Bridge++  Ver. 1.3.x
test_Spectrum_eo_2ptFunction.cpp
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1 
14 #include "test.h"
15 
16 #include <sstream>
17 
18 #include "gaugeConfig.h"
19 #include "staples.h"
20 
21 #include "randomNumbers_Mseries.h"
22 
23 #include "fopr_eo.h"
24 #include "fprop_Standard_eo.h"
25 
26 #include "director_Smear.h"
27 #include "fopr_Smeared.h"
28 
29 #include "gammaMatrixSet.h"
30 #include "gaugeFixing.h"
31 #include "projection.h"
32 #include "smear.h"
33 #include "solver.h"
34 #include "source.h"
35 
36 #include "corr2pt_4spinor.h"
37 
38 //====================================================================
40 
46 namespace Test_Spectrum {
47  const std::string test_name = "Spectrum.Hadron2ptFunction_eo";
48 
49  //- test-private parameters
50  namespace {
51  // const std::string filename_input = "test_Spectrum_eo_Hadron2ptFunction.yaml";
52  const std::string filename_output = "stdout";
53 
54  class Parameters_Test_Spectrum : public Parameters {
55  public:
56  Parameters_Test_Spectrum()
57  {
58  Register_string("gauge_config_status", "NULL");
59  Register_string("gauge_config_type_input", "NULL");
60  Register_string("config_filename_input", "NULL");
61 
62  Register_int("number_of_valence_quarks", 0);
63 
64  Register_string("verbose_level", "NULL");
65 
66  Register_double("expected_result", 0.0);
67  }
68  };
69  }
70 
71  //- prototype declaration
72  int hadron_2ptFunction_eo(const std::string&);
73 
74  //- hadron_2ptFunction for various fermions
76  {
77  return hadron_2ptFunction_eo("test_Spectrum_Clover_Hadron2ptFunction.yaml");
78  }
79 
80 
81  //- NB. test_Spectrum_Wilson is implemented separately for beginners
82  // int hadron_2ptFunction_Wilson_eo() {
83  // return hadron_2ptFunction_eo("test_Spectrum_Wilson_Hadron2ptFunction.yaml");
84  // }
85 
86 #ifdef USE_TESTMANAGER_AUTOREGISTER
87  namespace {
88 #if defined(USE_GROUP_SU2)
89  // Nc=2 is not available.
90 #else
91  static const bool is_registered_Clover_eo = TestManager::RegisterTest(
92  "Spectrum.Clover_eo.Hadron2ptFunction",
94  );
95 
96  //- NB. test_Spectrum_Wilson is implemented separately for beginners
97  // static const bool is_registered_Wilson_eo = TestManager::RegisterTest(
98  // "Spectrum.Wilson_eo.Hadron2ptFunction",
99  // hadron_2ptFunction_Wilson_eo
100  // );
101 #endif
102  }
103 #endif
104 
105  //====================================================================
106  int hadron_2ptFunction_eo(const std::string& filename_input)
107  {
108  // #### parameter setup ####
109  int Nc = CommonParameters::Nc();
110  int Nd = CommonParameters::Nd();
111  int Ndim = CommonParameters::Ndim();
112  int Nvol = CommonParameters::Nvol();
113 
114 
115  unique_ptr<Parameters> params_test(new Parameters_Test_Spectrum);
116  unique_ptr<Parameters> params_pre(new Parameters);
117 
118  params_pre->Register_Parameters("Test_Spectrum", params_test);
119 
120  ParameterManager::read(filename_input, params_pre);
121 
122 
123  const int N_quark = params_test->get_int("number_of_valence_quarks");
124 
125  unique_ptr<Parameters> params_gfix(ParametersFactory::New("GaugeFixing"));
126  unique_ptr<Parameters> params_proj(ParametersFactory::New("Projection"));
127  unique_ptr<Parameters> params_smear(ParametersFactory::New("Smear"));
128  unique_ptr<Parameters> params_dr_smear(ParametersFactory::New("Director_Smear"));
129  unique_ptr<Parameters> params_solver(ParametersFactory::New("Solver"));
130  unique_ptr<Parameters> params_all(new Parameters);
131 
132 #ifdef USE_CPP11
133  std::vector<unique_ptr<Parameters> > params_quark(N_quark);
134  std::vector<unique_ptr<Parameters> > params_fopr(N_quark);
135  std::vector<unique_ptr<Parameters> > params_source(N_quark);
136 
137  for (int iq = 0; iq < N_quark; ++iq) {
138  params_quark[iq].reset(new Parameters);
139  params_fopr[iq].reset(ParametersFactory::New("Fopr"));
140  params_source[iq].reset(ParametersFactory::New("Source"));
141  }
142 #else
143  std::vector<Parameters *> params_quark(N_quark);
144  std::vector<Parameters *> params_fopr(N_quark);
145  std::vector<Parameters *> params_source(N_quark);
146 
147  for (int iq = 0; iq < N_quark; ++iq) {
148  params_quark[iq] = new Parameters;
149  params_fopr[iq] = ParametersFactory::New("Fopr");
150  params_source[iq] = ParametersFactory::New("Source");
151  }
152 #endif
153 
154  for (int iq = 0; iq < N_quark; ++iq) {
155  params_quark[iq]->Register_Parameters("Fopr", params_fopr[iq]);
156  params_quark[iq]->Register_Parameters("Source", params_source[iq]);
157 
158  std::stringstream qlabel;
159  qlabel << "Quark_" << iq + 1;
160  params_all->Register_Parameters(qlabel.str(), params_quark[iq]);
161  }
162 
163  params_all->Register_Parameters("GaugeFixing", params_gfix);
164  params_all->Register_Parameters("Projection", params_proj);
165  params_all->Register_Parameters("Smear", params_smear);
166  params_all->Register_Parameters("Director_Smear", params_dr_smear);
167  params_all->Register_Parameters("Solver", params_solver);
168 
169  ParameterManager::read(filename_input, params_all);
170 
171  const string str_gconf_status = params_test->get_string("gauge_config_status");
172  const string str_gconf_read = params_test->get_string("gauge_config_type_input");
173  const string readfile = params_test->get_string("config_filename_input");
174  const string str_vlevel = params_test->get_string("verbose_level");
175 
176  const bool do_check = params_test->is_set("expected_result");
177  const double expected_result = do_check ? params_test->get_double("expected_result") : 0.0;
178 
179  const string str_gfix_type = params_gfix->get_string("gauge_fixing_type");
180  const string str_proj_type = params_proj->get_string("projection_type");
181  const string str_smear_type = params_smear->get_string("smear_type");
182  const string str_solver_type = params_solver->get_string("solver_type");
183 
185 
186  //- print input parameters
187  vout.general(vl, " gconf_status = %s\n", str_gconf_status.c_str());
188  vout.general(vl, " gconf_read = %s\n", str_gconf_read.c_str());
189  vout.general(vl, " readfile = %s\n", readfile.c_str());
190  vout.general(vl, " vlevel = %s\n", str_vlevel.c_str());
191  vout.general(vl, " gfix_type = %s\n", str_gfix_type.c_str());
192  vout.general(vl, " proj_type = %s\n", str_proj_type.c_str());
193  vout.general(vl, " smear_type = %s\n", str_smear_type.c_str());
194  vout.general(vl, " solver_type = %s\n", str_solver_type.c_str());
195 
196  // NB. all str_gmset_type are supposed to be the same.
197  string str_gmset_type = params_fopr[0]->get_string("gamma_matrix_type");
198  vout.general(vl, " gmset_type = %s\n", str_gmset_type.c_str());
199 
200  std::vector<std::string> str_source_type(N_quark);
201 
202  for (int iq = 0; iq < N_quark; ++iq) {
203  vout.general(vl, " Quark_%d:\n", iq + 1);
204 
205  str_source_type[iq] = params_source[iq]->get_string("source_type");
206  vout.general(vl, " source_type = %s\n", str_source_type[iq].c_str());
207  }
208  vout.general(vl, "\n");
209 
210  //- input parameter check
211  int err = 0;
212  err += ParameterCheck::non_NULL(str_gconf_status);
213 
214  if (err) {
215  vout.crucial(vl, "%s: Input parameters have not been set.\n", test_name.c_str());
216  exit(EXIT_FAILURE);
217  }
218 
219 
220  // #### Set up a gauge configuration ####
221  unique_ptr<Field_G> U(new Field_G(Nvol, Ndim));
222  unique_ptr<GaugeConfig> gconf_read(new GaugeConfig(str_gconf_read));
223 
224  if (str_gconf_status == "Continue") {
225  gconf_read->read_file(U, readfile);
226  } else if (str_gconf_status == "Cold_start") {
227  U->set_unit();
228  } else if (str_gconf_status == "Hot_start") {
229  int i_seed_noise = 1234567;
230  unique_ptr<RandomNumbers> rand(new RandomNumbers_Mseries(i_seed_noise));
231  U->set_random(rand);
232  } else {
233  vout.crucial(vl, "%s: unsupported gconf status \"%s\".\n", test_name.c_str(), str_gconf_status.c_str());
234  exit(EXIT_FAILURE);
235  }
236 
237  unique_ptr<Projection> proj(Projection::New(str_proj_type));
238  unique_ptr<Smear> smear(Smear::New(str_smear_type, proj));
239  smear->set_parameters(*params_smear);
240 
241  unique_ptr<Director_Smear> dr_smear(new Director_Smear(smear));
242  dr_smear->set_parameters(*params_dr_smear);
243  dr_smear->set_config(U);
244 
245  int Nsmear = dr_smear->get_Nsmear();
246  Field_G *Usmear = (Field_G *)dr_smear->getptr_smearedConfig(Nsmear);
247 
248 
249  // #### Gauge fixing ####
250  unique_ptr<Staples> staple(new Staples);
251  unique_ptr<Field_G> Ufix(new Field_G(Nvol, Ndim));
252 
253  int ndelay = 1000;
255 
256  unique_ptr<GaugeFixing> gfix(GaugeFixing::New(str_gfix_type, rand));
257  gfix->set_parameters(*params_gfix);
258 
259  double plaq = staple->plaquette(*Usmear);
260  vout.general(vl, "plaq(original) = %18.14f\n", plaq);
261 
262  gfix->fix(*Ufix, *Usmear);
263 
264  double plaq2 = staple->plaquette(*Ufix);
265  vout.general(vl, "plaq(fixed) = %18.14f\n", plaq2);
266  vout.general(vl, "plaq(diff) = %18.10e\n", plaq - plaq2);
267 
268 
269  // #### object setup #####
270  unique_ptr<GammaMatrixSet> gmset(GammaMatrixSet::New(str_gmset_type));
271 
272 #ifdef USE_CPP11
273  std::vector<unique_ptr<Fopr> > fopr(N_quark);
274  std::vector<unique_ptr<Fopr> > fopr_eo(N_quark);
275  std::vector<unique_ptr<Solver> > solver(N_quark);
276  std::vector<unique_ptr<Fprop> > fprop_eo(N_quark);
277  std::vector<unique_ptr<Source> > source(N_quark);
278 
279  // NB. Fopr is used only for check of diff2 below.
280 
281  for (int iq = 0; iq < N_quark; ++iq) {
282  string str_fopr_type = params_fopr[iq]->get_string("fermion_type");
283 
284  fopr[iq].reset(Fopr::New(str_fopr_type, str_gmset_type));
285  fopr[iq]->set_parameters(*params_fopr[iq]);
286  fopr[iq]->set_config(Ufix);
287 
288  fopr_eo[iq].reset(Fopr::New(str_fopr_type + "_eo", str_gmset_type));
289  fopr_eo[iq]->set_parameters(*params_fopr[iq]);
290  fopr_eo[iq]->set_config(Ufix);
291 
292  solver[iq].reset(Solver::New(str_solver_type, fopr_eo[iq]));
293  solver[iq]->set_parameters(*params_solver);
294 
295  fprop_eo[iq].reset(new Fprop_Standard_eo(solver[iq]));
296 
297  source[iq].reset(Source::New(str_source_type[iq]));
298  source[iq]->set_parameters(*params_source[iq]);
299  }
300 #else
301  std::vector<Fopr *> fopr(N_quark);
302  std::vector<Fopr *> fopr_eo(N_quark);
303  std::vector<Solver *> solver(N_quark);
304  std::vector<Fprop *> fprop_eo(N_quark);
305  std::vector<Source *> source(N_quark);
306 
307  // NB. Fopr is used only for check of diff2 below.
308 
309  for (int iq = 0; iq < N_quark; ++iq) {
310  string str_fopr_type = params_fopr[iq]->get_string("fermion_type");
311 
312  fopr[iq] = Fopr::New(str_fopr_type, str_gmset_type);
313  fopr[iq]->set_parameters(*params_fopr[iq]);
314  fopr[iq]->set_config(Ufix);
315 
316  fopr_eo[iq] = Fopr::New(str_fopr_type + "_eo", str_gmset_type);
317  fopr_eo[iq]->set_parameters(*params_fopr[iq]);
318  fopr_eo[iq]->set_config(Ufix);
319 
320  solver[iq] = Solver::New(str_solver_type, fopr_eo[iq]);
321  solver[iq]->set_parameters(*params_solver);
322 
323  fprop_eo[iq] = new Fprop_Standard_eo(solver[iq]);
324 
325  source[iq] = Source::New(str_source_type[iq]);
326  source[iq]->set_parameters(*params_source[iq]);
327  }
328 #endif
329 
330  unique_ptr<Timer> timer(new Timer(test_name));
331 
332 
333  // #### Execution main part ####
334  timer->start();
335 
336  typedef std::vector<Field_F> PropagatorSet;
337 
338  std::vector<PropagatorSet> sq(N_quark);
339  for (int iq = 0; iq < N_quark; ++iq) {
340  sq[iq].resize(Nc * Nd);
341 
342  for (int i = 0; i < Nc * Nd; ++i) {
343  sq[iq][i].set(0.0);
344  }
345  }
346 
347  Field_F b;
348  b.set(0.0);
349 
350  int Nconv;
351  double diff, diff2;
352 
353  for (int iq = 0; iq < N_quark; ++iq) {
354  vout.general(vl, "Solving quark propagator, flavor = %d:\n", iq + 1);
355  vout.general(vl, " color spin Nconv diff diff2\n");
356 
357  for (int ispin = 0; ispin < Nd; ++ispin) {
358  for (int icolor = 0; icolor < Nc; ++icolor) {
359  int idx = icolor + Nc * ispin;
360  source[iq]->set(b, idx);
361 
362  fprop_eo[iq]->invert_D(sq[iq][idx], b, Nconv, diff);
363 
364  Field_F y(b);
365  fopr[iq]->set_mode("D");
366  fopr[iq]->mult(y, sq[iq][idx]); // y = fopr[iq]->mult(sq[iq][idx]);
367  axpy(y, -1.0, b); // y -= b;
368  diff2 = y.norm2();
369 
370  vout.general(vl, " %2d %2d %6d %12.4e %12.4e\n",
371  icolor, ispin, Nconv, diff, diff2);
372  }
373  }
374 
375  vout.general(vl, "\n");
376  }
377 
378 
379  //- meson correlators
380  std::ofstream log_file;
381  if (filename_output != "stdout") {
382  log_file.open(filename_output.c_str());
383  vout.init(log_file);
384  }
385 
386  vout.general(vl, "2-point correlator:\n");
387  Corr2pt_4spinor corr(gmset);
388  std::vector<double> result(N_quark);
389 
390  //- case(iq_1 == iq_2)
391  for (int iq = 0; iq < N_quark; ++iq) {
392  vout.general(vl, "Flavor combination = %d, %d\n", iq + 1, iq + 1);
393  result[iq] = corr.meson_all(sq[iq], sq[iq]);
394  vout.general(vl, "\n");
395  }
396 
397 
398  //- case(iq_1 < iq_2)
399  for (int iq = 0; iq < N_quark; ++iq) {
400  for (int jq = iq + 1; jq < N_quark; ++jq) {
401  vout.general(vl, "Flavor combination = %d, %d\n", iq + 1, jq + 1);
402  double result_2 = corr.meson_all(sq[iq], sq[jq]);
403  vout.general(vl, "\n");
404  }
405  }
406 
407  if (filename_output != "stdout") {
408  log_file.close();
409  vout.init(std::cout);
410  }
411 
412  timer->report();
413 
414 #ifdef USE_CPP11
415  // do nothing.
416 #else
417  // tidy-up
418  for (int iq = 0; iq < N_quark; ++iq) {
419  delete params_quark[iq];
420  delete params_fopr[iq];
421  delete params_source[iq];
422 
423  delete fopr_eo[iq];
424  delete solver[iq];
425  delete fprop_eo[iq];
426  delete source[iq];
427  delete fopr[iq];
428  }
429 #endif
430 
431  if (do_check) {
432  return Test::verify(result[0], expected_result);
433  } else {
434  vout.detailed(vl, "check skipped: expected_result not set.\n\n");
435  return EXIT_SKIP;
436  }
437  }
438 } // namespace Test_Spectrum
#define EXIT_SKIP
Definition: test.h:17
Random number generator base on M-series.
BridgeIO vout
Definition: bridgeIO.cpp:278
void detailed(const char *format,...)
Definition: bridgeIO.cpp:82
double meson_all(const std::vector< Field_F > &sq1, const std::vector< Field_F > &sq2)
double norm2() const
Definition: field.cpp:441
Staple construction.
Definition: staples.h:40
void set(const int jin, const int site, const int jex, double v)
Definition: field.h:155
int hadron_2ptFunction_eo(const std::string &)
void general(const char *format,...)
Definition: bridgeIO.cpp:65
Two-point correlator for Wilson-type fermions.
double plaquette(const Field_G &)
calculates plaquette value.
Definition: staples.cpp:36
virtual void set_parameters(const Parameters &)=0
int get_int(const string &key) const
Definition: parameters.cpp:42
Class for parameters.
Definition: parameters.h:38
static Parameters * New(const std::string &realm)
void read_file(Field *U, const string &filename)
Definition: gaugeConfig.cpp:56
void set_random(RandomNumbers *rand)
Definition: field_G_imp.cpp:62
Wilson-type fermion field.
Definition: field_F.h:37
void set_unit()
Definition: field_G_imp.cpp:39
static bool RegisterTest(const std::string &key, const Test_function func)
Definition: testManager.h:80
Test of spectroscopy.
SU(N) gauge field.
Definition: field_G.h:38
Field * getptr_smearedConfig(int i_smear)
get pointer to i-th smeared config (0th is original thin link)
bool is_set(const string &) const
Definition: parameters.cpp:372
double get_double(const string &key) const
Definition: parameters.cpp:27
Get quark propagator for Fopr with even-odd site index.
void init(std::ostream &os)
Definition: bridgeIO.h:57
int non_NULL(const std::string v)
Definition: checker.cpp:61
void start()
Definition: timer.cpp:44
void axpy(Field &y, const double a, const Field &x)
axpy(y, a, x): y := a * x + y
Definition: field.cpp:168
void set_config(Field *U)
set pointer to original thin link variable
int get_Nsmear()
get number of applied smearing operation
void crucial(const char *format,...)
Definition: bridgeIO.cpp:48
void Register_Parameters(const string &, Parameters *const)
Definition: parameters.cpp:358
Manager of smeared configurations.
int verify(const double result, const double expected, double eps)
Definition: test.cpp:27
const std::string test_name
Bridge::VerboseLevel vl
Definition: checker.cpp:18
VerboseLevel
Definition: bridgeIO.h:39
void set_parameters(const Parameters &params)
set parameters, must be called before set_config
static void read(const std::string &params_file, Parameters *params)
GaugeConfig class for file I/O of gauge configuration.
Definition: gaugeConfig.h:61
Definition: timer.h:31
virtual void fix(Field_G &Ufix, const Field_G &Uorg)=0
string get_string(const string &key) const
Definition: parameters.cpp:87
void report(const Bridge::VerboseLevel vl=Bridge::GENERAL)
Definition: timer.cpp:128
static VerboseLevel set_verbose_level(const std::string &str)
Definition: bridgeIO.cpp:28
virtual void set_parameters(const Parameters &params)=0