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test_tfqmr_complex_diag.cpp
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41 //
42 // This driver reads a problem from a Harwell-Boeing (HB) file.
43 // The right-hand-side from the HB file is used instead of random vectors.
44 // The initial guesses are all set to zero.
45 //
46 // NOTE: No preconditioner is used in this case.
47 //
48 #include "BelosConfigDefs.hpp"
49 #include "BelosLinearProblem.hpp"
50 #include "BelosTFQMRSolMgr.hpp"
55 
56 #ifdef HAVE_MPI
57 #include <mpi.h>
58 #endif
59 
60 #include "MyMultiVec.hpp"
61 #include "MyOperator.hpp"
62 
63 using namespace Teuchos;
64 
65 int main(int argc, char *argv[]) {
66  //
67 #ifdef HAVE_COMPLEX
68  typedef std::complex<double> ST;
69 #elif HAVE_COMPLEX_H
70  typedef std::complex<double> ST;
71 #else
72  std::cout << "Not compiled with std::complex support." << std::endl;
73  std::cout << "End Result: TEST FAILED" << std::endl;
74  return EXIT_FAILURE;
75 #endif
76 
77  typedef ScalarTraits<ST> SCT;
78  typedef SCT::magnitudeType MT;
79  typedef Belos::MultiVec<ST> MV;
80  typedef Belos::Operator<ST> OP;
81  typedef Belos::MultiVecTraits<ST,MV> MVT;
83  ST one = SCT::one();
84  ST zero = SCT::zero();
85 
86  Teuchos::GlobalMPISession session(&argc, &argv, NULL);
87  int MyPID = session.getRank();
88  //
89  using Teuchos::RCP;
90  using Teuchos::rcp;
91 
92  bool success = false;
93  bool verbose = false;
94  try {
95  bool norm_failure = false;
96  bool proc_verbose = false;
97  bool pseudo = false; // use pseudo block TFQMR to solve this linear system.
98  int frequency = -1; // how often residuals are printed by solver
99  int blocksize = 1;
100  int numrhs = 1;
101  int maxrestarts = 15;
102  int length = 50;
103  MT tol = 1.0e-5; // relative residual tolerance
104 
105  CommandLineProcessor cmdp(false,true);
106  cmdp.setOption("verbose","quiet",&verbose,"Print messages and results.");
107  cmdp.setOption("pseudo","regular",&pseudo,"Use pseudo-block TFQMR to solve the linear systems.");
108  cmdp.setOption("frequency",&frequency,"Solvers frequency for printing residuals (#iters).");
109  cmdp.setOption("tol",&tol,"Relative residual tolerance used by TFQMR solver.");
110  cmdp.setOption("num-rhs",&numrhs,"Number of right-hand sides to be solved for.");
111  cmdp.setOption("num-restarts",&maxrestarts,"Maximum number of restarts allowed for the TFQMR solver.");
112  cmdp.setOption("blocksize",&blocksize,"Block size used by TFQMR.");
113  cmdp.setOption("subspace-length",&length,"Maximum dimension of block-subspace used by TFQMR solver.");
114  if (cmdp.parse(argc,argv) != CommandLineProcessor::PARSE_SUCCESSFUL) {
115  return EXIT_FAILURE;
116  }
117 
118  proc_verbose = verbose && (MyPID==0); /* Only print on the zero processor */
119  if (proc_verbose) {
120  std::cout << Belos::Belos_Version() << std::endl << std::endl;
121  }
122  if (!verbose)
123  frequency = -1; // reset frequency if test is not verbose
124 
125 #ifndef HAVE_BELOS_TRIUTILS
126  std::cout << "This test requires Triutils. Please configure with --enable-triutils." << std::endl;
127  if (MyPID==0) {
128  std::cout << "End Result: TEST FAILED" << std::endl;
129  }
130  return EXIT_FAILURE;
131 #endif
132 
133  // Get the data from the HB file
134  int dim=100;
135 
136  // Build the problem matrix
137  std::vector<ST> diag( dim, (ST)4.0 );
139  = rcp( new MyOperator<ST>( diag ) );
140  //
141  // ********Other information used by block solver***********
142  // *****************(can be user specified)******************
143  //
144  int maxits = dim/blocksize; // maximum number of iterations to run
145  //
146  ParameterList belosList;
147  belosList.set( "Num Blocks", length ); // Maximum number of blocks in Krylov factorization
148  belosList.set( "Block Size", blocksize ); // Blocksize to be used by iterative solver
149  belosList.set( "Maximum Iterations", maxits ); // Maximum number of iterations allowed
150  belosList.set( "Maximum Restarts", maxrestarts ); // Maximum number of restarts allowed
151  belosList.set( "Convergence Tolerance", tol ); // Relative convergence tolerance requested
152  if (verbose) {
153  belosList.set( "Verbosity", Belos::Errors + Belos::Warnings +
155  if (frequency > 0)
156  belosList.set( "Output Frequency", frequency );
157  }
158  else
159  belosList.set( "Verbosity", Belos::Errors + Belos::Warnings );
160  //
161  // Construct the right-hand side and solution multivectors.
162  // NOTE: The right-hand side will be constructed such that the solution is
163  // a vectors of one.
164  //
165  RCP<MyMultiVec<ST> > soln = rcp( new MyMultiVec<ST>(dim,numrhs) );
166  RCP<MyMultiVec<ST> > rhs = rcp( new MyMultiVec<ST>(dim,numrhs) );
167  MVT::MvInit( *rhs, 1.0 );
168  MVT::MvInit( *soln, zero );
169  //
170  // Construct an unpreconditioned linear problem instance.
171  //
173  rcp( new Belos::LinearProblem<ST,MV,OP>( A, soln, rhs ) );
174  bool set = problem->setProblem();
175  if (set == false) {
176  if (proc_verbose)
177  std::cout << std::endl << "ERROR: Belos::LinearProblem failed to set up correctly!" << std::endl;
178  return EXIT_FAILURE;
179  }
180 
181  //
182  // *******************************************************************
183  // *************Start the TFQMR iteration***********************
184  // *******************************************************************
185  //
187  if (pseudo)
188  solver = Teuchos::rcp( new Belos::PseudoBlockTFQMRSolMgr<ST,MV,OP>( problem, Teuchos::rcp(&belosList,false) ) );
189  else
190  solver = Teuchos::rcp( new Belos::TFQMRSolMgr<ST,MV,OP>( problem, Teuchos::rcp(&belosList,false) ) );
191 
192  //
193  // **********Print out information about problem*******************
194  //
195  if (proc_verbose) {
196  std::cout << std::endl << std::endl;
197  std::cout << "Dimension of matrix: " << dim << std::endl;
198  std::cout << "Number of right-hand sides: " << numrhs << std::endl;
199  std::cout << "Block size used by solver: " << blocksize << std::endl;
200  std::cout << "Max number of TFQMR iterations: " << maxits << std::endl;
201  std::cout << "Relative residual tolerance: " << tol << std::endl;
202  std::cout << std::endl;
203  }
204  //
205  // Perform solve
206  //
207  Belos::ReturnType ret = solver->solve();
208  //
209  // Compute actual residuals.
210  //
211  RCP<MyMultiVec<ST> > temp = rcp( new MyMultiVec<ST>(dim,numrhs) );
212  OPT::Apply( *A, *soln, *temp );
213  MVT::MvAddMv( one, *rhs, -one, *temp, *temp );
214  std::vector<MT> norm_num(numrhs), norm_denom(numrhs);
215  MVT::MvNorm( *temp, norm_num );
216  MVT::MvNorm( *rhs, norm_denom );
217  for (int i=0; i<numrhs; ++i) {
218  if (proc_verbose)
219  std::cout << "Relative residual "<<i<<" : " << norm_num[i] / norm_denom[i] << std::endl;
220  if ( norm_num[i] / norm_denom[i] > tol ) {
221  norm_failure = true;
222  }
223  }
224 
225  success = ret==Belos::Converged && !norm_failure;
226  if (success) {
227  if (proc_verbose)
228  std::cout << "End Result: TEST PASSED" << std::endl;
229  } else {
230  if (proc_verbose)
231  std::cout << "End Result: TEST FAILED" << std::endl;
232  }
233  }
234  TEUCHOS_STANDARD_CATCH_STATEMENTS(verbose, std::cerr, success);
235 
236  return ( success ? EXIT_SUCCESS : EXIT_FAILURE );
237 } // end test_bl_gmres_complex_hb.cpp
std::string Belos_Version()
int main(int argc, char *argv[])
The Belos::PseudoBlockTFQMRSolMgr provides a solver manager for the pseudo-block TFQMR linear solver...
ParameterList & set(std::string const &name, T const &value, std::string const &docString="", RCP< const ParameterEntryValidator > const &validator=null)
Traits class which defines basic operations on multivectors.
Simple example of a user&#39;s defined Belos::MultiVec class.
Definition: MyMultiVec.hpp:65
Alternative run-time polymorphic interface for operators.
TEUCHOS_DEPRECATED RCP< T > rcp(T *p, Dealloc_T dealloc, bool owns_mem)
void setOption(const char option_true[], const char option_false[], bool *option_val, const char documentation[]=NULL)
#define TEUCHOS_STANDARD_CATCH_STATEMENTS(VERBOSE, ERR_STREAM, SUCCESS_FLAG)
A linear system to solve, and its associated information.
const double tol
Class which describes the linear problem to be solved by the iterative solver.
EParseCommandLineReturn parse(int argc, char *argv[], std::ostream *errout=&std::cerr) const
The Belos::PseudoBlockTFQMRSolMgr provides a powerful and fully-featured solver manager over the pseu...
ReturnType
Whether the Belos solve converged for all linear systems.
Definition: BelosTypes.hpp:155
The Belos::TFQMRSolMgr provides a powerful and fully-featured solver manager over the TFQMR linear so...
Simple example of a user&#39;s defined Belos::Operator class.
Definition: MyOperator.hpp:65
Interface for multivectors used by Belos&#39; linear solvers.
Class which defines basic traits for the operator type.
Belos header file which uses auto-configuration information to include necessary C++ headers...
The Belos::TFQMRSolMgr provides a solver manager for the TFQMR linear solver.