gtx_dual_quaternion.cpp 5.8 KB

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  1. #include <glm/gtx/dual_quaternion.hpp>
  2. #include <glm/gtc/matrix_transform.hpp>
  3. #include <glm/gtc/epsilon.hpp>
  4. #include <glm/gtx/euler_angles.hpp>
  5. #include <glm/vector_relational.hpp>
  6. #if GLM_HAS_TRIVIAL_QUERIES
  7. # include <type_traits>
  8. #endif
  9. int myrand()
  10. {
  11. static int holdrand = 1;
  12. return (((holdrand = holdrand * 214013L + 2531011L) >> 16) & 0x7fff);
  13. }
  14. float myfrand() // returns values from -1 to 1 inclusive
  15. {
  16. return float(double(myrand()) / double( 0x7ffff )) * 2.0f - 1.0f;
  17. }
  18. int test_dquat_type()
  19. {
  20. glm::dvec3 vA;
  21. glm::dquat dqA,dqB;
  22. glm::ddualquat C(dqA,dqB);
  23. glm::ddualquat B(dqA);
  24. glm::ddualquat D(dqA,vA);
  25. return 0;
  26. }
  27. int test_scalars()
  28. {
  29. float const Epsilon = 0.0001f;
  30. int Error(0);
  31. glm::quat src_q1 = glm::quat(1.0f,2.0f,3.0f,4.0f);
  32. glm::quat src_q2 = glm::quat(5.0f,6.0f,7.0f,8.0f);
  33. glm::dualquat src1(src_q1,src_q2);
  34. {
  35. glm::dualquat dst1 = src1 * 2.0f;
  36. glm::dualquat dst2 = 2.0f * src1;
  37. glm::dualquat dst3 = src1;
  38. dst3 *= 2.0f;
  39. glm::dualquat dstCmp(src_q1 * 2.0f,src_q2 * 2.0f);
  40. Error += glm::all(glm::epsilonEqual(dst1.real,dstCmp.real, Epsilon)) && glm::all(glm::epsilonEqual(dst1.dual,dstCmp.dual, Epsilon)) ? 0 : 1;
  41. Error += glm::all(glm::epsilonEqual(dst2.real,dstCmp.real, Epsilon)) && glm::all(glm::epsilonEqual(dst2.dual,dstCmp.dual, Epsilon)) ? 0 : 1;
  42. Error += glm::all(glm::epsilonEqual(dst3.real,dstCmp.real, Epsilon)) && glm::all(glm::epsilonEqual(dst3.dual,dstCmp.dual, Epsilon)) ? 0 : 1;
  43. }
  44. {
  45. glm::dualquat dst1 = src1 / 2.0f;
  46. glm::dualquat dst2 = src1;
  47. dst2 /= 2.0f;
  48. glm::dualquat dstCmp(src_q1 / 2.0f,src_q2 / 2.0f);
  49. Error += glm::all(glm::epsilonEqual(dst1.real,dstCmp.real, Epsilon)) && glm::all(glm::epsilonEqual(dst1.dual,dstCmp.dual, Epsilon)) ? 0 : 1;
  50. Error += glm::all(glm::epsilonEqual(dst2.real,dstCmp.real, Epsilon)) && glm::all(glm::epsilonEqual(dst2.dual,dstCmp.dual, Epsilon)) ? 0 : 1;
  51. }
  52. return Error;
  53. }
  54. int test_inverse()
  55. {
  56. int Error(0);
  57. float const Epsilon = 0.0001f;
  58. glm::dualquat dqid;
  59. glm::mat4x4 mid(1.0f);
  60. for (int j = 0; j < 100; ++j)
  61. {
  62. glm::mat4x4 rot = glm::yawPitchRoll(myfrand() * 360.0f, myfrand() * 360.0f, myfrand() * 360.0f);
  63. glm::vec3 vt = glm::vec3(myfrand() * 10.0f, myfrand() * 10.0f, myfrand() * 10.0f);
  64. glm::mat4x4 m = glm::translate(mid, vt) * rot;
  65. glm::quat qr = glm::quat_cast(m);
  66. glm::dualquat dq(qr);
  67. glm::dualquat invdq = glm::inverse(dq);
  68. glm::dualquat r1 = invdq * dq;
  69. glm::dualquat r2 = dq * invdq;
  70. Error += glm::all(glm::epsilonEqual(r1.real, dqid.real, Epsilon)) && glm::all(glm::epsilonEqual(r1.dual, dqid.dual, Epsilon)) ? 0 : 1;
  71. Error += glm::all(glm::epsilonEqual(r2.real, dqid.real, Epsilon)) && glm::all(glm::epsilonEqual(r2.dual, dqid.dual, Epsilon)) ? 0 : 1;
  72. // testing commutative property
  73. glm::dualquat r ( glm::quat( myfrand() * glm::pi<float>() * 2.0f, myfrand(), myfrand(), myfrand() ),
  74. glm::vec3(myfrand() * 10.0f, myfrand() * 10.0f, myfrand() * 10.0f) );
  75. glm::dualquat riq = (r * invdq) * dq;
  76. glm::dualquat rqi = (r * dq) * invdq;
  77. Error += glm::all(glm::epsilonEqual(riq.real, rqi.real, Epsilon)) && glm::all(glm::epsilonEqual(riq.dual, rqi.dual, Epsilon)) ? 0 : 1;
  78. }
  79. return Error;
  80. }
  81. int test_mul()
  82. {
  83. int Error(0);
  84. float const Epsilon = 0.0001f;
  85. glm::mat4x4 mid(1.0f);
  86. for (int j = 0; j < 100; ++j)
  87. {
  88. // generate random rotations and translations and compare transformed by matrix and dualquats random points
  89. glm::vec3 vt1 = glm::vec3(myfrand() * 10.0f, myfrand() * 10.0f, myfrand() * 10.0f);
  90. glm::vec3 vt2 = glm::vec3(myfrand() * 10.0f, myfrand() * 10.0f, myfrand() * 10.0f);
  91. glm::mat4x4 rot1 = glm::yawPitchRoll(myfrand() * 360.0f, myfrand() * 360.0f, myfrand() * 360.0f);
  92. glm::mat4x4 rot2 = glm::yawPitchRoll(myfrand() * 360.0f, myfrand() * 360.0f, myfrand() * 360.0f);
  93. glm::mat4x4 m1 = glm::translate(mid, vt1) * rot1;
  94. glm::mat4x4 m2 = glm::translate(mid, vt2) * rot2;
  95. glm::mat4x4 m3 = m2 * m1;
  96. glm::mat4x4 m4 = m1 * m2;
  97. glm::quat qrot1 = glm::quat_cast(rot1);
  98. glm::quat qrot2 = glm::quat_cast(rot2);
  99. glm::dualquat dq1 = glm::dualquat(qrot1,vt1);
  100. glm::dualquat dq2 = glm::dualquat(qrot2,vt2);
  101. glm::dualquat dq3 = dq2 * dq1;
  102. glm::dualquat dq4 = dq1 * dq2;
  103. for (int i = 0; i < 100; ++i)
  104. {
  105. glm::vec4 src_pt = glm::vec4(myfrand() * 4.0f, myfrand() * 5.0f, myfrand() * 3.0f,1.0f);
  106. // test both multiplication orders
  107. glm::vec4 dst_pt_m3 = m3 * src_pt;
  108. glm::vec4 dst_pt_dq3 = dq3 * src_pt;
  109. glm::vec4 dst_pt_m3_i = glm::inverse(m3) * src_pt;
  110. glm::vec4 dst_pt_dq3_i = src_pt * dq3;
  111. glm::vec4 dst_pt_m4 = m4 * src_pt;
  112. glm::vec4 dst_pt_dq4 = dq4 * src_pt;
  113. glm::vec4 dst_pt_m4_i = glm::inverse(m4) * src_pt;
  114. glm::vec4 dst_pt_dq4_i = src_pt * dq4;
  115. Error += glm::all(glm::epsilonEqual(dst_pt_m3, dst_pt_dq3, Epsilon)) ? 0 : 1;
  116. Error += glm::all(glm::epsilonEqual(dst_pt_m4, dst_pt_dq4, Epsilon)) ? 0 : 1;
  117. Error += glm::all(glm::epsilonEqual(dst_pt_m3_i, dst_pt_dq3_i, Epsilon)) ? 0 : 1;
  118. Error += glm::all(glm::epsilonEqual(dst_pt_m4_i, dst_pt_dq4_i, Epsilon)) ? 0 : 1;
  119. }
  120. }
  121. return Error;
  122. }
  123. int test_dual_quat_ctr()
  124. {
  125. int Error(0);
  126. # if GLM_HAS_TRIVIAL_QUERIES
  127. // Error += std::is_trivially_default_constructible<glm::dualquat>::value ? 0 : 1;
  128. // Error += std::is_trivially_default_constructible<glm::ddualquat>::value ? 0 : 1;
  129. // Error += std::is_trivially_copy_assignable<glm::dualquat>::value ? 0 : 1;
  130. // Error += std::is_trivially_copy_assignable<glm::ddualquat>::value ? 0 : 1;
  131. Error += std::is_trivially_copyable<glm::dualquat>::value ? 0 : 1;
  132. Error += std::is_trivially_copyable<glm::ddualquat>::value ? 0 : 1;
  133. Error += std::is_copy_constructible<glm::dualquat>::value ? 0 : 1;
  134. Error += std::is_copy_constructible<glm::ddualquat>::value ? 0 : 1;
  135. # endif
  136. return Error;
  137. }
  138. int main()
  139. {
  140. int Error(0);
  141. Error += test_dual_quat_ctr();
  142. Error += test_dquat_type();
  143. Error += test_scalars();
  144. Error += test_inverse();
  145. Error += test_mul();
  146. return Error;
  147. }