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PolygonalWireAntenna.cpp 9.8KB

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  1. /* This file is part of Lemma, a geophysical modelling and inversion API */
  2. /* This Source Code Form is subject to the terms of the Mozilla Public
  3. * License, v. 2.0. If a copy of the MPL was not distributed with this
  4. * file, You can obtain one at http://mozilla.org/MPL/2.0/. */
  5. /**
  6. @file
  7. @author Trevor Irons
  8. @date 05/18/2010
  9. @version $Id: PolygonalWireAntenna.cpp 211 2015-02-27 05:43:26Z tirons $
  10. **/
  11. #include "PolygonalWireAntenna.h"
  12. namespace Lemma {
  13. std::ostream &operator << (std::ostream &stream, const PolygonalWireAntenna &ob) {
  14. stream << ob.Serialize() << "\n---\n"; // End of doc --- as a direct stream should encapulste thingy
  15. return stream;
  16. }
  17. // ==================== LIFECYCLE =======================
  18. PolygonalWireAntenna::PolygonalWireAntenna( const ctor_key& key ) : WireAntenna( WireAntenna::ctor_key() ), minDipoleRatio(.15),
  19. minDipoleMoment(1e-6), maxDipoleMoment(1e1), rRepeat(1e10,1e10,1e10) {
  20. Points.setZero();
  21. //rRepeat.setOnes();
  22. }
  23. PolygonalWireAntenna::PolygonalWireAntenna( const YAML::Node& node, const ctor_key& ) : WireAntenna(node, WireAntenna::ctor_key() ) {
  24. minDipoleRatio = node["minDipoleRatio"].as<Real>();
  25. maxDipoleMoment = node["maxDipoleMoment"].as<Real>();
  26. minDipoleMoment = node["minDipoleMoment"].as<Real>();
  27. }
  28. PolygonalWireAntenna::~PolygonalWireAntenna() {
  29. }
  30. //--------------------------------------------------------------------------------------
  31. // Class: PolygonalWireAntenna
  32. // Method: Serialize
  33. //--------------------------------------------------------------------------------------
  34. YAML::Node PolygonalWireAntenna::Serialize ( ) const {
  35. YAML::Node node = WireAntenna::Serialize();
  36. node.SetTag( this->GetName() );
  37. node["minDipoleRatio"] = minDipoleRatio;
  38. node["maxDipoleMoment"] = maxDipoleMoment;
  39. node["minDipoleMoment"] = minDipoleMoment;
  40. return node;
  41. } // ----- end of method PolygonalWireAntenna::Serialize -----
  42. //--------------------------------------------------------------------------------------
  43. // Class: WireAntenna
  44. // Method: DeSerialize
  45. //--------------------------------------------------------------------------------------
  46. std::shared_ptr<PolygonalWireAntenna> PolygonalWireAntenna::DeSerialize ( const YAML::Node& node ) {
  47. if (node.Tag() != "PolygonalWireAntenna") {
  48. throw DeSerializeTypeMismatch( "PolygonalWireAntenna", node.Tag());
  49. }
  50. return std::make_shared<PolygonalWireAntenna> ( node, ctor_key() );
  51. } // ----- end of method WireAntenna::DeSerialize -----
  52. std::shared_ptr<PolygonalWireAntenna> PolygonalWireAntenna::NewSP() {
  53. return std::make_shared<PolygonalWireAntenna>( ctor_key() );
  54. }
  55. std::shared_ptr<WireAntenna> PolygonalWireAntenna::Clone() {
  56. auto copy = PolygonalWireAntenna::NewSP();
  57. copy->minDipoleRatio = this->minDipoleRatio;
  58. copy->minDipoleMoment = this->minDipoleMoment;
  59. copy->maxDipoleMoment = this->maxDipoleMoment;
  60. copy->NumberOfPoints = this->NumberOfPoints;
  61. copy->Freqs = this->Freqs;
  62. copy->Current = this->Current;
  63. copy->NumberOfTurns = this->NumberOfTurns;
  64. copy->Points = this->Points;
  65. //copy->Dipoles = this->Dipoles; // no, disaster
  66. return copy;
  67. }
  68. void PolygonalWireAntenna::SetMinDipoleRatio (const Real& ratio) {
  69. minDipoleRatio = ratio;
  70. }
  71. void PolygonalWireAntenna::SetMinDipoleMoment (const Real& m) {
  72. minDipoleMoment = m;
  73. }
  74. void PolygonalWireAntenna::SetMaxDipoleMoment (const Real& m) {
  75. maxDipoleMoment = m;
  76. }
  77. // ==================== OPERATIONS =======================
  78. void PolygonalWireAntenna::ApproximateWithElectricDipoles(const Vector3r &rp) {
  79. // Only resplit if necessary. Save a few cycles if repeated
  80. if ( (rRepeat-rp).norm() > 1e-16 ) {
  81. Dipoles.clear();
  82. // loop over all segments
  83. for (int iseg=0; iseg<NumberOfPoints-1; ++iseg) {
  84. InterpolateLineSegment(Points.col(iseg), Points.col(iseg+1), rp);
  85. }
  86. rRepeat = rp;
  87. } else {
  88. for (unsigned int id=0; id<Dipoles.size(); ++id) {
  89. Dipoles[id]->SetFrequencies(Freqs);
  90. }
  91. }
  92. }
  93. Vector3r PolygonalWireAntenna::ClosestPointOnLine(const Vector3r &p1,
  94. const Vector3r &p2, const Vector3r &tp) {
  95. Vector3r v1 = p2 - p1;
  96. Vector3r v2 = p1 - tp;
  97. Vector3r v3 = p1 - p2;
  98. Vector3r v4 = p2 - tp;
  99. Real dot1 = v2.dot(v1);
  100. Real dot2 = v1.dot(v1);
  101. Real dot3 = v4.dot(v3);
  102. Real dot4 = v3.dot(v3);
  103. Real t1 = -1.*dot1/dot2;
  104. Real t2 = -1.*dot3/dot4;
  105. Vector3r pos = p1+v1*t1 ;
  106. // check if on line
  107. // else give back the closest end point
  108. if ( t1>=0 && t2>=0. ) {
  109. return pos;
  110. } else if (t1<0) {
  111. return p1;
  112. } else {
  113. return p2;
  114. }
  115. }
  116. void PolygonalWireAntenna::PushXYZDipoles(const Vector3r &step,
  117. const Vector3r &cp, const Vector3r &dir,
  118. std::vector< std::shared_ptr<DipoleSource> > &xDipoles) {
  119. Real scale = (Real)(NumberOfTurns)*Current;
  120. auto tx = DipoleSource::NewSP();
  121. tx->SetLocation(cp);
  122. tx->SetType(UNGROUNDEDELECTRICDIPOLE);
  123. tx->SetPolarisation(dir);
  124. tx->SetFrequencies(Freqs);
  125. tx->SetMoment(scale*step.norm());
  126. xDipoles.push_back(tx);
  127. }
  128. void PolygonalWireAntenna::CorrectOverstepXYZDipoles(const Vector3r &step,
  129. const Vector3r &cp, const Vector3r &dir,
  130. std::vector< std::shared_ptr<DipoleSource> > &xDipoles ) {
  131. Real scale = (Real)(NumberOfTurns)*Current;
  132. // X oriented dipoles
  133. if (step.norm() > minDipoleMoment) {
  134. xDipoles[xDipoles.size()-1]->SetLocation(cp);
  135. xDipoles[xDipoles.size()-1]->SetMoment(scale*step.norm());
  136. }
  137. }
  138. void PolygonalWireAntenna::InterpolateLineSegment(const Vector3r &p1,
  139. const Vector3r &p2, const Vector3r & tp) {
  140. Vector3r phat = (p1-p2).array() / (p1-p2).norm();
  141. Vector3r c = this->ClosestPointOnLine(p1, p2, tp);
  142. Real dtp = (tp-c).norm(); // distance to point at c
  143. Real dc1 = (p1-c).norm(); // distance to c from p1
  144. Real dc2 = (p2-c).norm(); // distance to c from p1
  145. // unit vector
  146. Vector3r cdir = (p2-p1).array() / (p2-p1).norm();
  147. ///////////////////
  148. // dipoles for this segment
  149. std::vector< std::shared_ptr<DipoleSource> > xDipoles;
  150. // go towards p1
  151. if ( ((c-p1).array().abs() > minDipoleMoment).any() ) {
  152. // cp = current pos, lp = last pos
  153. Vector3r cp = c + phat*(dtp*minDipoleRatio)*.5;
  154. Vector3r lp = c;
  155. Real dist = (cp-p1).norm();
  156. Real dist_old = dist+1.;
  157. // check that we didn't run past the end, or that we aren't starting at
  158. // the end, or that initial step runs over!
  159. Vector3r dir = (p1-cp).array() / (p1-cp).norm(); // direction of movement
  160. Vector3r step = phat*(dtp*minDipoleRatio);
  161. Vector3r stepold = Vector3r::Zero();
  162. // (dir-phat) just shows if we are stepping towards or away from p1
  163. while (dist < dist_old && (dir-phat).norm() < 1e-8) {
  164. PushXYZDipoles(step, cp, cdir, xDipoles);
  165. // Make 1/2 of previous step, 1/2 of this step, store this step
  166. stepold = step;
  167. step = phat*( (cp-tp).norm()*minDipoleRatio );
  168. while ( (step.array().abs() > maxDipoleMoment).any() ) {
  169. step *= .5;
  170. }
  171. lp = cp;
  172. cp += .5*stepold + .5*step;
  173. dist = (cp-p1).norm();
  174. dir = (p1-cp).array() / (p1-cp).norm();
  175. }
  176. // cp now points to end last of dipole moments
  177. cp -= .5*step;
  178. // Fix last dipole position, so that entire wire is represented,
  179. // and no more
  180. Real distLastSeg = (c - cp).norm();
  181. if (distLastSeg + minDipoleMoment < dc1) {
  182. // case 1: understep, add dipole
  183. step = (p1-cp).array();
  184. cp += .5*step;
  185. PushXYZDipoles(step, cp, cdir, xDipoles);
  186. } else if (distLastSeg > dc1 + minDipoleMoment) {
  187. // case 2: overstep, reposition dipole and size
  188. step = (p1 - (lp-.5*stepold));
  189. cp = (lp-.5*stepold) + (.5*step);
  190. CorrectOverstepXYZDipoles(step, cp, cdir, xDipoles);
  191. }
  192. // else case 0: nearly 'perfect' fit do nothing
  193. }
  194. // go towards p2
  195. if ( ( (c-p2).array().abs() > minDipoleMoment).any() ) {
  196. // cp = current pos, lp = last pos
  197. Vector3r step = -phat*(dtp*minDipoleRatio);
  198. while ( (step.array().abs() > maxDipoleMoment).any() ) {
  199. step *= .5;
  200. }
  201. Vector3r cp = c + step*.5;
  202. Vector3r lp = c;
  203. Real dist = (p2-cp).norm();
  204. Real dist_old = dist+1e3;
  205. // check that we didn't run past the end, or that we aren't starting at
  206. // the end, or that initial step runs over!
  207. Vector3r dir = (p2-cp).array() / (p2-cp).norm(); // direction of movement
  208. Vector3r stepold = Vector3r::Zero();
  209. // (dir-phat) just shows if we are stepping towards or away from p1
  210. while (dist < dist_old && (dir+phat).norm() < 1e-8) {
  211. PushXYZDipoles(step, cp, cdir, xDipoles);
  212. // Make 1/2 of previous step, 1/2 of this step, store this step
  213. stepold = step;
  214. step = -phat*( (cp-tp).norm()*minDipoleRatio );
  215. while ( (step.array().abs() > maxDipoleMoment).any() ) {
  216. step *= .5;
  217. }
  218. lp = cp;
  219. cp += .5*stepold + .5*step;
  220. dist = (cp-p2).norm();
  221. dir = (p2-cp).array() / (p2-cp).norm();
  222. }
  223. // cp now points to end last of dipole moments
  224. cp -= .5*step;
  225. // Fix last dipole position, so that entire wire is represented,
  226. // and no more
  227. Real distLastSeg = (c - cp).norm();
  228. if (distLastSeg + minDipoleMoment < dc2) {
  229. // case 1: understep, add dipole
  230. step = (p2-cp).array();
  231. cp += .5*step;
  232. PushXYZDipoles(step, cp, cdir, xDipoles);
  233. } else if (distLastSeg > dc2 + minDipoleMoment) {
  234. // case 2: overstep, reposition dipole and size
  235. step = (p2 - (lp-.5*stepold));
  236. cp = (lp-.5*stepold) + (.5*step);
  237. CorrectOverstepXYZDipoles(step, cp, cdir, xDipoles);
  238. }
  239. // else case 0: nearly 'perfect' fit do nothing
  240. }
  241. Dipoles.insert(Dipoles.end(), xDipoles.begin(), xDipoles.end());
  242. }
  243. }