18 #ifdef USE_PARAMETERS_FACTORY
24 #if defined USE_GROUP_SU3
25 #include "fopr_Wilson_impl_SU3.inc"
26 #elif defined USE_GROUP_SU2
27 #include "fopr_Wilson_impl_SU2.inc"
28 #elif defined USE_GROUP_SU_N
29 #include "fopr_Wilson_impl_SU_N.inc"
45 #ifdef USE_PARAMETERS_FACTORY
60 const string str_vlevel = params.
get_string(
"verbose_level");
74 vout.
crucial(
m_vl,
"Fopr_CloverTerm: fetch error, input parameter not found.\n");
91 for (
int mu = 0; mu <
m_Ndim; ++mu) {
97 assert(bc.size() ==
m_Ndim);
104 for (
int mu = 0; mu <
m_Ndim; ++mu) {
162 }
else if (
m_repr ==
"Chiral") {
183 (this->*
m_gm5)(v, f);
193 const double *v1 = f.
ptr(0);
194 double *v2 = w.
ptr(0);
205 int is =
m_Nvol * i_thread / Nthread;
206 int ns =
m_Nvol * (i_thread + 1) / Nthread - is;
208 for (
int site = is; site < is + ns; ++site) {
210 for (
int icc = 0; icc < Nvc; icc++) {
211 int in = Nvc * Nd * site;
212 v2[icc + id1 + in] = v1[icc + id3 + in];
213 v2[icc + id2 + in] = v1[icc + id4 + in];
214 v2[icc + id3 + in] = v1[icc + id1 + in];
215 v2[icc + id4 + in] = v1[icc + id2 + in];
227 const double *v1 = f.
ptr(0);
228 double *v2 = w.
ptr(0);
239 int is =
m_Nvol * i_thread / Nthread;
240 int ns =
m_Nvol * (i_thread + 1) / Nthread - is;
242 for (
int site = is; site < is + ns; ++site) {
244 for (
int icc = 0; icc < Nvc; icc++) {
245 int in = Nvc * Nd * site;
246 v2[icc + id1 + in] = v1[icc + id1 + in];
247 v2[icc + id2 + in] = v1[icc + id2 + in];
248 v2[icc + id3 + in] = -v1[icc + id3 + in];
249 v2[icc + id4 + in] = -v1[icc + id4 + in];
257 const int mu,
const int nu)
274 (this->*
m_csw)(v, w);
281 assert(w.
nex() == 1);
285 int Ndf = 2 * Nc * Nc;
296 const double *w2 = w.
ptr(0);
297 double *v2 = v.
ptr(0);
310 int is =
m_Nvol * i_thread / Nthread;
311 int ns =
m_Nvol * (i_thread + 1) / Nthread - is;
313 for (
int site = is; site < is + ns; ++site) {
314 int iv = Nvc * Nd * site;
317 for (
int ic = 0; ic < Nc; ++ic) {
320 int icg = ic * Nvc + ig;
322 v2[icr + id1 + iv] = 0.0;
323 v2[ici + id1 + iv] = 0.0;
324 v2[icr + id2 + iv] = 0.0;
325 v2[ici + id2 + iv] = 0.0;
327 v2[icr + id3 + iv] = 0.0;
328 v2[ici + id3 + iv] = 0.0;
329 v2[icr + id4 + iv] = 0.0;
330 v2[ici + id4 + iv] = 0.0;
333 v2[icr + id1 + iv] -= mult_uv_i(&Bx[icg], &w2[id2 + iv], Nc);
334 v2[ici + id1 + iv] += mult_uv_r(&Bx[icg], &w2[id2 + iv], Nc);
335 v2[icr + id2 + iv] -= mult_uv_i(&Bx[icg], &w2[id1 + iv], Nc);
336 v2[ici + id2 + iv] += mult_uv_r(&Bx[icg], &w2[id1 + iv], Nc);
338 v2[icr + id3 + iv] -= mult_uv_i(&Bx[icg], &w2[id4 + iv], Nc);
339 v2[ici + id3 + iv] += mult_uv_r(&Bx[icg], &w2[id4 + iv], Nc);
340 v2[icr + id4 + iv] -= mult_uv_i(&Bx[icg], &w2[id3 + iv], Nc);
341 v2[ici + id4 + iv] += mult_uv_r(&Bx[icg], &w2[id3 + iv], Nc);
344 v2[icr + id1 + iv] += mult_uv_r(&By[icg], &w2[id2 + iv], Nc);
345 v2[ici + id1 + iv] += mult_uv_i(&By[icg], &w2[id2 + iv], Nc);
346 v2[icr + id2 + iv] -= mult_uv_r(&By[icg], &w2[id1 + iv], Nc);
347 v2[ici + id2 + iv] -= mult_uv_i(&By[icg], &w2[id1 + iv], Nc);
349 v2[icr + id3 + iv] += mult_uv_r(&By[icg], &w2[id4 + iv], Nc);
350 v2[ici + id3 + iv] += mult_uv_i(&By[icg], &w2[id4 + iv], Nc);
351 v2[icr + id4 + iv] -= mult_uv_r(&By[icg], &w2[id3 + iv], Nc);
352 v2[ici + id4 + iv] -= mult_uv_i(&By[icg], &w2[id3 + iv], Nc);
355 v2[icr + id1 + iv] -= mult_uv_i(&Bz[icg], &w2[id1 + iv], Nc);
356 v2[ici + id1 + iv] += mult_uv_r(&Bz[icg], &w2[id1 + iv], Nc);
357 v2[icr + id2 + iv] += mult_uv_i(&Bz[icg], &w2[id2 + iv], Nc);
358 v2[ici + id2 + iv] -= mult_uv_r(&Bz[icg], &w2[id2 + iv], Nc);
360 v2[icr + id3 + iv] -= mult_uv_i(&Bz[icg], &w2[id3 + iv], Nc);
361 v2[ici + id3 + iv] += mult_uv_r(&Bz[icg], &w2[id3 + iv], Nc);
362 v2[icr + id4 + iv] += mult_uv_i(&Bz[icg], &w2[id4 + iv], Nc);
363 v2[ici + id4 + iv] -= mult_uv_r(&Bz[icg], &w2[id4 + iv], Nc);
366 v2[icr + id1 + iv] += mult_uv_i(&Ex[icg], &w2[id2 + iv], Nc);
367 v2[ici + id1 + iv] -= mult_uv_r(&Ex[icg], &w2[id2 + iv], Nc);
368 v2[icr + id2 + iv] += mult_uv_i(&Ex[icg], &w2[id1 + iv], Nc);
369 v2[ici + id2 + iv] -= mult_uv_r(&Ex[icg], &w2[id1 + iv], Nc);
371 v2[icr + id3 + iv] -= mult_uv_i(&Ex[icg], &w2[id4 + iv], Nc);
372 v2[ici + id3 + iv] += mult_uv_r(&Ex[icg], &w2[id4 + iv], Nc);
373 v2[icr + id4 + iv] -= mult_uv_i(&Ex[icg], &w2[id3 + iv], Nc);
374 v2[ici + id4 + iv] += mult_uv_r(&Ex[icg], &w2[id3 + iv], Nc);
377 v2[icr + id1 + iv] -= mult_uv_r(&Ey[icg], &w2[id2 + iv], Nc);
378 v2[ici + id1 + iv] -= mult_uv_i(&Ey[icg], &w2[id2 + iv], Nc);
379 v2[icr + id2 + iv] += mult_uv_r(&Ey[icg], &w2[id1 + iv], Nc);
380 v2[ici + id2 + iv] += mult_uv_i(&Ey[icg], &w2[id1 + iv], Nc);
382 v2[icr + id3 + iv] += mult_uv_r(&Ey[icg], &w2[id4 + iv], Nc);
383 v2[ici + id3 + iv] += mult_uv_i(&Ey[icg], &w2[id4 + iv], Nc);
384 v2[icr + id4 + iv] -= mult_uv_r(&Ey[icg], &w2[id3 + iv], Nc);
385 v2[ici + id4 + iv] -= mult_uv_i(&Ey[icg], &w2[id3 + iv], Nc);
388 v2[icr + id1 + iv] += mult_uv_i(&Ez[icg], &w2[id1 + iv], Nc);
389 v2[ici + id1 + iv] -= mult_uv_r(&Ez[icg], &w2[id1 + iv], Nc);
390 v2[icr + id2 + iv] -= mult_uv_i(&Ez[icg], &w2[id2 + iv], Nc);
391 v2[ici + id2 + iv] += mult_uv_r(&Ez[icg], &w2[id2 + iv], Nc);
393 v2[icr + id3 + iv] -= mult_uv_i(&Ez[icg], &w2[id3 + iv], Nc);
394 v2[ici + id3 + iv] += mult_uv_r(&Ez[icg], &w2[id3 + iv], Nc);
395 v2[icr + id4 + iv] += mult_uv_i(&Ez[icg], &w2[id4 + iv], Nc);
396 v2[ici + id4 + iv] -= mult_uv_r(&Ez[icg], &w2[id4 + iv], Nc);
399 v2[icr + id1 + iv] *= kappa_cSW;
400 v2[ici + id1 + iv] *= kappa_cSW;
401 v2[icr + id2 + iv] *= kappa_cSW;
402 v2[ici + id2 + iv] *= kappa_cSW;
404 v2[icr + id3 + iv] *= kappa_cSW;
405 v2[ici + id3 + iv] *= kappa_cSW;
406 v2[icr + id4 + iv] *= kappa_cSW;
407 v2[ici + id4 + iv] *= kappa_cSW;
417 assert(w.
nex() == 1);
421 int Ndf = 2 * Nc * Nc;
432 const double *w2 = w.
ptr(0);
433 double *v2 = v.
ptr(0);
446 int is =
m_Nvol * i_thread / Nthread;
447 int ns =
m_Nvol * (i_thread + 1) / Nthread - is;
449 for (
int site = is; site < is + ns; ++site) {
450 int iv = Nvc * Nd * site;
453 for (
int ic = 0; ic < Nc; ++ic) {
456 int icg = ic * Nvc + ig;
458 v2[icr + id1 + iv] = 0.0;
459 v2[ici + id1 + iv] = 0.0;
460 v2[icr + id2 + iv] = 0.0;
461 v2[ici + id2 + iv] = 0.0;
463 v2[icr + id3 + iv] = 0.0;
464 v2[ici + id3 + iv] = 0.0;
465 v2[icr + id4 + iv] = 0.0;
466 v2[ici + id4 + iv] = 0.0;
469 v2[icr + id1 + iv] -= mult_uv_i(&Bx[icg], &w2[id2 + iv], Nc);
470 v2[ici + id1 + iv] += mult_uv_r(&Bx[icg], &w2[id2 + iv], Nc);
471 v2[icr + id2 + iv] -= mult_uv_i(&Bx[icg], &w2[id1 + iv], Nc);
472 v2[ici + id2 + iv] += mult_uv_r(&Bx[icg], &w2[id1 + iv], Nc);
474 v2[icr + id3 + iv] -= mult_uv_i(&Bx[icg], &w2[id4 + iv], Nc);
475 v2[ici + id3 + iv] += mult_uv_r(&Bx[icg], &w2[id4 + iv], Nc);
476 v2[icr + id4 + iv] -= mult_uv_i(&Bx[icg], &w2[id3 + iv], Nc);
477 v2[ici + id4 + iv] += mult_uv_r(&Bx[icg], &w2[id3 + iv], Nc);
480 v2[icr + id1 + iv] += mult_uv_r(&By[icg], &w2[id2 + iv], Nc);
481 v2[ici + id1 + iv] += mult_uv_i(&By[icg], &w2[id2 + iv], Nc);
482 v2[icr + id2 + iv] -= mult_uv_r(&By[icg], &w2[id1 + iv], Nc);
483 v2[ici + id2 + iv] -= mult_uv_i(&By[icg], &w2[id1 + iv], Nc);
485 v2[icr + id3 + iv] += mult_uv_r(&By[icg], &w2[id4 + iv], Nc);
486 v2[ici + id3 + iv] += mult_uv_i(&By[icg], &w2[id4 + iv], Nc);
487 v2[icr + id4 + iv] -= mult_uv_r(&By[icg], &w2[id3 + iv], Nc);
488 v2[ici + id4 + iv] -= mult_uv_i(&By[icg], &w2[id3 + iv], Nc);
491 v2[icr + id1 + iv] -= mult_uv_i(&Bz[icg], &w2[id1 + iv], Nc);
492 v2[ici + id1 + iv] += mult_uv_r(&Bz[icg], &w2[id1 + iv], Nc);
493 v2[icr + id2 + iv] += mult_uv_i(&Bz[icg], &w2[id2 + iv], Nc);
494 v2[ici + id2 + iv] -= mult_uv_r(&Bz[icg], &w2[id2 + iv], Nc);
496 v2[icr + id3 + iv] -= mult_uv_i(&Bz[icg], &w2[id3 + iv], Nc);
497 v2[ici + id3 + iv] += mult_uv_r(&Bz[icg], &w2[id3 + iv], Nc);
498 v2[icr + id4 + iv] += mult_uv_i(&Bz[icg], &w2[id4 + iv], Nc);
499 v2[ici + id4 + iv] -= mult_uv_r(&Bz[icg], &w2[id4 + iv], Nc);
502 v2[icr + id1 + iv] += mult_uv_i(&Ex[icg], &w2[id4 + iv], Nc);
503 v2[ici + id1 + iv] -= mult_uv_r(&Ex[icg], &w2[id4 + iv], Nc);
504 v2[icr + id2 + iv] += mult_uv_i(&Ex[icg], &w2[id3 + iv], Nc);
505 v2[ici + id2 + iv] -= mult_uv_r(&Ex[icg], &w2[id3 + iv], Nc);
507 v2[icr + id3 + iv] += mult_uv_i(&Ex[icg], &w2[id2 + iv], Nc);
508 v2[ici + id3 + iv] -= mult_uv_r(&Ex[icg], &w2[id2 + iv], Nc);
509 v2[icr + id4 + iv] += mult_uv_i(&Ex[icg], &w2[id1 + iv], Nc);
510 v2[ici + id4 + iv] -= mult_uv_r(&Ex[icg], &w2[id1 + iv], Nc);
513 v2[icr + id1 + iv] -= mult_uv_r(&Ey[icg], &w2[id4 + iv], Nc);
514 v2[ici + id1 + iv] -= mult_uv_i(&Ey[icg], &w2[id4 + iv], Nc);
515 v2[icr + id2 + iv] += mult_uv_r(&Ey[icg], &w2[id3 + iv], Nc);
516 v2[ici + id2 + iv] += mult_uv_i(&Ey[icg], &w2[id3 + iv], Nc);
518 v2[icr + id3 + iv] -= mult_uv_r(&Ey[icg], &w2[id2 + iv], Nc);
519 v2[ici + id3 + iv] -= mult_uv_i(&Ey[icg], &w2[id2 + iv], Nc);
520 v2[icr + id4 + iv] += mult_uv_r(&Ey[icg], &w2[id1 + iv], Nc);
521 v2[ici + id4 + iv] += mult_uv_i(&Ey[icg], &w2[id1 + iv], Nc);
524 v2[icr + id1 + iv] += mult_uv_i(&Ez[icg], &w2[id3 + iv], Nc);
525 v2[ici + id1 + iv] -= mult_uv_r(&Ez[icg], &w2[id3 + iv], Nc);
526 v2[icr + id2 + iv] -= mult_uv_i(&Ez[icg], &w2[id4 + iv], Nc);
527 v2[ici + id2 + iv] += mult_uv_r(&Ez[icg], &w2[id4 + iv], Nc);
529 v2[icr + id3 + iv] += mult_uv_i(&Ez[icg], &w2[id1 + iv], Nc);
530 v2[ici + id3 + iv] -= mult_uv_r(&Ez[icg], &w2[id1 + iv], Nc);
531 v2[icr + id4 + iv] -= mult_uv_i(&Ez[icg], &w2[id2 + iv], Nc);
532 v2[ici + id4 + iv] += mult_uv_r(&Ez[icg], &w2[id2 + iv], Nc);
535 v2[icr + id1 + iv] *= kappa_cSW;
536 v2[ici + id1 + iv] *= kappa_cSW;
537 v2[icr + id2 + iv] *= kappa_cSW;
538 v2[ici + id2 + iv] *= kappa_cSW;
540 v2[icr + id3 + iv] *= kappa_cSW;
541 v2[ici + id3 + iv] *= kappa_cSW;
542 v2[icr + id4 + iv] *= kappa_cSW;
543 v2[ici + id4 + iv] *= kappa_cSW;
564 const int mu,
const int nu)
568 assert(Nthread == 1);
605 double flop = flop_site *
static_cast<double>(Lvol);
void Register_int_vector(const string &, const std::vector< int > &)
void scal(Field &x, const double a)
scal(x, a): x = a * x
void set_config(Field *U)
setting pointer to the gauge configuration.
static int get_num_threads()
returns available number of threads.
void Register_string(const string &, const string &)
const double * ptr(const int jin, const int site, const int jex) const
void mult_sigmaF(Field &, const Field &)
Field_G m_Ez
field strength.
void mult_Field_Gdn(Field_G &w, const int ex, const Field_G &u1, const int ex1, const Field_G &u2, const int ex2)
void mult_csw_chiral(Field &, const Field &)
void gm5_chiral(Field &, const Field &)
void general(const char *format,...)
GammaMatrix get_GM(GMspecies spec)
Container of Field-type object.
void set_parameters(const Parameters ¶ms)
void set_fieldstrength(Field_G &, const int, const int)
Parameters_Fopr_CloverTerm()
static int get_thread_id()
returns thread id.
Wilson-type fermion field.
void ah_Field_G(Field_G &w, const int ex)
Field_G m_v2
for calculation of field strength.
void mult_gm5(Field &v, const Field &w)
void gm5_dirac(Field &, const Field &)
void(Fopr_CloverTerm::* m_gm5)(Field &, const Field &)
void multadd_Field_Gdn(Field_G &w, const int ex, const Field_G &u1, const int ex1, const Field_G &u2, const int ex2, const double ff)
void mult_Field_Gnd(Field_G &w, const int ex, const Field_G &u1, const int ex1, const Field_G &u2, const int ex2)
void mult_iGM(Field_F &y, const GammaMatrix &gm, const Field_F &x)
gamma matrix multiplication (i is multiplied)
Bridge::VerboseLevel m_vl
void mult_isigma(Field_F &, const Field_F &, const int mu, const int nu)
Set of Gamma Matrices: basis class.
void init(std::string repr)
void multadd_Field_Gnd(Field_G &w, const int ex, const Field_G &u1, const int ex1, const Field_G &u2, const int ex2, const double ff)
void axpy(Field &y, const double a, const Field &x)
axpy(y, a, x): y := a * x + y
void crucial(const char *format,...)
double flop_count()
this returns the number of floating point operations.
void mult_csw(Field &, const Field &)
void lower(Field_G &, const Field_G &, const int mu, const int nu)
constructs lower staple in mu-nu plane.
static bool Register(const std::string &realm, const creator_callback &cb)
const Field_G * m_U
pointer to gauge configuration.
static const std::string class_name
int sg_index(int mu, int nu)
void Register_double(const string &, const double)
std::vector< int > m_boundary
void mult_csw_dirac(Field &, const Field &)
int fetch_double(const string &key, double &val) const
string get_string(const string &key) const
void upper(Field_G &, const Field_G &, const int mu, const int nu)
constructs upper staple in mu-nu plane.
void(Fopr_CloverTerm::* m_csw)(Field &, const Field &)
static VerboseLevel set_verbose_level(const std::string &str)
int fetch_int_vector(const string &key, std::vector< int > &val) const
void forward(Field &, const Field &, const int mu)
std::vector< GammaMatrix > m_SG