6adb2338fbf63570c4ee9dd8d0b1b59d61732f37
[alexxy/gromacs.git] / src / gromacs / gmxlib / nonbonded / nb_kernel_sse4_1_double / nb_kernel_ElecCoul_VdwNone_GeomW3W3_sse4_1_double.c
1 /*
2  * Note: this file was generated by the Gromacs sse4_1_double kernel generator.
3  *
4  *                This source code is part of
5  *
6  *                 G   R   O   M   A   C   S
7  *
8  * Copyright (c) 2001-2012, The GROMACS Development Team
9  *
10  * Gromacs is a library for molecular simulation and trajectory analysis,
11  * written by Erik Lindahl, David van der Spoel, Berk Hess, and others - for
12  * a full list of developers and information, check out http://www.gromacs.org
13  *
14  * This program is free software; you can redistribute it and/or modify it under
15  * the terms of the GNU Lesser General Public License as published by the Free
16  * Software Foundation; either version 2 of the License, or (at your option) any
17  * later version.
18  *
19  * To help fund GROMACS development, we humbly ask that you cite
20  * the papers people have written on it - you can find them on the website.
21  */
22 #ifdef HAVE_CONFIG_H
23 #include <config.h>
24 #endif
25
26 #include <math.h>
27
28 #include "../nb_kernel.h"
29 #include "types/simple.h"
30 #include "vec.h"
31 #include "nrnb.h"
32
33 #include "gmx_math_x86_sse4_1_double.h"
34 #include "kernelutil_x86_sse4_1_double.h"
35
36 /*
37  * Gromacs nonbonded kernel:   nb_kernel_ElecCoul_VdwNone_GeomW3W3_VF_sse4_1_double
38  * Electrostatics interaction: Coulomb
39  * VdW interaction:            None
40  * Geometry:                   Water3-Water3
41  * Calculate force/pot:        PotentialAndForce
42  */
43 void
44 nb_kernel_ElecCoul_VdwNone_GeomW3W3_VF_sse4_1_double
45                     (t_nblist * gmx_restrict                nlist,
46                      rvec * gmx_restrict                    xx,
47                      rvec * gmx_restrict                    ff,
48                      t_forcerec * gmx_restrict              fr,
49                      t_mdatoms * gmx_restrict               mdatoms,
50                      nb_kernel_data_t * gmx_restrict        kernel_data,
51                      t_nrnb * gmx_restrict                  nrnb)
52 {
53     /* Suffixes 0,1,2,3 refer to particle indices for waters in the inner or outer loop, or
54      * just 0 for non-waters.
55      * Suffixes A,B refer to j loop unrolling done with SSE double precision, e.g. for the two different
56      * jnr indices corresponding to data put in the four positions in the SIMD register.
57      */
58     int              i_shift_offset,i_coord_offset,outeriter,inneriter;
59     int              j_index_start,j_index_end,jidx,nri,inr,ggid,iidx;
60     int              jnrA,jnrB;
61     int              j_coord_offsetA,j_coord_offsetB;
62     int              *iinr,*jindex,*jjnr,*shiftidx,*gid;
63     real             rcutoff_scalar;
64     real             *shiftvec,*fshift,*x,*f;
65     __m128d          tx,ty,tz,fscal,rcutoff,rcutoff2,jidxall;
66     int              vdwioffset0;
67     __m128d          ix0,iy0,iz0,fix0,fiy0,fiz0,iq0,isai0;
68     int              vdwioffset1;
69     __m128d          ix1,iy1,iz1,fix1,fiy1,fiz1,iq1,isai1;
70     int              vdwioffset2;
71     __m128d          ix2,iy2,iz2,fix2,fiy2,fiz2,iq2,isai2;
72     int              vdwjidx0A,vdwjidx0B;
73     __m128d          jx0,jy0,jz0,fjx0,fjy0,fjz0,jq0,isaj0;
74     int              vdwjidx1A,vdwjidx1B;
75     __m128d          jx1,jy1,jz1,fjx1,fjy1,fjz1,jq1,isaj1;
76     int              vdwjidx2A,vdwjidx2B;
77     __m128d          jx2,jy2,jz2,fjx2,fjy2,fjz2,jq2,isaj2;
78     __m128d          dx00,dy00,dz00,rsq00,rinv00,rinvsq00,r00,qq00,c6_00,c12_00;
79     __m128d          dx01,dy01,dz01,rsq01,rinv01,rinvsq01,r01,qq01,c6_01,c12_01;
80     __m128d          dx02,dy02,dz02,rsq02,rinv02,rinvsq02,r02,qq02,c6_02,c12_02;
81     __m128d          dx10,dy10,dz10,rsq10,rinv10,rinvsq10,r10,qq10,c6_10,c12_10;
82     __m128d          dx11,dy11,dz11,rsq11,rinv11,rinvsq11,r11,qq11,c6_11,c12_11;
83     __m128d          dx12,dy12,dz12,rsq12,rinv12,rinvsq12,r12,qq12,c6_12,c12_12;
84     __m128d          dx20,dy20,dz20,rsq20,rinv20,rinvsq20,r20,qq20,c6_20,c12_20;
85     __m128d          dx21,dy21,dz21,rsq21,rinv21,rinvsq21,r21,qq21,c6_21,c12_21;
86     __m128d          dx22,dy22,dz22,rsq22,rinv22,rinvsq22,r22,qq22,c6_22,c12_22;
87     __m128d          velec,felec,velecsum,facel,crf,krf,krf2;
88     real             *charge;
89     __m128d          dummy_mask,cutoff_mask;
90     __m128d          signbit   = gmx_mm_castsi128_pd( _mm_set_epi32(0x80000000,0x00000000,0x80000000,0x00000000) );
91     __m128d          one     = _mm_set1_pd(1.0);
92     __m128d          two     = _mm_set1_pd(2.0);
93     x                = xx[0];
94     f                = ff[0];
95
96     nri              = nlist->nri;
97     iinr             = nlist->iinr;
98     jindex           = nlist->jindex;
99     jjnr             = nlist->jjnr;
100     shiftidx         = nlist->shift;
101     gid              = nlist->gid;
102     shiftvec         = fr->shift_vec[0];
103     fshift           = fr->fshift[0];
104     facel            = _mm_set1_pd(fr->epsfac);
105     charge           = mdatoms->chargeA;
106
107     /* Setup water-specific parameters */
108     inr              = nlist->iinr[0];
109     iq0              = _mm_mul_pd(facel,_mm_set1_pd(charge[inr+0]));
110     iq1              = _mm_mul_pd(facel,_mm_set1_pd(charge[inr+1]));
111     iq2              = _mm_mul_pd(facel,_mm_set1_pd(charge[inr+2]));
112
113     jq0              = _mm_set1_pd(charge[inr+0]);
114     jq1              = _mm_set1_pd(charge[inr+1]);
115     jq2              = _mm_set1_pd(charge[inr+2]);
116     qq00             = _mm_mul_pd(iq0,jq0);
117     qq01             = _mm_mul_pd(iq0,jq1);
118     qq02             = _mm_mul_pd(iq0,jq2);
119     qq10             = _mm_mul_pd(iq1,jq0);
120     qq11             = _mm_mul_pd(iq1,jq1);
121     qq12             = _mm_mul_pd(iq1,jq2);
122     qq20             = _mm_mul_pd(iq2,jq0);
123     qq21             = _mm_mul_pd(iq2,jq1);
124     qq22             = _mm_mul_pd(iq2,jq2);
125
126     /* Avoid stupid compiler warnings */
127     jnrA = jnrB = 0;
128     j_coord_offsetA = 0;
129     j_coord_offsetB = 0;
130
131     outeriter        = 0;
132     inneriter        = 0;
133
134     /* Start outer loop over neighborlists */
135     for(iidx=0; iidx<nri; iidx++)
136     {
137         /* Load shift vector for this list */
138         i_shift_offset   = DIM*shiftidx[iidx];
139
140         /* Load limits for loop over neighbors */
141         j_index_start    = jindex[iidx];
142         j_index_end      = jindex[iidx+1];
143
144         /* Get outer coordinate index */
145         inr              = iinr[iidx];
146         i_coord_offset   = DIM*inr;
147
148         /* Load i particle coords and add shift vector */
149         gmx_mm_load_shift_and_3rvec_broadcast_pd(shiftvec+i_shift_offset,x+i_coord_offset,
150                                                  &ix0,&iy0,&iz0,&ix1,&iy1,&iz1,&ix2,&iy2,&iz2);
151
152         fix0             = _mm_setzero_pd();
153         fiy0             = _mm_setzero_pd();
154         fiz0             = _mm_setzero_pd();
155         fix1             = _mm_setzero_pd();
156         fiy1             = _mm_setzero_pd();
157         fiz1             = _mm_setzero_pd();
158         fix2             = _mm_setzero_pd();
159         fiy2             = _mm_setzero_pd();
160         fiz2             = _mm_setzero_pd();
161
162         /* Reset potential sums */
163         velecsum         = _mm_setzero_pd();
164
165         /* Start inner kernel loop */
166         for(jidx=j_index_start; jidx<j_index_end-1; jidx+=2)
167         {
168
169             /* Get j neighbor index, and coordinate index */
170             jnrA             = jjnr[jidx];
171             jnrB             = jjnr[jidx+1];
172             j_coord_offsetA  = DIM*jnrA;
173             j_coord_offsetB  = DIM*jnrB;
174
175             /* load j atom coordinates */
176             gmx_mm_load_3rvec_2ptr_swizzle_pd(x+j_coord_offsetA,x+j_coord_offsetB,
177                                               &jx0,&jy0,&jz0,&jx1,&jy1,&jz1,&jx2,&jy2,&jz2);
178
179             /* Calculate displacement vector */
180             dx00             = _mm_sub_pd(ix0,jx0);
181             dy00             = _mm_sub_pd(iy0,jy0);
182             dz00             = _mm_sub_pd(iz0,jz0);
183             dx01             = _mm_sub_pd(ix0,jx1);
184             dy01             = _mm_sub_pd(iy0,jy1);
185             dz01             = _mm_sub_pd(iz0,jz1);
186             dx02             = _mm_sub_pd(ix0,jx2);
187             dy02             = _mm_sub_pd(iy0,jy2);
188             dz02             = _mm_sub_pd(iz0,jz2);
189             dx10             = _mm_sub_pd(ix1,jx0);
190             dy10             = _mm_sub_pd(iy1,jy0);
191             dz10             = _mm_sub_pd(iz1,jz0);
192             dx11             = _mm_sub_pd(ix1,jx1);
193             dy11             = _mm_sub_pd(iy1,jy1);
194             dz11             = _mm_sub_pd(iz1,jz1);
195             dx12             = _mm_sub_pd(ix1,jx2);
196             dy12             = _mm_sub_pd(iy1,jy2);
197             dz12             = _mm_sub_pd(iz1,jz2);
198             dx20             = _mm_sub_pd(ix2,jx0);
199             dy20             = _mm_sub_pd(iy2,jy0);
200             dz20             = _mm_sub_pd(iz2,jz0);
201             dx21             = _mm_sub_pd(ix2,jx1);
202             dy21             = _mm_sub_pd(iy2,jy1);
203             dz21             = _mm_sub_pd(iz2,jz1);
204             dx22             = _mm_sub_pd(ix2,jx2);
205             dy22             = _mm_sub_pd(iy2,jy2);
206             dz22             = _mm_sub_pd(iz2,jz2);
207
208             /* Calculate squared distance and things based on it */
209             rsq00            = gmx_mm_calc_rsq_pd(dx00,dy00,dz00);
210             rsq01            = gmx_mm_calc_rsq_pd(dx01,dy01,dz01);
211             rsq02            = gmx_mm_calc_rsq_pd(dx02,dy02,dz02);
212             rsq10            = gmx_mm_calc_rsq_pd(dx10,dy10,dz10);
213             rsq11            = gmx_mm_calc_rsq_pd(dx11,dy11,dz11);
214             rsq12            = gmx_mm_calc_rsq_pd(dx12,dy12,dz12);
215             rsq20            = gmx_mm_calc_rsq_pd(dx20,dy20,dz20);
216             rsq21            = gmx_mm_calc_rsq_pd(dx21,dy21,dz21);
217             rsq22            = gmx_mm_calc_rsq_pd(dx22,dy22,dz22);
218
219             rinv00           = gmx_mm_invsqrt_pd(rsq00);
220             rinv01           = gmx_mm_invsqrt_pd(rsq01);
221             rinv02           = gmx_mm_invsqrt_pd(rsq02);
222             rinv10           = gmx_mm_invsqrt_pd(rsq10);
223             rinv11           = gmx_mm_invsqrt_pd(rsq11);
224             rinv12           = gmx_mm_invsqrt_pd(rsq12);
225             rinv20           = gmx_mm_invsqrt_pd(rsq20);
226             rinv21           = gmx_mm_invsqrt_pd(rsq21);
227             rinv22           = gmx_mm_invsqrt_pd(rsq22);
228
229             rinvsq00         = _mm_mul_pd(rinv00,rinv00);
230             rinvsq01         = _mm_mul_pd(rinv01,rinv01);
231             rinvsq02         = _mm_mul_pd(rinv02,rinv02);
232             rinvsq10         = _mm_mul_pd(rinv10,rinv10);
233             rinvsq11         = _mm_mul_pd(rinv11,rinv11);
234             rinvsq12         = _mm_mul_pd(rinv12,rinv12);
235             rinvsq20         = _mm_mul_pd(rinv20,rinv20);
236             rinvsq21         = _mm_mul_pd(rinv21,rinv21);
237             rinvsq22         = _mm_mul_pd(rinv22,rinv22);
238
239             fjx0             = _mm_setzero_pd();
240             fjy0             = _mm_setzero_pd();
241             fjz0             = _mm_setzero_pd();
242             fjx1             = _mm_setzero_pd();
243             fjy1             = _mm_setzero_pd();
244             fjz1             = _mm_setzero_pd();
245             fjx2             = _mm_setzero_pd();
246             fjy2             = _mm_setzero_pd();
247             fjz2             = _mm_setzero_pd();
248
249             /**************************
250              * CALCULATE INTERACTIONS *
251              **************************/
252
253             /* COULOMB ELECTROSTATICS */
254             velec            = _mm_mul_pd(qq00,rinv00);
255             felec            = _mm_mul_pd(velec,rinvsq00);
256
257             /* Update potential sum for this i atom from the interaction with this j atom. */
258             velecsum         = _mm_add_pd(velecsum,velec);
259
260             fscal            = felec;
261
262             /* Calculate temporary vectorial force */
263             tx               = _mm_mul_pd(fscal,dx00);
264             ty               = _mm_mul_pd(fscal,dy00);
265             tz               = _mm_mul_pd(fscal,dz00);
266
267             /* Update vectorial force */
268             fix0             = _mm_add_pd(fix0,tx);
269             fiy0             = _mm_add_pd(fiy0,ty);
270             fiz0             = _mm_add_pd(fiz0,tz);
271
272             fjx0             = _mm_add_pd(fjx0,tx);
273             fjy0             = _mm_add_pd(fjy0,ty);
274             fjz0             = _mm_add_pd(fjz0,tz);
275
276             /**************************
277              * CALCULATE INTERACTIONS *
278              **************************/
279
280             /* COULOMB ELECTROSTATICS */
281             velec            = _mm_mul_pd(qq01,rinv01);
282             felec            = _mm_mul_pd(velec,rinvsq01);
283
284             /* Update potential sum for this i atom from the interaction with this j atom. */
285             velecsum         = _mm_add_pd(velecsum,velec);
286
287             fscal            = felec;
288
289             /* Calculate temporary vectorial force */
290             tx               = _mm_mul_pd(fscal,dx01);
291             ty               = _mm_mul_pd(fscal,dy01);
292             tz               = _mm_mul_pd(fscal,dz01);
293
294             /* Update vectorial force */
295             fix0             = _mm_add_pd(fix0,tx);
296             fiy0             = _mm_add_pd(fiy0,ty);
297             fiz0             = _mm_add_pd(fiz0,tz);
298
299             fjx1             = _mm_add_pd(fjx1,tx);
300             fjy1             = _mm_add_pd(fjy1,ty);
301             fjz1             = _mm_add_pd(fjz1,tz);
302
303             /**************************
304              * CALCULATE INTERACTIONS *
305              **************************/
306
307             /* COULOMB ELECTROSTATICS */
308             velec            = _mm_mul_pd(qq02,rinv02);
309             felec            = _mm_mul_pd(velec,rinvsq02);
310
311             /* Update potential sum for this i atom from the interaction with this j atom. */
312             velecsum         = _mm_add_pd(velecsum,velec);
313
314             fscal            = felec;
315
316             /* Calculate temporary vectorial force */
317             tx               = _mm_mul_pd(fscal,dx02);
318             ty               = _mm_mul_pd(fscal,dy02);
319             tz               = _mm_mul_pd(fscal,dz02);
320
321             /* Update vectorial force */
322             fix0             = _mm_add_pd(fix0,tx);
323             fiy0             = _mm_add_pd(fiy0,ty);
324             fiz0             = _mm_add_pd(fiz0,tz);
325
326             fjx2             = _mm_add_pd(fjx2,tx);
327             fjy2             = _mm_add_pd(fjy2,ty);
328             fjz2             = _mm_add_pd(fjz2,tz);
329
330             /**************************
331              * CALCULATE INTERACTIONS *
332              **************************/
333
334             /* COULOMB ELECTROSTATICS */
335             velec            = _mm_mul_pd(qq10,rinv10);
336             felec            = _mm_mul_pd(velec,rinvsq10);
337
338             /* Update potential sum for this i atom from the interaction with this j atom. */
339             velecsum         = _mm_add_pd(velecsum,velec);
340
341             fscal            = felec;
342
343             /* Calculate temporary vectorial force */
344             tx               = _mm_mul_pd(fscal,dx10);
345             ty               = _mm_mul_pd(fscal,dy10);
346             tz               = _mm_mul_pd(fscal,dz10);
347
348             /* Update vectorial force */
349             fix1             = _mm_add_pd(fix1,tx);
350             fiy1             = _mm_add_pd(fiy1,ty);
351             fiz1             = _mm_add_pd(fiz1,tz);
352
353             fjx0             = _mm_add_pd(fjx0,tx);
354             fjy0             = _mm_add_pd(fjy0,ty);
355             fjz0             = _mm_add_pd(fjz0,tz);
356
357             /**************************
358              * CALCULATE INTERACTIONS *
359              **************************/
360
361             /* COULOMB ELECTROSTATICS */
362             velec            = _mm_mul_pd(qq11,rinv11);
363             felec            = _mm_mul_pd(velec,rinvsq11);
364
365             /* Update potential sum for this i atom from the interaction with this j atom. */
366             velecsum         = _mm_add_pd(velecsum,velec);
367
368             fscal            = felec;
369
370             /* Calculate temporary vectorial force */
371             tx               = _mm_mul_pd(fscal,dx11);
372             ty               = _mm_mul_pd(fscal,dy11);
373             tz               = _mm_mul_pd(fscal,dz11);
374
375             /* Update vectorial force */
376             fix1             = _mm_add_pd(fix1,tx);
377             fiy1             = _mm_add_pd(fiy1,ty);
378             fiz1             = _mm_add_pd(fiz1,tz);
379
380             fjx1             = _mm_add_pd(fjx1,tx);
381             fjy1             = _mm_add_pd(fjy1,ty);
382             fjz1             = _mm_add_pd(fjz1,tz);
383
384             /**************************
385              * CALCULATE INTERACTIONS *
386              **************************/
387
388             /* COULOMB ELECTROSTATICS */
389             velec            = _mm_mul_pd(qq12,rinv12);
390             felec            = _mm_mul_pd(velec,rinvsq12);
391
392             /* Update potential sum for this i atom from the interaction with this j atom. */
393             velecsum         = _mm_add_pd(velecsum,velec);
394
395             fscal            = felec;
396
397             /* Calculate temporary vectorial force */
398             tx               = _mm_mul_pd(fscal,dx12);
399             ty               = _mm_mul_pd(fscal,dy12);
400             tz               = _mm_mul_pd(fscal,dz12);
401
402             /* Update vectorial force */
403             fix1             = _mm_add_pd(fix1,tx);
404             fiy1             = _mm_add_pd(fiy1,ty);
405             fiz1             = _mm_add_pd(fiz1,tz);
406
407             fjx2             = _mm_add_pd(fjx2,tx);
408             fjy2             = _mm_add_pd(fjy2,ty);
409             fjz2             = _mm_add_pd(fjz2,tz);
410
411             /**************************
412              * CALCULATE INTERACTIONS *
413              **************************/
414
415             /* COULOMB ELECTROSTATICS */
416             velec            = _mm_mul_pd(qq20,rinv20);
417             felec            = _mm_mul_pd(velec,rinvsq20);
418
419             /* Update potential sum for this i atom from the interaction with this j atom. */
420             velecsum         = _mm_add_pd(velecsum,velec);
421
422             fscal            = felec;
423
424             /* Calculate temporary vectorial force */
425             tx               = _mm_mul_pd(fscal,dx20);
426             ty               = _mm_mul_pd(fscal,dy20);
427             tz               = _mm_mul_pd(fscal,dz20);
428
429             /* Update vectorial force */
430             fix2             = _mm_add_pd(fix2,tx);
431             fiy2             = _mm_add_pd(fiy2,ty);
432             fiz2             = _mm_add_pd(fiz2,tz);
433
434             fjx0             = _mm_add_pd(fjx0,tx);
435             fjy0             = _mm_add_pd(fjy0,ty);
436             fjz0             = _mm_add_pd(fjz0,tz);
437
438             /**************************
439              * CALCULATE INTERACTIONS *
440              **************************/
441
442             /* COULOMB ELECTROSTATICS */
443             velec            = _mm_mul_pd(qq21,rinv21);
444             felec            = _mm_mul_pd(velec,rinvsq21);
445
446             /* Update potential sum for this i atom from the interaction with this j atom. */
447             velecsum         = _mm_add_pd(velecsum,velec);
448
449             fscal            = felec;
450
451             /* Calculate temporary vectorial force */
452             tx               = _mm_mul_pd(fscal,dx21);
453             ty               = _mm_mul_pd(fscal,dy21);
454             tz               = _mm_mul_pd(fscal,dz21);
455
456             /* Update vectorial force */
457             fix2             = _mm_add_pd(fix2,tx);
458             fiy2             = _mm_add_pd(fiy2,ty);
459             fiz2             = _mm_add_pd(fiz2,tz);
460
461             fjx1             = _mm_add_pd(fjx1,tx);
462             fjy1             = _mm_add_pd(fjy1,ty);
463             fjz1             = _mm_add_pd(fjz1,tz);
464
465             /**************************
466              * CALCULATE INTERACTIONS *
467              **************************/
468
469             /* COULOMB ELECTROSTATICS */
470             velec            = _mm_mul_pd(qq22,rinv22);
471             felec            = _mm_mul_pd(velec,rinvsq22);
472
473             /* Update potential sum for this i atom from the interaction with this j atom. */
474             velecsum         = _mm_add_pd(velecsum,velec);
475
476             fscal            = felec;
477
478             /* Calculate temporary vectorial force */
479             tx               = _mm_mul_pd(fscal,dx22);
480             ty               = _mm_mul_pd(fscal,dy22);
481             tz               = _mm_mul_pd(fscal,dz22);
482
483             /* Update vectorial force */
484             fix2             = _mm_add_pd(fix2,tx);
485             fiy2             = _mm_add_pd(fiy2,ty);
486             fiz2             = _mm_add_pd(fiz2,tz);
487
488             fjx2             = _mm_add_pd(fjx2,tx);
489             fjy2             = _mm_add_pd(fjy2,ty);
490             fjz2             = _mm_add_pd(fjz2,tz);
491
492             gmx_mm_decrement_3rvec_2ptr_swizzle_pd(f+j_coord_offsetA,f+j_coord_offsetB,fjx0,fjy0,fjz0,fjx1,fjy1,fjz1,fjx2,fjy2,fjz2);
493
494             /* Inner loop uses 252 flops */
495         }
496
497         if(jidx<j_index_end)
498         {
499
500             jnrA             = jjnr[jidx];
501             j_coord_offsetA  = DIM*jnrA;
502
503             /* load j atom coordinates */
504             gmx_mm_load_3rvec_1ptr_swizzle_pd(x+j_coord_offsetA,
505                                               &jx0,&jy0,&jz0,&jx1,&jy1,&jz1,&jx2,&jy2,&jz2);
506
507             /* Calculate displacement vector */
508             dx00             = _mm_sub_pd(ix0,jx0);
509             dy00             = _mm_sub_pd(iy0,jy0);
510             dz00             = _mm_sub_pd(iz0,jz0);
511             dx01             = _mm_sub_pd(ix0,jx1);
512             dy01             = _mm_sub_pd(iy0,jy1);
513             dz01             = _mm_sub_pd(iz0,jz1);
514             dx02             = _mm_sub_pd(ix0,jx2);
515             dy02             = _mm_sub_pd(iy0,jy2);
516             dz02             = _mm_sub_pd(iz0,jz2);
517             dx10             = _mm_sub_pd(ix1,jx0);
518             dy10             = _mm_sub_pd(iy1,jy0);
519             dz10             = _mm_sub_pd(iz1,jz0);
520             dx11             = _mm_sub_pd(ix1,jx1);
521             dy11             = _mm_sub_pd(iy1,jy1);
522             dz11             = _mm_sub_pd(iz1,jz1);
523             dx12             = _mm_sub_pd(ix1,jx2);
524             dy12             = _mm_sub_pd(iy1,jy2);
525             dz12             = _mm_sub_pd(iz1,jz2);
526             dx20             = _mm_sub_pd(ix2,jx0);
527             dy20             = _mm_sub_pd(iy2,jy0);
528             dz20             = _mm_sub_pd(iz2,jz0);
529             dx21             = _mm_sub_pd(ix2,jx1);
530             dy21             = _mm_sub_pd(iy2,jy1);
531             dz21             = _mm_sub_pd(iz2,jz1);
532             dx22             = _mm_sub_pd(ix2,jx2);
533             dy22             = _mm_sub_pd(iy2,jy2);
534             dz22             = _mm_sub_pd(iz2,jz2);
535
536             /* Calculate squared distance and things based on it */
537             rsq00            = gmx_mm_calc_rsq_pd(dx00,dy00,dz00);
538             rsq01            = gmx_mm_calc_rsq_pd(dx01,dy01,dz01);
539             rsq02            = gmx_mm_calc_rsq_pd(dx02,dy02,dz02);
540             rsq10            = gmx_mm_calc_rsq_pd(dx10,dy10,dz10);
541             rsq11            = gmx_mm_calc_rsq_pd(dx11,dy11,dz11);
542             rsq12            = gmx_mm_calc_rsq_pd(dx12,dy12,dz12);
543             rsq20            = gmx_mm_calc_rsq_pd(dx20,dy20,dz20);
544             rsq21            = gmx_mm_calc_rsq_pd(dx21,dy21,dz21);
545             rsq22            = gmx_mm_calc_rsq_pd(dx22,dy22,dz22);
546
547             rinv00           = gmx_mm_invsqrt_pd(rsq00);
548             rinv01           = gmx_mm_invsqrt_pd(rsq01);
549             rinv02           = gmx_mm_invsqrt_pd(rsq02);
550             rinv10           = gmx_mm_invsqrt_pd(rsq10);
551             rinv11           = gmx_mm_invsqrt_pd(rsq11);
552             rinv12           = gmx_mm_invsqrt_pd(rsq12);
553             rinv20           = gmx_mm_invsqrt_pd(rsq20);
554             rinv21           = gmx_mm_invsqrt_pd(rsq21);
555             rinv22           = gmx_mm_invsqrt_pd(rsq22);
556
557             rinvsq00         = _mm_mul_pd(rinv00,rinv00);
558             rinvsq01         = _mm_mul_pd(rinv01,rinv01);
559             rinvsq02         = _mm_mul_pd(rinv02,rinv02);
560             rinvsq10         = _mm_mul_pd(rinv10,rinv10);
561             rinvsq11         = _mm_mul_pd(rinv11,rinv11);
562             rinvsq12         = _mm_mul_pd(rinv12,rinv12);
563             rinvsq20         = _mm_mul_pd(rinv20,rinv20);
564             rinvsq21         = _mm_mul_pd(rinv21,rinv21);
565             rinvsq22         = _mm_mul_pd(rinv22,rinv22);
566
567             fjx0             = _mm_setzero_pd();
568             fjy0             = _mm_setzero_pd();
569             fjz0             = _mm_setzero_pd();
570             fjx1             = _mm_setzero_pd();
571             fjy1             = _mm_setzero_pd();
572             fjz1             = _mm_setzero_pd();
573             fjx2             = _mm_setzero_pd();
574             fjy2             = _mm_setzero_pd();
575             fjz2             = _mm_setzero_pd();
576
577             /**************************
578              * CALCULATE INTERACTIONS *
579              **************************/
580
581             /* COULOMB ELECTROSTATICS */
582             velec            = _mm_mul_pd(qq00,rinv00);
583             felec            = _mm_mul_pd(velec,rinvsq00);
584
585             /* Update potential sum for this i atom from the interaction with this j atom. */
586             velec            = _mm_unpacklo_pd(velec,_mm_setzero_pd());
587             velecsum         = _mm_add_pd(velecsum,velec);
588
589             fscal            = felec;
590
591             fscal            = _mm_unpacklo_pd(fscal,_mm_setzero_pd());
592
593             /* Calculate temporary vectorial force */
594             tx               = _mm_mul_pd(fscal,dx00);
595             ty               = _mm_mul_pd(fscal,dy00);
596             tz               = _mm_mul_pd(fscal,dz00);
597
598             /* Update vectorial force */
599             fix0             = _mm_add_pd(fix0,tx);
600             fiy0             = _mm_add_pd(fiy0,ty);
601             fiz0             = _mm_add_pd(fiz0,tz);
602
603             fjx0             = _mm_add_pd(fjx0,tx);
604             fjy0             = _mm_add_pd(fjy0,ty);
605             fjz0             = _mm_add_pd(fjz0,tz);
606
607             /**************************
608              * CALCULATE INTERACTIONS *
609              **************************/
610
611             /* COULOMB ELECTROSTATICS */
612             velec            = _mm_mul_pd(qq01,rinv01);
613             felec            = _mm_mul_pd(velec,rinvsq01);
614
615             /* Update potential sum for this i atom from the interaction with this j atom. */
616             velec            = _mm_unpacklo_pd(velec,_mm_setzero_pd());
617             velecsum         = _mm_add_pd(velecsum,velec);
618
619             fscal            = felec;
620
621             fscal            = _mm_unpacklo_pd(fscal,_mm_setzero_pd());
622
623             /* Calculate temporary vectorial force */
624             tx               = _mm_mul_pd(fscal,dx01);
625             ty               = _mm_mul_pd(fscal,dy01);
626             tz               = _mm_mul_pd(fscal,dz01);
627
628             /* Update vectorial force */
629             fix0             = _mm_add_pd(fix0,tx);
630             fiy0             = _mm_add_pd(fiy0,ty);
631             fiz0             = _mm_add_pd(fiz0,tz);
632
633             fjx1             = _mm_add_pd(fjx1,tx);
634             fjy1             = _mm_add_pd(fjy1,ty);
635             fjz1             = _mm_add_pd(fjz1,tz);
636
637             /**************************
638              * CALCULATE INTERACTIONS *
639              **************************/
640
641             /* COULOMB ELECTROSTATICS */
642             velec            = _mm_mul_pd(qq02,rinv02);
643             felec            = _mm_mul_pd(velec,rinvsq02);
644
645             /* Update potential sum for this i atom from the interaction with this j atom. */
646             velec            = _mm_unpacklo_pd(velec,_mm_setzero_pd());
647             velecsum         = _mm_add_pd(velecsum,velec);
648
649             fscal            = felec;
650
651             fscal            = _mm_unpacklo_pd(fscal,_mm_setzero_pd());
652
653             /* Calculate temporary vectorial force */
654             tx               = _mm_mul_pd(fscal,dx02);
655             ty               = _mm_mul_pd(fscal,dy02);
656             tz               = _mm_mul_pd(fscal,dz02);
657
658             /* Update vectorial force */
659             fix0             = _mm_add_pd(fix0,tx);
660             fiy0             = _mm_add_pd(fiy0,ty);
661             fiz0             = _mm_add_pd(fiz0,tz);
662
663             fjx2             = _mm_add_pd(fjx2,tx);
664             fjy2             = _mm_add_pd(fjy2,ty);
665             fjz2             = _mm_add_pd(fjz2,tz);
666
667             /**************************
668              * CALCULATE INTERACTIONS *
669              **************************/
670
671             /* COULOMB ELECTROSTATICS */
672             velec            = _mm_mul_pd(qq10,rinv10);
673             felec            = _mm_mul_pd(velec,rinvsq10);
674
675             /* Update potential sum for this i atom from the interaction with this j atom. */
676             velec            = _mm_unpacklo_pd(velec,_mm_setzero_pd());
677             velecsum         = _mm_add_pd(velecsum,velec);
678
679             fscal            = felec;
680
681             fscal            = _mm_unpacklo_pd(fscal,_mm_setzero_pd());
682
683             /* Calculate temporary vectorial force */
684             tx               = _mm_mul_pd(fscal,dx10);
685             ty               = _mm_mul_pd(fscal,dy10);
686             tz               = _mm_mul_pd(fscal,dz10);
687
688             /* Update vectorial force */
689             fix1             = _mm_add_pd(fix1,tx);
690             fiy1             = _mm_add_pd(fiy1,ty);
691             fiz1             = _mm_add_pd(fiz1,tz);
692
693             fjx0             = _mm_add_pd(fjx0,tx);
694             fjy0             = _mm_add_pd(fjy0,ty);
695             fjz0             = _mm_add_pd(fjz0,tz);
696
697             /**************************
698              * CALCULATE INTERACTIONS *
699              **************************/
700
701             /* COULOMB ELECTROSTATICS */
702             velec            = _mm_mul_pd(qq11,rinv11);
703             felec            = _mm_mul_pd(velec,rinvsq11);
704
705             /* Update potential sum for this i atom from the interaction with this j atom. */
706             velec            = _mm_unpacklo_pd(velec,_mm_setzero_pd());
707             velecsum         = _mm_add_pd(velecsum,velec);
708
709             fscal            = felec;
710
711             fscal            = _mm_unpacklo_pd(fscal,_mm_setzero_pd());
712
713             /* Calculate temporary vectorial force */
714             tx               = _mm_mul_pd(fscal,dx11);
715             ty               = _mm_mul_pd(fscal,dy11);
716             tz               = _mm_mul_pd(fscal,dz11);
717
718             /* Update vectorial force */
719             fix1             = _mm_add_pd(fix1,tx);
720             fiy1             = _mm_add_pd(fiy1,ty);
721             fiz1             = _mm_add_pd(fiz1,tz);
722
723             fjx1             = _mm_add_pd(fjx1,tx);
724             fjy1             = _mm_add_pd(fjy1,ty);
725             fjz1             = _mm_add_pd(fjz1,tz);
726
727             /**************************
728              * CALCULATE INTERACTIONS *
729              **************************/
730
731             /* COULOMB ELECTROSTATICS */
732             velec            = _mm_mul_pd(qq12,rinv12);
733             felec            = _mm_mul_pd(velec,rinvsq12);
734
735             /* Update potential sum for this i atom from the interaction with this j atom. */
736             velec            = _mm_unpacklo_pd(velec,_mm_setzero_pd());
737             velecsum         = _mm_add_pd(velecsum,velec);
738
739             fscal            = felec;
740
741             fscal            = _mm_unpacklo_pd(fscal,_mm_setzero_pd());
742
743             /* Calculate temporary vectorial force */
744             tx               = _mm_mul_pd(fscal,dx12);
745             ty               = _mm_mul_pd(fscal,dy12);
746             tz               = _mm_mul_pd(fscal,dz12);
747
748             /* Update vectorial force */
749             fix1             = _mm_add_pd(fix1,tx);
750             fiy1             = _mm_add_pd(fiy1,ty);
751             fiz1             = _mm_add_pd(fiz1,tz);
752
753             fjx2             = _mm_add_pd(fjx2,tx);
754             fjy2             = _mm_add_pd(fjy2,ty);
755             fjz2             = _mm_add_pd(fjz2,tz);
756
757             /**************************
758              * CALCULATE INTERACTIONS *
759              **************************/
760
761             /* COULOMB ELECTROSTATICS */
762             velec            = _mm_mul_pd(qq20,rinv20);
763             felec            = _mm_mul_pd(velec,rinvsq20);
764
765             /* Update potential sum for this i atom from the interaction with this j atom. */
766             velec            = _mm_unpacklo_pd(velec,_mm_setzero_pd());
767             velecsum         = _mm_add_pd(velecsum,velec);
768
769             fscal            = felec;
770
771             fscal            = _mm_unpacklo_pd(fscal,_mm_setzero_pd());
772
773             /* Calculate temporary vectorial force */
774             tx               = _mm_mul_pd(fscal,dx20);
775             ty               = _mm_mul_pd(fscal,dy20);
776             tz               = _mm_mul_pd(fscal,dz20);
777
778             /* Update vectorial force */
779             fix2             = _mm_add_pd(fix2,tx);
780             fiy2             = _mm_add_pd(fiy2,ty);
781             fiz2             = _mm_add_pd(fiz2,tz);
782
783             fjx0             = _mm_add_pd(fjx0,tx);
784             fjy0             = _mm_add_pd(fjy0,ty);
785             fjz0             = _mm_add_pd(fjz0,tz);
786
787             /**************************
788              * CALCULATE INTERACTIONS *
789              **************************/
790
791             /* COULOMB ELECTROSTATICS */
792             velec            = _mm_mul_pd(qq21,rinv21);
793             felec            = _mm_mul_pd(velec,rinvsq21);
794
795             /* Update potential sum for this i atom from the interaction with this j atom. */
796             velec            = _mm_unpacklo_pd(velec,_mm_setzero_pd());
797             velecsum         = _mm_add_pd(velecsum,velec);
798
799             fscal            = felec;
800
801             fscal            = _mm_unpacklo_pd(fscal,_mm_setzero_pd());
802
803             /* Calculate temporary vectorial force */
804             tx               = _mm_mul_pd(fscal,dx21);
805             ty               = _mm_mul_pd(fscal,dy21);
806             tz               = _mm_mul_pd(fscal,dz21);
807
808             /* Update vectorial force */
809             fix2             = _mm_add_pd(fix2,tx);
810             fiy2             = _mm_add_pd(fiy2,ty);
811             fiz2             = _mm_add_pd(fiz2,tz);
812
813             fjx1             = _mm_add_pd(fjx1,tx);
814             fjy1             = _mm_add_pd(fjy1,ty);
815             fjz1             = _mm_add_pd(fjz1,tz);
816
817             /**************************
818              * CALCULATE INTERACTIONS *
819              **************************/
820
821             /* COULOMB ELECTROSTATICS */
822             velec            = _mm_mul_pd(qq22,rinv22);
823             felec            = _mm_mul_pd(velec,rinvsq22);
824
825             /* Update potential sum for this i atom from the interaction with this j atom. */
826             velec            = _mm_unpacklo_pd(velec,_mm_setzero_pd());
827             velecsum         = _mm_add_pd(velecsum,velec);
828
829             fscal            = felec;
830
831             fscal            = _mm_unpacklo_pd(fscal,_mm_setzero_pd());
832
833             /* Calculate temporary vectorial force */
834             tx               = _mm_mul_pd(fscal,dx22);
835             ty               = _mm_mul_pd(fscal,dy22);
836             tz               = _mm_mul_pd(fscal,dz22);
837
838             /* Update vectorial force */
839             fix2             = _mm_add_pd(fix2,tx);
840             fiy2             = _mm_add_pd(fiy2,ty);
841             fiz2             = _mm_add_pd(fiz2,tz);
842
843             fjx2             = _mm_add_pd(fjx2,tx);
844             fjy2             = _mm_add_pd(fjy2,ty);
845             fjz2             = _mm_add_pd(fjz2,tz);
846
847             gmx_mm_decrement_3rvec_1ptr_swizzle_pd(f+j_coord_offsetA,fjx0,fjy0,fjz0,fjx1,fjy1,fjz1,fjx2,fjy2,fjz2);
848
849             /* Inner loop uses 252 flops */
850         }
851
852         /* End of innermost loop */
853
854         gmx_mm_update_iforce_3atom_swizzle_pd(fix0,fiy0,fiz0,fix1,fiy1,fiz1,fix2,fiy2,fiz2,
855                                               f+i_coord_offset,fshift+i_shift_offset);
856
857         ggid                        = gid[iidx];
858         /* Update potential energies */
859         gmx_mm_update_1pot_pd(velecsum,kernel_data->energygrp_elec+ggid);
860
861         /* Increment number of inner iterations */
862         inneriter                  += j_index_end - j_index_start;
863
864         /* Outer loop uses 19 flops */
865     }
866
867     /* Increment number of outer iterations */
868     outeriter        += nri;
869
870     /* Update outer/inner flops */
871
872     inc_nrnb(nrnb,eNR_NBKERNEL_ELEC_W3W3_VF,outeriter*19 + inneriter*252);
873 }
874 /*
875  * Gromacs nonbonded kernel:   nb_kernel_ElecCoul_VdwNone_GeomW3W3_F_sse4_1_double
876  * Electrostatics interaction: Coulomb
877  * VdW interaction:            None
878  * Geometry:                   Water3-Water3
879  * Calculate force/pot:        Force
880  */
881 void
882 nb_kernel_ElecCoul_VdwNone_GeomW3W3_F_sse4_1_double
883                     (t_nblist * gmx_restrict                nlist,
884                      rvec * gmx_restrict                    xx,
885                      rvec * gmx_restrict                    ff,
886                      t_forcerec * gmx_restrict              fr,
887                      t_mdatoms * gmx_restrict               mdatoms,
888                      nb_kernel_data_t * gmx_restrict        kernel_data,
889                      t_nrnb * gmx_restrict                  nrnb)
890 {
891     /* Suffixes 0,1,2,3 refer to particle indices for waters in the inner or outer loop, or
892      * just 0 for non-waters.
893      * Suffixes A,B refer to j loop unrolling done with SSE double precision, e.g. for the two different
894      * jnr indices corresponding to data put in the four positions in the SIMD register.
895      */
896     int              i_shift_offset,i_coord_offset,outeriter,inneriter;
897     int              j_index_start,j_index_end,jidx,nri,inr,ggid,iidx;
898     int              jnrA,jnrB;
899     int              j_coord_offsetA,j_coord_offsetB;
900     int              *iinr,*jindex,*jjnr,*shiftidx,*gid;
901     real             rcutoff_scalar;
902     real             *shiftvec,*fshift,*x,*f;
903     __m128d          tx,ty,tz,fscal,rcutoff,rcutoff2,jidxall;
904     int              vdwioffset0;
905     __m128d          ix0,iy0,iz0,fix0,fiy0,fiz0,iq0,isai0;
906     int              vdwioffset1;
907     __m128d          ix1,iy1,iz1,fix1,fiy1,fiz1,iq1,isai1;
908     int              vdwioffset2;
909     __m128d          ix2,iy2,iz2,fix2,fiy2,fiz2,iq2,isai2;
910     int              vdwjidx0A,vdwjidx0B;
911     __m128d          jx0,jy0,jz0,fjx0,fjy0,fjz0,jq0,isaj0;
912     int              vdwjidx1A,vdwjidx1B;
913     __m128d          jx1,jy1,jz1,fjx1,fjy1,fjz1,jq1,isaj1;
914     int              vdwjidx2A,vdwjidx2B;
915     __m128d          jx2,jy2,jz2,fjx2,fjy2,fjz2,jq2,isaj2;
916     __m128d          dx00,dy00,dz00,rsq00,rinv00,rinvsq00,r00,qq00,c6_00,c12_00;
917     __m128d          dx01,dy01,dz01,rsq01,rinv01,rinvsq01,r01,qq01,c6_01,c12_01;
918     __m128d          dx02,dy02,dz02,rsq02,rinv02,rinvsq02,r02,qq02,c6_02,c12_02;
919     __m128d          dx10,dy10,dz10,rsq10,rinv10,rinvsq10,r10,qq10,c6_10,c12_10;
920     __m128d          dx11,dy11,dz11,rsq11,rinv11,rinvsq11,r11,qq11,c6_11,c12_11;
921     __m128d          dx12,dy12,dz12,rsq12,rinv12,rinvsq12,r12,qq12,c6_12,c12_12;
922     __m128d          dx20,dy20,dz20,rsq20,rinv20,rinvsq20,r20,qq20,c6_20,c12_20;
923     __m128d          dx21,dy21,dz21,rsq21,rinv21,rinvsq21,r21,qq21,c6_21,c12_21;
924     __m128d          dx22,dy22,dz22,rsq22,rinv22,rinvsq22,r22,qq22,c6_22,c12_22;
925     __m128d          velec,felec,velecsum,facel,crf,krf,krf2;
926     real             *charge;
927     __m128d          dummy_mask,cutoff_mask;
928     __m128d          signbit   = gmx_mm_castsi128_pd( _mm_set_epi32(0x80000000,0x00000000,0x80000000,0x00000000) );
929     __m128d          one     = _mm_set1_pd(1.0);
930     __m128d          two     = _mm_set1_pd(2.0);
931     x                = xx[0];
932     f                = ff[0];
933
934     nri              = nlist->nri;
935     iinr             = nlist->iinr;
936     jindex           = nlist->jindex;
937     jjnr             = nlist->jjnr;
938     shiftidx         = nlist->shift;
939     gid              = nlist->gid;
940     shiftvec         = fr->shift_vec[0];
941     fshift           = fr->fshift[0];
942     facel            = _mm_set1_pd(fr->epsfac);
943     charge           = mdatoms->chargeA;
944
945     /* Setup water-specific parameters */
946     inr              = nlist->iinr[0];
947     iq0              = _mm_mul_pd(facel,_mm_set1_pd(charge[inr+0]));
948     iq1              = _mm_mul_pd(facel,_mm_set1_pd(charge[inr+1]));
949     iq2              = _mm_mul_pd(facel,_mm_set1_pd(charge[inr+2]));
950
951     jq0              = _mm_set1_pd(charge[inr+0]);
952     jq1              = _mm_set1_pd(charge[inr+1]);
953     jq2              = _mm_set1_pd(charge[inr+2]);
954     qq00             = _mm_mul_pd(iq0,jq0);
955     qq01             = _mm_mul_pd(iq0,jq1);
956     qq02             = _mm_mul_pd(iq0,jq2);
957     qq10             = _mm_mul_pd(iq1,jq0);
958     qq11             = _mm_mul_pd(iq1,jq1);
959     qq12             = _mm_mul_pd(iq1,jq2);
960     qq20             = _mm_mul_pd(iq2,jq0);
961     qq21             = _mm_mul_pd(iq2,jq1);
962     qq22             = _mm_mul_pd(iq2,jq2);
963
964     /* Avoid stupid compiler warnings */
965     jnrA = jnrB = 0;
966     j_coord_offsetA = 0;
967     j_coord_offsetB = 0;
968
969     outeriter        = 0;
970     inneriter        = 0;
971
972     /* Start outer loop over neighborlists */
973     for(iidx=0; iidx<nri; iidx++)
974     {
975         /* Load shift vector for this list */
976         i_shift_offset   = DIM*shiftidx[iidx];
977
978         /* Load limits for loop over neighbors */
979         j_index_start    = jindex[iidx];
980         j_index_end      = jindex[iidx+1];
981
982         /* Get outer coordinate index */
983         inr              = iinr[iidx];
984         i_coord_offset   = DIM*inr;
985
986         /* Load i particle coords and add shift vector */
987         gmx_mm_load_shift_and_3rvec_broadcast_pd(shiftvec+i_shift_offset,x+i_coord_offset,
988                                                  &ix0,&iy0,&iz0,&ix1,&iy1,&iz1,&ix2,&iy2,&iz2);
989
990         fix0             = _mm_setzero_pd();
991         fiy0             = _mm_setzero_pd();
992         fiz0             = _mm_setzero_pd();
993         fix1             = _mm_setzero_pd();
994         fiy1             = _mm_setzero_pd();
995         fiz1             = _mm_setzero_pd();
996         fix2             = _mm_setzero_pd();
997         fiy2             = _mm_setzero_pd();
998         fiz2             = _mm_setzero_pd();
999
1000         /* Start inner kernel loop */
1001         for(jidx=j_index_start; jidx<j_index_end-1; jidx+=2)
1002         {
1003
1004             /* Get j neighbor index, and coordinate index */
1005             jnrA             = jjnr[jidx];
1006             jnrB             = jjnr[jidx+1];
1007             j_coord_offsetA  = DIM*jnrA;
1008             j_coord_offsetB  = DIM*jnrB;
1009
1010             /* load j atom coordinates */
1011             gmx_mm_load_3rvec_2ptr_swizzle_pd(x+j_coord_offsetA,x+j_coord_offsetB,
1012                                               &jx0,&jy0,&jz0,&jx1,&jy1,&jz1,&jx2,&jy2,&jz2);
1013
1014             /* Calculate displacement vector */
1015             dx00             = _mm_sub_pd(ix0,jx0);
1016             dy00             = _mm_sub_pd(iy0,jy0);
1017             dz00             = _mm_sub_pd(iz0,jz0);
1018             dx01             = _mm_sub_pd(ix0,jx1);
1019             dy01             = _mm_sub_pd(iy0,jy1);
1020             dz01             = _mm_sub_pd(iz0,jz1);
1021             dx02             = _mm_sub_pd(ix0,jx2);
1022             dy02             = _mm_sub_pd(iy0,jy2);
1023             dz02             = _mm_sub_pd(iz0,jz2);
1024             dx10             = _mm_sub_pd(ix1,jx0);
1025             dy10             = _mm_sub_pd(iy1,jy0);
1026             dz10             = _mm_sub_pd(iz1,jz0);
1027             dx11             = _mm_sub_pd(ix1,jx1);
1028             dy11             = _mm_sub_pd(iy1,jy1);
1029             dz11             = _mm_sub_pd(iz1,jz1);
1030             dx12             = _mm_sub_pd(ix1,jx2);
1031             dy12             = _mm_sub_pd(iy1,jy2);
1032             dz12             = _mm_sub_pd(iz1,jz2);
1033             dx20             = _mm_sub_pd(ix2,jx0);
1034             dy20             = _mm_sub_pd(iy2,jy0);
1035             dz20             = _mm_sub_pd(iz2,jz0);
1036             dx21             = _mm_sub_pd(ix2,jx1);
1037             dy21             = _mm_sub_pd(iy2,jy1);
1038             dz21             = _mm_sub_pd(iz2,jz1);
1039             dx22             = _mm_sub_pd(ix2,jx2);
1040             dy22             = _mm_sub_pd(iy2,jy2);
1041             dz22             = _mm_sub_pd(iz2,jz2);
1042
1043             /* Calculate squared distance and things based on it */
1044             rsq00            = gmx_mm_calc_rsq_pd(dx00,dy00,dz00);
1045             rsq01            = gmx_mm_calc_rsq_pd(dx01,dy01,dz01);
1046             rsq02            = gmx_mm_calc_rsq_pd(dx02,dy02,dz02);
1047             rsq10            = gmx_mm_calc_rsq_pd(dx10,dy10,dz10);
1048             rsq11            = gmx_mm_calc_rsq_pd(dx11,dy11,dz11);
1049             rsq12            = gmx_mm_calc_rsq_pd(dx12,dy12,dz12);
1050             rsq20            = gmx_mm_calc_rsq_pd(dx20,dy20,dz20);
1051             rsq21            = gmx_mm_calc_rsq_pd(dx21,dy21,dz21);
1052             rsq22            = gmx_mm_calc_rsq_pd(dx22,dy22,dz22);
1053
1054             rinv00           = gmx_mm_invsqrt_pd(rsq00);
1055             rinv01           = gmx_mm_invsqrt_pd(rsq01);
1056             rinv02           = gmx_mm_invsqrt_pd(rsq02);
1057             rinv10           = gmx_mm_invsqrt_pd(rsq10);
1058             rinv11           = gmx_mm_invsqrt_pd(rsq11);
1059             rinv12           = gmx_mm_invsqrt_pd(rsq12);
1060             rinv20           = gmx_mm_invsqrt_pd(rsq20);
1061             rinv21           = gmx_mm_invsqrt_pd(rsq21);
1062             rinv22           = gmx_mm_invsqrt_pd(rsq22);
1063
1064             rinvsq00         = _mm_mul_pd(rinv00,rinv00);
1065             rinvsq01         = _mm_mul_pd(rinv01,rinv01);
1066             rinvsq02         = _mm_mul_pd(rinv02,rinv02);
1067             rinvsq10         = _mm_mul_pd(rinv10,rinv10);
1068             rinvsq11         = _mm_mul_pd(rinv11,rinv11);
1069             rinvsq12         = _mm_mul_pd(rinv12,rinv12);
1070             rinvsq20         = _mm_mul_pd(rinv20,rinv20);
1071             rinvsq21         = _mm_mul_pd(rinv21,rinv21);
1072             rinvsq22         = _mm_mul_pd(rinv22,rinv22);
1073
1074             fjx0             = _mm_setzero_pd();
1075             fjy0             = _mm_setzero_pd();
1076             fjz0             = _mm_setzero_pd();
1077             fjx1             = _mm_setzero_pd();
1078             fjy1             = _mm_setzero_pd();
1079             fjz1             = _mm_setzero_pd();
1080             fjx2             = _mm_setzero_pd();
1081             fjy2             = _mm_setzero_pd();
1082             fjz2             = _mm_setzero_pd();
1083
1084             /**************************
1085              * CALCULATE INTERACTIONS *
1086              **************************/
1087
1088             /* COULOMB ELECTROSTATICS */
1089             velec            = _mm_mul_pd(qq00,rinv00);
1090             felec            = _mm_mul_pd(velec,rinvsq00);
1091
1092             fscal            = felec;
1093
1094             /* Calculate temporary vectorial force */
1095             tx               = _mm_mul_pd(fscal,dx00);
1096             ty               = _mm_mul_pd(fscal,dy00);
1097             tz               = _mm_mul_pd(fscal,dz00);
1098
1099             /* Update vectorial force */
1100             fix0             = _mm_add_pd(fix0,tx);
1101             fiy0             = _mm_add_pd(fiy0,ty);
1102             fiz0             = _mm_add_pd(fiz0,tz);
1103
1104             fjx0             = _mm_add_pd(fjx0,tx);
1105             fjy0             = _mm_add_pd(fjy0,ty);
1106             fjz0             = _mm_add_pd(fjz0,tz);
1107
1108             /**************************
1109              * CALCULATE INTERACTIONS *
1110              **************************/
1111
1112             /* COULOMB ELECTROSTATICS */
1113             velec            = _mm_mul_pd(qq01,rinv01);
1114             felec            = _mm_mul_pd(velec,rinvsq01);
1115
1116             fscal            = felec;
1117
1118             /* Calculate temporary vectorial force */
1119             tx               = _mm_mul_pd(fscal,dx01);
1120             ty               = _mm_mul_pd(fscal,dy01);
1121             tz               = _mm_mul_pd(fscal,dz01);
1122
1123             /* Update vectorial force */
1124             fix0             = _mm_add_pd(fix0,tx);
1125             fiy0             = _mm_add_pd(fiy0,ty);
1126             fiz0             = _mm_add_pd(fiz0,tz);
1127
1128             fjx1             = _mm_add_pd(fjx1,tx);
1129             fjy1             = _mm_add_pd(fjy1,ty);
1130             fjz1             = _mm_add_pd(fjz1,tz);
1131
1132             /**************************
1133              * CALCULATE INTERACTIONS *
1134              **************************/
1135
1136             /* COULOMB ELECTROSTATICS */
1137             velec            = _mm_mul_pd(qq02,rinv02);
1138             felec            = _mm_mul_pd(velec,rinvsq02);
1139
1140             fscal            = felec;
1141
1142             /* Calculate temporary vectorial force */
1143             tx               = _mm_mul_pd(fscal,dx02);
1144             ty               = _mm_mul_pd(fscal,dy02);
1145             tz               = _mm_mul_pd(fscal,dz02);
1146
1147             /* Update vectorial force */
1148             fix0             = _mm_add_pd(fix0,tx);
1149             fiy0             = _mm_add_pd(fiy0,ty);
1150             fiz0             = _mm_add_pd(fiz0,tz);
1151
1152             fjx2             = _mm_add_pd(fjx2,tx);
1153             fjy2             = _mm_add_pd(fjy2,ty);
1154             fjz2             = _mm_add_pd(fjz2,tz);
1155
1156             /**************************
1157              * CALCULATE INTERACTIONS *
1158              **************************/
1159
1160             /* COULOMB ELECTROSTATICS */
1161             velec            = _mm_mul_pd(qq10,rinv10);
1162             felec            = _mm_mul_pd(velec,rinvsq10);
1163
1164             fscal            = felec;
1165
1166             /* Calculate temporary vectorial force */
1167             tx               = _mm_mul_pd(fscal,dx10);
1168             ty               = _mm_mul_pd(fscal,dy10);
1169             tz               = _mm_mul_pd(fscal,dz10);
1170
1171             /* Update vectorial force */
1172             fix1             = _mm_add_pd(fix1,tx);
1173             fiy1             = _mm_add_pd(fiy1,ty);
1174             fiz1             = _mm_add_pd(fiz1,tz);
1175
1176             fjx0             = _mm_add_pd(fjx0,tx);
1177             fjy0             = _mm_add_pd(fjy0,ty);
1178             fjz0             = _mm_add_pd(fjz0,tz);
1179
1180             /**************************
1181              * CALCULATE INTERACTIONS *
1182              **************************/
1183
1184             /* COULOMB ELECTROSTATICS */
1185             velec            = _mm_mul_pd(qq11,rinv11);
1186             felec            = _mm_mul_pd(velec,rinvsq11);
1187
1188             fscal            = felec;
1189
1190             /* Calculate temporary vectorial force */
1191             tx               = _mm_mul_pd(fscal,dx11);
1192             ty               = _mm_mul_pd(fscal,dy11);
1193             tz               = _mm_mul_pd(fscal,dz11);
1194
1195             /* Update vectorial force */
1196             fix1             = _mm_add_pd(fix1,tx);
1197             fiy1             = _mm_add_pd(fiy1,ty);
1198             fiz1             = _mm_add_pd(fiz1,tz);
1199
1200             fjx1             = _mm_add_pd(fjx1,tx);
1201             fjy1             = _mm_add_pd(fjy1,ty);
1202             fjz1             = _mm_add_pd(fjz1,tz);
1203
1204             /**************************
1205              * CALCULATE INTERACTIONS *
1206              **************************/
1207
1208             /* COULOMB ELECTROSTATICS */
1209             velec            = _mm_mul_pd(qq12,rinv12);
1210             felec            = _mm_mul_pd(velec,rinvsq12);
1211
1212             fscal            = felec;
1213
1214             /* Calculate temporary vectorial force */
1215             tx               = _mm_mul_pd(fscal,dx12);
1216             ty               = _mm_mul_pd(fscal,dy12);
1217             tz               = _mm_mul_pd(fscal,dz12);
1218
1219             /* Update vectorial force */
1220             fix1             = _mm_add_pd(fix1,tx);
1221             fiy1             = _mm_add_pd(fiy1,ty);
1222             fiz1             = _mm_add_pd(fiz1,tz);
1223
1224             fjx2             = _mm_add_pd(fjx2,tx);
1225             fjy2             = _mm_add_pd(fjy2,ty);
1226             fjz2             = _mm_add_pd(fjz2,tz);
1227
1228             /**************************
1229              * CALCULATE INTERACTIONS *
1230              **************************/
1231
1232             /* COULOMB ELECTROSTATICS */
1233             velec            = _mm_mul_pd(qq20,rinv20);
1234             felec            = _mm_mul_pd(velec,rinvsq20);
1235
1236             fscal            = felec;
1237
1238             /* Calculate temporary vectorial force */
1239             tx               = _mm_mul_pd(fscal,dx20);
1240             ty               = _mm_mul_pd(fscal,dy20);
1241             tz               = _mm_mul_pd(fscal,dz20);
1242
1243             /* Update vectorial force */
1244             fix2             = _mm_add_pd(fix2,tx);
1245             fiy2             = _mm_add_pd(fiy2,ty);
1246             fiz2             = _mm_add_pd(fiz2,tz);
1247
1248             fjx0             = _mm_add_pd(fjx0,tx);
1249             fjy0             = _mm_add_pd(fjy0,ty);
1250             fjz0             = _mm_add_pd(fjz0,tz);
1251
1252             /**************************
1253              * CALCULATE INTERACTIONS *
1254              **************************/
1255
1256             /* COULOMB ELECTROSTATICS */
1257             velec            = _mm_mul_pd(qq21,rinv21);
1258             felec            = _mm_mul_pd(velec,rinvsq21);
1259
1260             fscal            = felec;
1261
1262             /* Calculate temporary vectorial force */
1263             tx               = _mm_mul_pd(fscal,dx21);
1264             ty               = _mm_mul_pd(fscal,dy21);
1265             tz               = _mm_mul_pd(fscal,dz21);
1266
1267             /* Update vectorial force */
1268             fix2             = _mm_add_pd(fix2,tx);
1269             fiy2             = _mm_add_pd(fiy2,ty);
1270             fiz2             = _mm_add_pd(fiz2,tz);
1271
1272             fjx1             = _mm_add_pd(fjx1,tx);
1273             fjy1             = _mm_add_pd(fjy1,ty);
1274             fjz1             = _mm_add_pd(fjz1,tz);
1275
1276             /**************************
1277              * CALCULATE INTERACTIONS *
1278              **************************/
1279
1280             /* COULOMB ELECTROSTATICS */
1281             velec            = _mm_mul_pd(qq22,rinv22);
1282             felec            = _mm_mul_pd(velec,rinvsq22);
1283
1284             fscal            = felec;
1285
1286             /* Calculate temporary vectorial force */
1287             tx               = _mm_mul_pd(fscal,dx22);
1288             ty               = _mm_mul_pd(fscal,dy22);
1289             tz               = _mm_mul_pd(fscal,dz22);
1290
1291             /* Update vectorial force */
1292             fix2             = _mm_add_pd(fix2,tx);
1293             fiy2             = _mm_add_pd(fiy2,ty);
1294             fiz2             = _mm_add_pd(fiz2,tz);
1295
1296             fjx2             = _mm_add_pd(fjx2,tx);
1297             fjy2             = _mm_add_pd(fjy2,ty);
1298             fjz2             = _mm_add_pd(fjz2,tz);
1299
1300             gmx_mm_decrement_3rvec_2ptr_swizzle_pd(f+j_coord_offsetA,f+j_coord_offsetB,fjx0,fjy0,fjz0,fjx1,fjy1,fjz1,fjx2,fjy2,fjz2);
1301
1302             /* Inner loop uses 243 flops */
1303         }
1304
1305         if(jidx<j_index_end)
1306         {
1307
1308             jnrA             = jjnr[jidx];
1309             j_coord_offsetA  = DIM*jnrA;
1310
1311             /* load j atom coordinates */
1312             gmx_mm_load_3rvec_1ptr_swizzle_pd(x+j_coord_offsetA,
1313                                               &jx0,&jy0,&jz0,&jx1,&jy1,&jz1,&jx2,&jy2,&jz2);
1314
1315             /* Calculate displacement vector */
1316             dx00             = _mm_sub_pd(ix0,jx0);
1317             dy00             = _mm_sub_pd(iy0,jy0);
1318             dz00             = _mm_sub_pd(iz0,jz0);
1319             dx01             = _mm_sub_pd(ix0,jx1);
1320             dy01             = _mm_sub_pd(iy0,jy1);
1321             dz01             = _mm_sub_pd(iz0,jz1);
1322             dx02             = _mm_sub_pd(ix0,jx2);
1323             dy02             = _mm_sub_pd(iy0,jy2);
1324             dz02             = _mm_sub_pd(iz0,jz2);
1325             dx10             = _mm_sub_pd(ix1,jx0);
1326             dy10             = _mm_sub_pd(iy1,jy0);
1327             dz10             = _mm_sub_pd(iz1,jz0);
1328             dx11             = _mm_sub_pd(ix1,jx1);
1329             dy11             = _mm_sub_pd(iy1,jy1);
1330             dz11             = _mm_sub_pd(iz1,jz1);
1331             dx12             = _mm_sub_pd(ix1,jx2);
1332             dy12             = _mm_sub_pd(iy1,jy2);
1333             dz12             = _mm_sub_pd(iz1,jz2);
1334             dx20             = _mm_sub_pd(ix2,jx0);
1335             dy20             = _mm_sub_pd(iy2,jy0);
1336             dz20             = _mm_sub_pd(iz2,jz0);
1337             dx21             = _mm_sub_pd(ix2,jx1);
1338             dy21             = _mm_sub_pd(iy2,jy1);
1339             dz21             = _mm_sub_pd(iz2,jz1);
1340             dx22             = _mm_sub_pd(ix2,jx2);
1341             dy22             = _mm_sub_pd(iy2,jy2);
1342             dz22             = _mm_sub_pd(iz2,jz2);
1343
1344             /* Calculate squared distance and things based on it */
1345             rsq00            = gmx_mm_calc_rsq_pd(dx00,dy00,dz00);
1346             rsq01            = gmx_mm_calc_rsq_pd(dx01,dy01,dz01);
1347             rsq02            = gmx_mm_calc_rsq_pd(dx02,dy02,dz02);
1348             rsq10            = gmx_mm_calc_rsq_pd(dx10,dy10,dz10);
1349             rsq11            = gmx_mm_calc_rsq_pd(dx11,dy11,dz11);
1350             rsq12            = gmx_mm_calc_rsq_pd(dx12,dy12,dz12);
1351             rsq20            = gmx_mm_calc_rsq_pd(dx20,dy20,dz20);
1352             rsq21            = gmx_mm_calc_rsq_pd(dx21,dy21,dz21);
1353             rsq22            = gmx_mm_calc_rsq_pd(dx22,dy22,dz22);
1354
1355             rinv00           = gmx_mm_invsqrt_pd(rsq00);
1356             rinv01           = gmx_mm_invsqrt_pd(rsq01);
1357             rinv02           = gmx_mm_invsqrt_pd(rsq02);
1358             rinv10           = gmx_mm_invsqrt_pd(rsq10);
1359             rinv11           = gmx_mm_invsqrt_pd(rsq11);
1360             rinv12           = gmx_mm_invsqrt_pd(rsq12);
1361             rinv20           = gmx_mm_invsqrt_pd(rsq20);
1362             rinv21           = gmx_mm_invsqrt_pd(rsq21);
1363             rinv22           = gmx_mm_invsqrt_pd(rsq22);
1364
1365             rinvsq00         = _mm_mul_pd(rinv00,rinv00);
1366             rinvsq01         = _mm_mul_pd(rinv01,rinv01);
1367             rinvsq02         = _mm_mul_pd(rinv02,rinv02);
1368             rinvsq10         = _mm_mul_pd(rinv10,rinv10);
1369             rinvsq11         = _mm_mul_pd(rinv11,rinv11);
1370             rinvsq12         = _mm_mul_pd(rinv12,rinv12);
1371             rinvsq20         = _mm_mul_pd(rinv20,rinv20);
1372             rinvsq21         = _mm_mul_pd(rinv21,rinv21);
1373             rinvsq22         = _mm_mul_pd(rinv22,rinv22);
1374
1375             fjx0             = _mm_setzero_pd();
1376             fjy0             = _mm_setzero_pd();
1377             fjz0             = _mm_setzero_pd();
1378             fjx1             = _mm_setzero_pd();
1379             fjy1             = _mm_setzero_pd();
1380             fjz1             = _mm_setzero_pd();
1381             fjx2             = _mm_setzero_pd();
1382             fjy2             = _mm_setzero_pd();
1383             fjz2             = _mm_setzero_pd();
1384
1385             /**************************
1386              * CALCULATE INTERACTIONS *
1387              **************************/
1388
1389             /* COULOMB ELECTROSTATICS */
1390             velec            = _mm_mul_pd(qq00,rinv00);
1391             felec            = _mm_mul_pd(velec,rinvsq00);
1392
1393             fscal            = felec;
1394
1395             fscal            = _mm_unpacklo_pd(fscal,_mm_setzero_pd());
1396
1397             /* Calculate temporary vectorial force */
1398             tx               = _mm_mul_pd(fscal,dx00);
1399             ty               = _mm_mul_pd(fscal,dy00);
1400             tz               = _mm_mul_pd(fscal,dz00);
1401
1402             /* Update vectorial force */
1403             fix0             = _mm_add_pd(fix0,tx);
1404             fiy0             = _mm_add_pd(fiy0,ty);
1405             fiz0             = _mm_add_pd(fiz0,tz);
1406
1407             fjx0             = _mm_add_pd(fjx0,tx);
1408             fjy0             = _mm_add_pd(fjy0,ty);
1409             fjz0             = _mm_add_pd(fjz0,tz);
1410
1411             /**************************
1412              * CALCULATE INTERACTIONS *
1413              **************************/
1414
1415             /* COULOMB ELECTROSTATICS */
1416             velec            = _mm_mul_pd(qq01,rinv01);
1417             felec            = _mm_mul_pd(velec,rinvsq01);
1418
1419             fscal            = felec;
1420
1421             fscal            = _mm_unpacklo_pd(fscal,_mm_setzero_pd());
1422
1423             /* Calculate temporary vectorial force */
1424             tx               = _mm_mul_pd(fscal,dx01);
1425             ty               = _mm_mul_pd(fscal,dy01);
1426             tz               = _mm_mul_pd(fscal,dz01);
1427
1428             /* Update vectorial force */
1429             fix0             = _mm_add_pd(fix0,tx);
1430             fiy0             = _mm_add_pd(fiy0,ty);
1431             fiz0             = _mm_add_pd(fiz0,tz);
1432
1433             fjx1             = _mm_add_pd(fjx1,tx);
1434             fjy1             = _mm_add_pd(fjy1,ty);
1435             fjz1             = _mm_add_pd(fjz1,tz);
1436
1437             /**************************
1438              * CALCULATE INTERACTIONS *
1439              **************************/
1440
1441             /* COULOMB ELECTROSTATICS */
1442             velec            = _mm_mul_pd(qq02,rinv02);
1443             felec            = _mm_mul_pd(velec,rinvsq02);
1444
1445             fscal            = felec;
1446
1447             fscal            = _mm_unpacklo_pd(fscal,_mm_setzero_pd());
1448
1449             /* Calculate temporary vectorial force */
1450             tx               = _mm_mul_pd(fscal,dx02);
1451             ty               = _mm_mul_pd(fscal,dy02);
1452             tz               = _mm_mul_pd(fscal,dz02);
1453
1454             /* Update vectorial force */
1455             fix0             = _mm_add_pd(fix0,tx);
1456             fiy0             = _mm_add_pd(fiy0,ty);
1457             fiz0             = _mm_add_pd(fiz0,tz);
1458
1459             fjx2             = _mm_add_pd(fjx2,tx);
1460             fjy2             = _mm_add_pd(fjy2,ty);
1461             fjz2             = _mm_add_pd(fjz2,tz);
1462
1463             /**************************
1464              * CALCULATE INTERACTIONS *
1465              **************************/
1466
1467             /* COULOMB ELECTROSTATICS */
1468             velec            = _mm_mul_pd(qq10,rinv10);
1469             felec            = _mm_mul_pd(velec,rinvsq10);
1470
1471             fscal            = felec;
1472
1473             fscal            = _mm_unpacklo_pd(fscal,_mm_setzero_pd());
1474
1475             /* Calculate temporary vectorial force */
1476             tx               = _mm_mul_pd(fscal,dx10);
1477             ty               = _mm_mul_pd(fscal,dy10);
1478             tz               = _mm_mul_pd(fscal,dz10);
1479
1480             /* Update vectorial force */
1481             fix1             = _mm_add_pd(fix1,tx);
1482             fiy1             = _mm_add_pd(fiy1,ty);
1483             fiz1             = _mm_add_pd(fiz1,tz);
1484
1485             fjx0             = _mm_add_pd(fjx0,tx);
1486             fjy0             = _mm_add_pd(fjy0,ty);
1487             fjz0             = _mm_add_pd(fjz0,tz);
1488
1489             /**************************
1490              * CALCULATE INTERACTIONS *
1491              **************************/
1492
1493             /* COULOMB ELECTROSTATICS */
1494             velec            = _mm_mul_pd(qq11,rinv11);
1495             felec            = _mm_mul_pd(velec,rinvsq11);
1496
1497             fscal            = felec;
1498
1499             fscal            = _mm_unpacklo_pd(fscal,_mm_setzero_pd());
1500
1501             /* Calculate temporary vectorial force */
1502             tx               = _mm_mul_pd(fscal,dx11);
1503             ty               = _mm_mul_pd(fscal,dy11);
1504             tz               = _mm_mul_pd(fscal,dz11);
1505
1506             /* Update vectorial force */
1507             fix1             = _mm_add_pd(fix1,tx);
1508             fiy1             = _mm_add_pd(fiy1,ty);
1509             fiz1             = _mm_add_pd(fiz1,tz);
1510
1511             fjx1             = _mm_add_pd(fjx1,tx);
1512             fjy1             = _mm_add_pd(fjy1,ty);
1513             fjz1             = _mm_add_pd(fjz1,tz);
1514
1515             /**************************
1516              * CALCULATE INTERACTIONS *
1517              **************************/
1518
1519             /* COULOMB ELECTROSTATICS */
1520             velec            = _mm_mul_pd(qq12,rinv12);
1521             felec            = _mm_mul_pd(velec,rinvsq12);
1522
1523             fscal            = felec;
1524
1525             fscal            = _mm_unpacklo_pd(fscal,_mm_setzero_pd());
1526
1527             /* Calculate temporary vectorial force */
1528             tx               = _mm_mul_pd(fscal,dx12);
1529             ty               = _mm_mul_pd(fscal,dy12);
1530             tz               = _mm_mul_pd(fscal,dz12);
1531
1532             /* Update vectorial force */
1533             fix1             = _mm_add_pd(fix1,tx);
1534             fiy1             = _mm_add_pd(fiy1,ty);
1535             fiz1             = _mm_add_pd(fiz1,tz);
1536
1537             fjx2             = _mm_add_pd(fjx2,tx);
1538             fjy2             = _mm_add_pd(fjy2,ty);
1539             fjz2             = _mm_add_pd(fjz2,tz);
1540
1541             /**************************
1542              * CALCULATE INTERACTIONS *
1543              **************************/
1544
1545             /* COULOMB ELECTROSTATICS */
1546             velec            = _mm_mul_pd(qq20,rinv20);
1547             felec            = _mm_mul_pd(velec,rinvsq20);
1548
1549             fscal            = felec;
1550
1551             fscal            = _mm_unpacklo_pd(fscal,_mm_setzero_pd());
1552
1553             /* Calculate temporary vectorial force */
1554             tx               = _mm_mul_pd(fscal,dx20);
1555             ty               = _mm_mul_pd(fscal,dy20);
1556             tz               = _mm_mul_pd(fscal,dz20);
1557
1558             /* Update vectorial force */
1559             fix2             = _mm_add_pd(fix2,tx);
1560             fiy2             = _mm_add_pd(fiy2,ty);
1561             fiz2             = _mm_add_pd(fiz2,tz);
1562
1563             fjx0             = _mm_add_pd(fjx0,tx);
1564             fjy0             = _mm_add_pd(fjy0,ty);
1565             fjz0             = _mm_add_pd(fjz0,tz);
1566
1567             /**************************
1568              * CALCULATE INTERACTIONS *
1569              **************************/
1570
1571             /* COULOMB ELECTROSTATICS */
1572             velec            = _mm_mul_pd(qq21,rinv21);
1573             felec            = _mm_mul_pd(velec,rinvsq21);
1574
1575             fscal            = felec;
1576
1577             fscal            = _mm_unpacklo_pd(fscal,_mm_setzero_pd());
1578
1579             /* Calculate temporary vectorial force */
1580             tx               = _mm_mul_pd(fscal,dx21);
1581             ty               = _mm_mul_pd(fscal,dy21);
1582             tz               = _mm_mul_pd(fscal,dz21);
1583
1584             /* Update vectorial force */
1585             fix2             = _mm_add_pd(fix2,tx);
1586             fiy2             = _mm_add_pd(fiy2,ty);
1587             fiz2             = _mm_add_pd(fiz2,tz);
1588
1589             fjx1             = _mm_add_pd(fjx1,tx);
1590             fjy1             = _mm_add_pd(fjy1,ty);
1591             fjz1             = _mm_add_pd(fjz1,tz);
1592
1593             /**************************
1594              * CALCULATE INTERACTIONS *
1595              **************************/
1596
1597             /* COULOMB ELECTROSTATICS */
1598             velec            = _mm_mul_pd(qq22,rinv22);
1599             felec            = _mm_mul_pd(velec,rinvsq22);
1600
1601             fscal            = felec;
1602
1603             fscal            = _mm_unpacklo_pd(fscal,_mm_setzero_pd());
1604
1605             /* Calculate temporary vectorial force */
1606             tx               = _mm_mul_pd(fscal,dx22);
1607             ty               = _mm_mul_pd(fscal,dy22);
1608             tz               = _mm_mul_pd(fscal,dz22);
1609
1610             /* Update vectorial force */
1611             fix2             = _mm_add_pd(fix2,tx);
1612             fiy2             = _mm_add_pd(fiy2,ty);
1613             fiz2             = _mm_add_pd(fiz2,tz);
1614
1615             fjx2             = _mm_add_pd(fjx2,tx);
1616             fjy2             = _mm_add_pd(fjy2,ty);
1617             fjz2             = _mm_add_pd(fjz2,tz);
1618
1619             gmx_mm_decrement_3rvec_1ptr_swizzle_pd(f+j_coord_offsetA,fjx0,fjy0,fjz0,fjx1,fjy1,fjz1,fjx2,fjy2,fjz2);
1620
1621             /* Inner loop uses 243 flops */
1622         }
1623
1624         /* End of innermost loop */
1625
1626         gmx_mm_update_iforce_3atom_swizzle_pd(fix0,fiy0,fiz0,fix1,fiy1,fiz1,fix2,fiy2,fiz2,
1627                                               f+i_coord_offset,fshift+i_shift_offset);
1628
1629         /* Increment number of inner iterations */
1630         inneriter                  += j_index_end - j_index_start;
1631
1632         /* Outer loop uses 18 flops */
1633     }
1634
1635     /* Increment number of outer iterations */
1636     outeriter        += nri;
1637
1638     /* Update outer/inner flops */
1639
1640     inc_nrnb(nrnb,eNR_NBKERNEL_ELEC_W3W3_F,outeriter*18 + inneriter*243);
1641 }