld4				NTI = [typePtr]	  			fadd.s	FActIY = FActIY, FIY	(pCont)	shladd	shiftVPtr = IS3, 2, SHIFTVEC							}     {   .mfi		nop 0x0		fadd.s	FShiftY = FShiftY, FIY	(pCont)	shladd	posPtr = II3, 2, POSITION	} ;;//	OUTER EPILOGUE 4    {   .mfi		nop 	0x0		fadd.s	FActIZ = FActIZ, FIZ		nop 	0x0	}     {   .mfi		nop 	0x0		fadd.s	FShiftZ = FShiftZ, FIZ				nop 	0x0	} ;;//	OUTER EPILOGUE 5	{	.mmi		stfs	[FActII] = FActIX, 4		stfs	[FShiftIS] = FShiftX, 4		nop 	0x0	}    {   .mmi		stfs    [VNBPtr] = VNBTotal	(pCont)		ld4     ggid = [gidPtr], 4 		nop 	0x0	} ;;//	OUTER EPILOGUE 6	{	.mmi		stfs	[FActII] = FActIY, 4		stfs	[FShiftIS] = FShiftY, 4		nop 0x0	} ;;//	OUTER EPILOGUE 7	{	.mmi		stfs	[FActII] = FActIZ		nop		0x0	(pCont)	shladd	FActII = II3, 2, FACTION	}	{	.mib		stfs	[FShiftIS] = FShiftZ	(pCont)	shladd	FShiftIS = IS3, 2, FSHIFT	(pCont)	br.cond.sptk.many	outerLoop	} ;;	// Finish if this was the last chunk, or do another thread-loop iteration//  THREAD EPILOGUE 1	{ .mib						nop				0x0		nop				0x0	(pMore) br.cond.sptk.many threadLoop	} ;;		//	Ready to exit - restore the floating-point registers we saved, the	//	loop counter, and the predicates, then we're done. Note that the	//	stack pointer has the address of the last saved FP register.finish://  EXIT 1	{	.mmi		mov			fillP0 = sp		add			fillP1 = 16, sp		mov			ar.lc = LCSave	}	{		.mmi		st4			[OuterIter] = Nouter		st4			[InnerIter] = Ninner		nop			0x0	} ;;//  EXIT 2	{	.mmi		ldf.fill		fs4 = [fillP0], 32		ldf.fill		fs3 = [fillP1], 32		mov			pr = PRSave, 0x1ffff	} ;;//  EXIT 3	{	.mmi		ldf.fill		fs2 = [fillP0], 32		ldf.fill		fs1 = [fillP1], 32		add			sp = 4 * 16, sp	} ;;//  EXIT 4	{	.mmb		ldf.fill		fs0 = [fillP0]		nop			0x0		br.ret.sptk.few	rp	} ;;	.endp	 nb_kernel010_ia64_single

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