tmp update
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@ -17,16 +17,9 @@ using namespace std;
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struct vertex;
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struct vertex;
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struct ele;
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struct ele;
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struct source : public gctl::point2dc
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{
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double rad;
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double slow;
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};
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struct vertex : public gctl::vertex2dc
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struct vertex : public gctl::vertex2dc
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{
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{
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int tag = 0; //0 = far away, 1 = close, 2 = active
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int tag = 0; //0 = far away, 1 = close, 2 = active
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double slow; // slow are constant within a element. a mean value must be set in local update
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double time = 1e+30;
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double time = 1e+30;
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double syn_time = 1e+30; //synthetic direct arrive time (only for error test)
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double syn_time = 1e+30; //synthetic direct arrive time (only for error test)
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vector<vertex*> v_neigh; //neighbor vertex unknown amount
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vector<vertex*> v_neigh; //neighbor vertex unknown amount
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@ -111,23 +104,20 @@ public:
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int ReadFiles(char* filename);
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int ReadFiles(char* filename);
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// output a Gmsh (.msh) file
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// output a Gmsh (.msh) file
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int OutMsh(char* filename, bool tag);
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int OutMsh(char* filename, bool tag);
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// initialize node slowness. slowness of the source will be used if default slowness is zero.
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void InitNodeSlowness(double default_slow = 0.0);
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// add abnormal slowness
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// add abnormal slowness
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void SetRectangeSlowness(double ab_slow,double xmin,double xmax,double ymin,double ymax);
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void SetRectangeSlowness(double ab_slow,double xmin,double xmax,double ymin,double ymax);
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// initialize triangle's slowness
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// initialize triangle's slowness
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void InitEleSlowness();
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void InitEleSlowness(double in_slow);
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// calculate synthetic direct arrive time and fmm time
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// calculate synthetic direct arrive time and fmm time
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void CalculateSolution();
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void CalculateSolution(double bkg_slow);
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// set source parameters
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// set source parameters
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int set_init_source(double x,double y,double r,double s);
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void set_init_source(const gctl::point2dc &loc);
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private:
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private:
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int node_num_, ele_num_;
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size_t node_num_, ele_num_, src_id_;
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vector<vertex> nodes_;
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vector<vertex> nodes_;
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vector<ele> elements_;
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vector<ele> elements_;
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vector<vertex*> nodes_ptr_;
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vector<vertex*> nodes_ptr_;
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source init_source_;
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};
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};
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int FMM_2D_TRIANGLE::ReadFiles(char* filename)
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int FMM_2D_TRIANGLE::ReadFiles(char* filename)
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@ -364,52 +354,32 @@ int FMM_2D_TRIANGLE::OutMsh(char* filename, bool tag)
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return 0;
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return 0;
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}
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}
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void FMM_2D_TRIANGLE::InitNodeSlowness(double default_slow)
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{
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// if no background slowness is given.
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// set all node's slowness as the same as source's slowness.
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if (default_slow == 0.0)
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{
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for (int i = 0; i < node_num_; i++)
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{
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nodes_[i].slow = init_source_.slow;
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}
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}
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else
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{
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for (int i = 0; i < node_num_; i++)
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{
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nodes_[i].slow = default_slow;
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}
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}
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return;
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}
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// set slowness within a rectangular area.
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// set slowness within a rectangular area.
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void FMM_2D_TRIANGLE::SetRectangeSlowness(double ab_slow,double xmin,double xmax,double ymin,double ymax)
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void FMM_2D_TRIANGLE::SetRectangeSlowness(double ab_slow,double xmin,double xmax,double ymin,double ymax)
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{
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{
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for (int i = 0; i < node_num_; i++)
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gctl::point2dc cen;
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for (int i = 0; i < ele_num_; i++)
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{
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{
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if (nodes_[i].x >= xmin && nodes_[i].x <= xmax &&
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cen = 1.0/3.0 * (*elements_[i].vec_ptr[0] + *elements_[i].vec_ptr[1] + *elements_[i].vec_ptr[2]);
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nodes_[i].y >= ymin && nodes_[i].y <= ymax)
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if (cen.x >= xmin && cen.x <= xmax && cen.y >= ymin && cen.y <= ymax)
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{
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{
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nodes_[i].slow = ab_slow;
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elements_[i].slow = ab_slow;
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}
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}
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}
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}
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return;
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return;
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}
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}
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// set element's slowness as the mean value of three vertice's slowness.
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// set element's slowness as the mean value of three vertice's slowness.
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void FMM_2D_TRIANGLE::InitEleSlowness()
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void FMM_2D_TRIANGLE::InitEleSlowness(double in_slow)
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{
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{
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for (int i = 0; i < ele_num_; i++)
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for (int i = 0; i < ele_num_; i++)
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{
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{
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elements_[i].slow = (elements_[i].vec_ptr[0]->slow + elements_[i].vec_ptr[1]->slow + elements_[i].vec_ptr[2]->slow)/3.0;
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elements_[i].slow = in_slow;
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}
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}
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return;
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return;
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}
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}
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void FMM_2D_TRIANGLE::CalculateSolution()
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void FMM_2D_TRIANGLE::CalculateSolution(double bkg_slow)
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{
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{
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time_t start_time, stop_time;
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time_t start_time, stop_time;
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start_time = time(NULL);
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start_time = time(NULL);
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@ -419,19 +389,7 @@ void FMM_2D_TRIANGLE::CalculateSolution()
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//this calculation is only valid for testing when there is no abnormal slowness or obstacles.
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//this calculation is only valid for testing when there is no abnormal slowness or obstacles.
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for (int i = 0; i < node_num_; i++)
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for (int i = 0; i < node_num_; i++)
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{
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{
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nodes_[i].syn_time = gctl::distance(nodes_[i], init_source_) * init_source_.slow;
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nodes_[i].syn_time = gctl::distance(nodes_[i], nodes_[src_id_]) * bkg_slow;
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}
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//initialize source nodes and close nodes
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//set a vertex's tag as 'active' if it is inside the initial radius
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//and calculate node's time as direct arrival time
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for (int i = 0; i < node_num_; i++)
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{
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if (gctl::distance(nodes_[i], init_source_) <= init_source_.rad)
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{
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nodes_[i].tag = 2;
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nodes_[i].time = gctl::distance(nodes_[i], init_source_) * init_source_.slow;
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}
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}
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}
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//set all close vertice's tag to 'close' and add them to wave front list
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//set all close vertice's tag to 'close' and add them to wave front list
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@ -450,18 +408,6 @@ void FMM_2D_TRIANGLE::CalculateSolution()
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}
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}
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}
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}
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//assign initial tags for elements
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//set an element as calculated only if all its three vectice are activated.
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for (int i = 0; i < ele_num_; i++)
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{
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if (elements_[i].vec_ptr[0]->tag == 2 &&
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elements_[i].vec_ptr[1]->tag == 2 &&
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elements_[i].vec_ptr[2]->tag == 2)
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{
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elements_[i].tag = 1;
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}
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}
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//calculate trial time for all close nodes
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//calculate trial time for all close nodes
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for (int i = 0; i < nodes_ptr_.size(); i++)
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for (int i = 0; i < nodes_ptr_.size(); i++)
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{
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{
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@ -504,19 +450,38 @@ void FMM_2D_TRIANGLE::CalculateSolution()
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return;
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return;
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}
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}
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int FMM_2D_TRIANGLE::set_init_source(double x, double y, double r, double s)
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void FMM_2D_TRIANGLE::set_init_source(const gctl::point2dc &loc)
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{
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{
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if (s <=0 || r <= 0)
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// Find the closest node and make it the source
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double dist, mini_dist = 1e+30;
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for (size_t i = 0; i < node_num_; i++)
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{
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{
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cerr << "source initialization error!" << endl;
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dist = gctl::distance(loc, nodes_[i]);
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return -1;
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if (dist < mini_dist)
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}
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else
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{
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{
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init_source_.x = x; init_source_.y = y;
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mini_dist = dist;
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init_source_.slow = s; init_source_.rad = r;
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src_id_ = i;
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return 0;
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}
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}
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}
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// initiate the source time
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nodes_[src_id_].time = 0.0;
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nodes_[src_id_].tag = 2;
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for (size_t i = 0; i < nodes_[src_id_].e_neigh.size(); i++)
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{
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nodes_[src_id_].e_neigh[i]->tag = 1;
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for (size_t j = 0; j < 3; j++)
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{
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if (nodes_[src_id_].e_neigh[i]->vec_ptr[j]->id != src_id_)
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{
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dist = gctl::distance(nodes_[src_id_], *nodes_[src_id_].e_neigh[i]->vec_ptr[j]);
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nodes_[src_id_].e_neigh[i]->vec_ptr[j]->time = nodes_[src_id_].e_neigh[i]->slow * dist;
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nodes_[src_id_].e_neigh[i]->vec_ptr[j]->tag = 2;
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}
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}
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}
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return;
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}
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}
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/*******************************************main function here*****************************/
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/*******************************************main function here*****************************/
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@ -535,17 +500,17 @@ int main(int argc, char* argv[])
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}
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}
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else if (!strcmp(argv[1],"calculate"))
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else if (!strcmp(argv[1],"calculate"))
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{
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{
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double s_x, s_y, s_rad, s_slow;
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if(instance.ReadFiles(argv[2])) return 0;
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if (4 != sscanf(argv[3], "%lf/%lf/%lf/%lf", &s_x, &s_y, &s_rad, &s_slow))
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double s_x, s_y, s_slow;
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if (3 != sscanf(argv[3], "%lf/%lf/%lf", &s_x, &s_y, &s_slow))
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{
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{
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cerr << "wrong source parameter." << endl;
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cerr << "wrong source parameter." << endl;
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return 0;
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return 0;
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}
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}
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//set slowness here
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if(instance.set_init_source(s_x, s_y, s_rad, s_slow)) return 0;
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instance.InitEleSlowness(s_slow);
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if(instance.ReadFiles(argv[2])) return 0;
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instance.set_init_source(gctl::point2dc(s_x, s_y));
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//set node slowness here
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instance.InitNodeSlowness();
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//add abnormal slowness
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//add abnormal slowness
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double ab_slow, ab_xmin, ab_xmax, ab_ymin, ab_ymax;
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double ab_slow, ab_xmin, ab_xmax, ab_ymin, ab_ymax;
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@ -569,9 +534,7 @@ int main(int argc, char* argv[])
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}
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}
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}
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}
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// set element slowness here
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instance.CalculateSolution(s_slow);
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instance.InitEleSlowness();
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instance.CalculateSolution();
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if(instance.OutMsh(argv[2],true)) return 0;
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if(instance.OutMsh(argv[2],true)) return 0;
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}
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}
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return 0;
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return 0;
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