raymathext.d 5.8 KB

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  1. module raymathext;
  2. import raylib;
  3. import std.math;
  4. pragma(inline, true):
  5. version (unittest)
  6. {
  7. import fluent.asserts;
  8. }
  9. mixin template Linear()
  10. {
  11. import std.algorithm : canFind, map;
  12. import std.range : join;
  13. import std.traits : FieldNameTuple;
  14. private static alias T = typeof(this);
  15. static T zero()
  16. {
  17. enum fragment = [FieldNameTuple!T].map!(field => "0.").join(",");
  18. return mixin("T(" ~ fragment ~ ")");
  19. }
  20. static T one()
  21. {
  22. enum fragment = [FieldNameTuple!T].map!(field => "1.").join(",");
  23. return mixin("T(" ~ fragment ~ ")");
  24. }
  25. inout T opUnary(string op)() if (["+", "-"].canFind(op))
  26. {
  27. enum fragment = [FieldNameTuple!T].map!(field => op ~ field).join(",");
  28. return mixin("T(" ~ fragment ~ ")");
  29. }
  30. static if (is(T == Rotor3))
  31. {
  32. /// Returns a rotor equivalent to first apply p, then apply q
  33. inout Rotor3 opBinary(string op)(inout Rotor3 q) if (op == "*")
  34. {
  35. alias p = this;
  36. Rotor3 r;
  37. r.a = p.a * q.a - p.i * q.i - p.j * q.j - p.k * q.k;
  38. r.i = p.i * q.a + p.a * q.i + p.j * q.k - p.k * q.j;
  39. r.j = p.j * q.a + p.a * q.j + p.k * q.i - p.i * q.k;
  40. r.k = p.k * q.a + p.a * q.k + p.i * q.j - p.j * q.i;
  41. return r;
  42. }
  43. inout Vector3 opBinary(string op)(inout Vector3 v) if (op == "*")
  44. {
  45. Vector3 rv;
  46. rv.x = a * v.x + xy * v.y - zx * v.z;
  47. rv.y = a * v.y + yz * v.z - xy * v.x;
  48. rv.z = a * v.z + zx * v.x - yz * v.y;
  49. return rv;
  50. }
  51. inout Vector3 opBinaryRight(string op)(inout Vector3 v) if (op == "*")
  52. {
  53. Vector3 vr;
  54. vr.x = v.x * a - v.y * xy + v.z * zx;
  55. vr.y = v.y * a - v.z * yz + v.x * xy;
  56. vr.z = v.z * a - v.x * zx + v.y * yz;
  57. return vr;
  58. }
  59. }
  60. else
  61. {
  62. inout T opBinary(string op)(inout T rhs) if (["+", "-"].canFind(op))
  63. {
  64. enum fragment = [FieldNameTuple!T].map!(field => field ~ op ~ "rhs." ~ field).join(",");
  65. return mixin("T(" ~ fragment ~ ")");
  66. }
  67. }
  68. inout T opBinary(string op)(inout float rhs) if (["+", "-", "*", "/"].canFind(op))
  69. {
  70. enum fragment = [FieldNameTuple!T].map!(field => field ~ op ~ "rhs").join(",");
  71. return mixin("T(" ~ fragment ~ ")");
  72. }
  73. inout T opBinaryRight(string op)(inout float lhs) if (["+", "-", "*", "/"].canFind(op))
  74. {
  75. enum fragment = [FieldNameTuple!T].map!(field => "lhs" ~ op ~ field).join(",");
  76. return mixin("T(" ~ fragment ~ ")");
  77. }
  78. }
  79. unittest
  80. {
  81. Assert.equal(Vector2.init, Vector2.zero);
  82. Assert.equal(Vector2(), Vector2.zero);
  83. Assert.equal(-Vector2(1, 2), Vector2(-1, -2));
  84. auto a = Vector3(1, 2, 9);
  85. immutable b = Vector3(3, 4, 9);
  86. Vector3 c = a + b;
  87. Assert.equal(c, Vector3(4, 6, 18));
  88. Assert.equal(4.0f - Vector2.zero, Vector2(4, 4));
  89. Assert.equal(Vector2.one - 3.0f, Vector2(-2, -2));
  90. }
  91. import std.traits : FieldNameTuple;
  92. import std.algorithm : map;
  93. import std.range : join;
  94. float length(T)(T v)
  95. {
  96. enum fragment = [FieldNameTuple!T].map!(field => "v." ~ field ~ "*" ~ "v." ~ field).join("+");
  97. return mixin("sqrt(" ~ fragment ~ ")");
  98. }
  99. T normal(T)(T v)
  100. {
  101. return v / v.length;
  102. }
  103. float distance(T)(T lhs, T rhs)
  104. {
  105. return (lhs - rhs).length;
  106. }
  107. float dot(T)(T lhs, T rhs)
  108. {
  109. enum fragment = [FieldNameTuple!T].map!(field => "lhs." ~ field ~ "*" ~ "rhs." ~ field).join(
  110. "+");
  111. return mixin(fragment);
  112. }
  113. unittest
  114. {
  115. Assert.equal(Vector2(3, 4).length, 5);
  116. const a = Vector2(-3, 4);
  117. Assert.equal(a.normal, Vector2(-3. / 5., 4. / 5.));
  118. immutable b = Vector2(9, 8);
  119. Assert.equal(b.distance(Vector2(-3, 3)), 13);
  120. Assert.equal(Vector3(2, 3, 4).dot(Vector3(4, 5, 6)), 47);
  121. Assert.equal(Vector2.one.length, sqrt(2.0f));
  122. }
  123. unittest
  124. {
  125. Assert.equal(Rotor3(1, 2, 3, 4), Rotor3(1, Bivector3(2, 3, 4)));
  126. }
  127. /// Mix `amount` of `lhs` with `1-amount` of `rhs`
  128. /// `amount` should be between 0 and 1, but can be anything
  129. /// lerp(lhs, rhs, 0) == lhs
  130. /// lerp(lhs, rhs, 1) == rhs
  131. T lerp(T)(T lhs, T rhs, float amount)
  132. {
  133. return lhs + amount * (rhs - lhs);
  134. }
  135. /// angle betwenn vector and x-axis (+y +x -> positive)
  136. float angle(Vector2 v)
  137. {
  138. return atan2(v.y, v.x);
  139. }
  140. Vector2 rotate(Vector2 v, float angle)
  141. {
  142. return Vector2(v.x * cos(angle) - v.y * sin(angle), v.x * sin(angle) + v.y * cos(angle));
  143. }
  144. Vector2 slide(Vector2 v, Vector2 along)
  145. {
  146. return along.normal * dot(v, along);
  147. }
  148. Bivector2 wedge(Vector2 lhs, Vector2 rhs)
  149. {
  150. Bivector2 result = {xy: lhs.x * rhs.y - lhs.y * rhs.x};
  151. return result;
  152. }
  153. // dfmt off
  154. Bivector3 wedge(Vector3 lhs, Vector3 rhs)
  155. {
  156. Bivector3 result = {
  157. xy: lhs.x * rhs.y - lhs.y * rhs.x,
  158. yz: lhs.y * rhs.z - lhs.z * rhs.y,
  159. zx: lhs.z * rhs.x - lhs.x * rhs.z,
  160. };
  161. return result;
  162. }
  163. Vector3 transform(Vector3 v, Matrix4 mat)
  164. {
  165. with (v) with (mat)
  166. return Vector3(
  167. m0 * x + m4 * y + m8 * z + m12,
  168. m1 * x + m5 * y + m9 * z + m13,
  169. m2 * x + m6 * y + m10 * z + m14
  170. );
  171. }
  172. // dfmt on
  173. Vector3 cross(Vector3 lhs, Vector3 rhs)
  174. {
  175. auto v = wedge(lhs, rhs);
  176. return Vector3(v.yz, v.zx, v.xy);
  177. }
  178. unittest {
  179. // TODO
  180. }
  181. /// Returns a unit rotor that rotates `from` to `to`
  182. Rotor3 rotation(Vector3 from, Vector3 to)
  183. {
  184. return Rotor3(1 + dot(to, from), wedge(to, from)).normal;
  185. }
  186. Rotor3 rotation(float angle, Bivector3 plane)
  187. {
  188. return Rotor3(cos(angle / 2.0f), -sin(angle / 2.0f) * plane);
  189. }
  190. /// Rotate q by p
  191. Rotor3 rotate(Rotor3 p, Rotor3 q)
  192. {
  193. return p * q * p.reverse;
  194. }
  195. /// Rotate v by r
  196. Vector3 rotate(Rotor3 r, Vector3 v)
  197. {
  198. return r * v * r.reverse;
  199. }
  200. Rotor3 reverse(Rotor3 r)
  201. {
  202. return Rotor3(r.a, -r.b);
  203. }
  204. unittest
  205. {
  206. // TODO
  207. }