Nektar++
ProcessCreateExp.cpp
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1////////////////////////////////////////////////////////////////////////////////
2//
3// File: ProcessCreateExp.cpp
4//
5// For more information, please see: http://www.nektar.info/
6//
7// The MIT License
8//
9// Copyright (c) 2006 Division of Applied Mathematics, Brown University (USA),
10// Department of Aeronautics, Imperial College London (UK), and Scientific
11// Computing and Imaging Institute, University of Utah (USA).
12//
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14// copy of this software and associated documentation files (the "Software"),
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24// OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
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30//
31// Description: Dummy module to create m_exp.
32//
33////////////////////////////////////////////////////////////////////////////////
34
35#include <iostream>
36#include <string>
37using namespace std;
38
39#include "ProcessCreateExp.h"
40
43
44namespace Nektar
45{
46namespace FieldUtils
47{
48
52 "dummy module used to create m_exp.");
53
55{
56}
57
59{
60}
61
62void ProcessCreateExp::v_Process(po::variables_map &vm)
63{
64 if (m_f->m_graph)
65 {
66 LibUtilities::Timer timerpart;
67 if (m_f->m_verbose)
68 {
69 if (m_f->m_comm->TreatAsRankZero())
70 {
71 timerpart.Start();
72 }
73 }
74 // check to see if fld file defined so can use in
75 // expansion defintion if required
76 bool fldfilegiven = (m_f->m_fielddef.size() != 0);
77 bool expFromFld = fldfilegiven && !vm.count("useSessionExpansion");
78
79 // load fielddef header if fld file is defined. This gives
80 // precedence to Homogeneous definition in fld file
81 m_f->m_numHomogeneousDir = 0;
82 if (expFromFld)
83 {
84 m_f->m_numHomogeneousDir = m_f->m_fielddef[0]->m_numHomogeneousDir;
85
86 // Set up Expansion information to use mode order from field
87 m_f->m_graph->SetExpansionInfo(m_f->m_fielddef);
88 }
89 else
90 {
91 if (m_f->m_session->DefinesSolverInfo("HOMOGENEOUS"))
92 {
93 std::string HomoStr =
94 m_f->m_session->GetSolverInfo("HOMOGENEOUS");
95
96 if ((HomoStr == "HOMOGENEOUS1D") ||
97 (HomoStr == "Homogeneous1D") || (HomoStr == "1D") ||
98 (HomoStr == "Homo1D"))
99 {
100 m_f->m_numHomogeneousDir = 1;
101 }
102 if ((HomoStr == "HOMOGENEOUS2D") ||
103 (HomoStr == "Homogeneous2D") || (HomoStr == "2D") ||
104 (HomoStr == "Homo2D"))
105 {
106 m_f->m_numHomogeneousDir = 2;
107 }
108 }
109 }
110
111 m_f->m_exp.resize(1);
112 // Check if there are any elements to process
113 vector<int> IDs;
114 auto domain = m_f->m_graph->GetDomain();
115 for (int d = 0; d < domain.size(); ++d)
116 {
117 for (auto &compIter : domain[d])
118 {
119 for (auto &x : compIter.second->m_geomVec)
120 {
121 IDs.push_back(x->GetGlobalID());
122 }
123 }
124 }
125 // if Range has been specified it is possible to have a
126 // partition which is empty so check this and return with empty
127 // expansion if no elements present.
128 if (!IDs.size())
129 {
130 m_f->m_exp[0] =
132 return;
133 }
134
135 // Adjust number of quadrature points
136 if (vm.count("output-points"))
137 {
138 int nPointsNew = vm["output-points"].as<int>();
139 m_f->m_graph->SetExpansionInfoToPointOrder(nPointsNew);
140 }
141
142 if (m_f->m_verbose)
143 {
144 if (m_f->m_comm->TreatAsRankZero())
145 {
146 timerpart.Stop();
147 NekDouble cpuTime = timerpart.TimePerTest(1);
148
149 stringstream ss;
150 ss << cpuTime << "s";
151 cout << "\t ProcessCreateExp setexpansion CPU Time: " << setw(8)
152 << left << ss.str() << endl;
153 timerpart.Start();
154 }
155 }
156 // Override number of planes with value from cmd line
157 if (m_f->m_numHomogeneousDir == 1 && vm.count("output-points-hom-z"))
158 {
159 int expdim = m_f->m_graph->GetMeshDimension();
160 m_f->m_fielddef[0]->m_numModes[expdim] =
161 vm["output-points-hom-z"].as<int>();
162 }
163 m_f->m_exp[0] =
164 m_f->SetUpFirstExpList(m_f->m_numHomogeneousDir, expFromFld);
165 if (m_f->m_verbose)
166 {
167 if (m_f->m_comm->TreatAsRankZero())
168 {
169 timerpart.Stop();
170 NekDouble cpuTime = timerpart.TimePerTest(1);
171
172 stringstream ss1;
173
174 ss1 << cpuTime << "s";
175 cout << "\t ProcessCreateExp set first exp CPU Time: "
176 << setw(8) << left << ss1.str() << endl;
177 }
178 }
179
180 if (fldfilegiven)
181 {
182 LoadFieldData(vm.count("useSessionVariables"));
183 }
184 }
185}
186
187void ProcessCreateExp::LoadFieldData(bool useSessionVariables)
188{
189 int i, j;
190 int nfields, nstrips;
191 m_f->m_session->LoadParameter("Strip_Z", nstrips, 1);
192 vector<string> vars = m_f->m_session->GetVariables();
193
194 // if (vm.count("useSessionVariables"))
195 if (useSessionVariables)
196 {
197 m_f->m_variables = vars;
198 }
199 nfields = m_f->m_variables.size();
200
201 m_f->m_exp.resize(nfields * nstrips);
202 // declare other fields;
203 for (int s = 0; s < nstrips; ++s) // homogeneous strip varient
204 {
205 for (i = 0; i < nfields; ++i)
206 {
207 if (i < vars.size())
208 {
209 // check to see if field already defined
210 if (!m_f->m_exp[s * nfields + i])
211 {
212 m_f->m_exp[s * nfields + i] =
213 m_f->AppendExpList(m_f->m_numHomogeneousDir, vars[i]);
214 }
215 }
216 else
217 {
218 if (vars.size())
219 {
220 m_f->m_exp[s * nfields + i] =
221 m_f->AppendExpList(m_f->m_numHomogeneousDir, vars[0]);
222 }
223 else
224 {
225 m_f->m_exp[s * nfields + i] =
226 m_f->AppendExpList(m_f->m_numHomogeneousDir);
227 }
228 }
229 }
230 }
231
232 // Extract data to coeffs and bwd transform
233 for (int s = 0; s < nstrips; ++s) // homogeneous strip varient
234 {
235 for (j = 0; j < nfields; ++j)
236 {
237 for (i = 0; i < m_f->m_data.size() / nstrips; ++i)
238 {
239 int n = i * nstrips + s;
240 // In case of multiple flds, we might not have a
241 // variable in this m_data[n] -> skip in this case
242 auto it = find(m_f->m_fielddef[n]->m_fields.begin(),
243 m_f->m_fielddef[n]->m_fields.end(),
244 m_f->m_variables[j]);
245 if (it != m_f->m_fielddef[n]->m_fields.end())
246 {
247 m_f->m_exp[s * nfields + j]->ExtractDataToCoeffs(
248 m_f->m_fielddef[n], m_f->m_data[n], m_f->m_variables[j],
249 m_f->m_exp[s * nfields + j]->UpdateCoeffs());
250 }
251 }
252 m_f->m_exp[s * nfields + j]->BwdTrans(
253 m_f->m_exp[s * nfields + j]->GetCoeffs(),
254 m_f->m_exp[s * nfields + j]->UpdatePhys());
255 }
256 }
257 // Clear fielddef and data (they should not be used after running this
258 // module)
259 m_f->m_fielddef = vector<LibUtilities::FieldDefinitionsSharedPtr>();
260 m_f->m_data = vector<std::vector<NekDouble>>();
261}
262
263} // namespace FieldUtils
264} // namespace Nektar
FieldSharedPtr m_f
Field object.
Definition: Module.h:234
virtual void v_Process(po::variables_map &vm) override
Write mesh to output file.
void LoadFieldData(bool useSessionVariables=false)
static std::shared_ptr< Module > create(FieldSharedPtr f)
Creates an instance of this class.
Abstract base class for processing modules.
Definition: Module.h:292
tKey RegisterCreatorFunction(tKey idKey, CreatorFunction classCreator, std::string pDesc="")
Register a class with the factory.
Definition: NekFactory.hpp:198
NekDouble TimePerTest(unsigned int n)
Returns amount of seconds per iteration in a test with n iterations.
Definition: Timer.cpp:67
static std::shared_ptr< DataType > AllocateSharedPtr(const Args &...args)
Allocate a shared pointer from the memory pool.
std::shared_ptr< Field > FieldSharedPtr
Definition: Field.hpp:991
std::pair< ModuleType, std::string > ModuleKey
Definition: Module.h:317
ModuleFactory & GetModuleFactory()
Definition: Module.cpp:49
InputIterator find(InputIterator first, InputIterator last, InputIterator startingpoint, const EqualityComparable &value)
Definition: StdRegions.hpp:453
std::vector< double > d(NPUPPER *NPUPPER)
The above copyright notice and this permission notice shall be included.
Definition: CoupledSolver.h:2
double NekDouble