90_array2d.py 5.8 KB

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  1. from array2d import array2d
  2. from linalg import vec2i
  3. def exit_on_error():
  4. raise KeyboardInterrupt
  5. # test error args for __init__
  6. try:
  7. a = array2d(0, 0)
  8. exit_on_error()
  9. except ValueError:
  10. pass
  11. # test callable constructor
  12. a = array2d[int](2, 4, lambda pos: (pos.x, pos.y))
  13. assert a.width == a.n_cols == 2
  14. assert a.height == a.n_rows == 4
  15. assert a.shape == vec2i(2, 4)
  16. assert a.numel == 8
  17. assert a.tolist() == [
  18. [(0, 0), (1, 0)],
  19. [(0, 1), (1, 1)],
  20. [(0, 2), (1, 2)],
  21. [(0, 3), (1, 3)]]
  22. # test is_valid
  23. assert a.is_valid(0, 0) and a.is_valid(vec2i(0, 0))
  24. assert a.is_valid(1, 3) and a.is_valid(vec2i(1, 3))
  25. assert not a.is_valid(2, 0) and not a.is_valid(vec2i(2, 0))
  26. assert not a.is_valid(0, 4) and not a.is_valid(vec2i(0, 4))
  27. assert not a.is_valid(-1, 0) and not a.is_valid(vec2i(-1, 0))
  28. assert not a.is_valid(0, -1) and not a.is_valid(vec2i(0, -1))
  29. # test get
  30. assert a.get(0, 0, -1) == (0, 0)
  31. assert a.get(1, 3) == (1, 3)
  32. assert a.get(2, 0) is None
  33. assert a.get(0, 4, 'S') == 'S'
  34. # test __getitem__
  35. assert a[0, 0] == (0, 0)
  36. assert a[1, 3] == (1, 3)
  37. try:
  38. a[2, 0]
  39. exit_on_error()
  40. except IndexError:
  41. pass
  42. # test __setitem__
  43. a = array2d[int](2, 4, default=0)
  44. a[0, 0] = 5
  45. assert a[0, 0] == 5
  46. a[1, 3] = 6
  47. assert a[1, 3] == 6
  48. try:
  49. a[0, -1] = 7
  50. exit_on_error()
  51. except IndexError:
  52. pass
  53. # test tolist
  54. a_list = [[5, 0], [0, 0], [0, 0], [0, 6]]
  55. assert a_list == a.tolist()
  56. # test __eq__
  57. x = array2d(2, 4, default=0)
  58. b = array2d(2, 4, default=0)
  59. assert (x == b).all()
  60. b[0, 0] = 1
  61. assert (x != b).any()
  62. # test __repr__
  63. assert repr(a) == f'array2d(2, 4)'
  64. # test map
  65. c = a.map(lambda x: x + 1)
  66. assert c.tolist() == [[6, 1], [1, 1], [1, 1], [1, 7]]
  67. assert a.tolist() == [[5, 0], [0, 0], [0, 0], [0, 6]]
  68. assert c.width == c.n_cols == 2
  69. assert c.height == c.n_rows == 4
  70. assert c.numel == 8
  71. # test copy
  72. d = c.copy()
  73. assert (d == c).all() and d is not c
  74. # test fill_
  75. d[:, :] = -3 # d.fill_(-3)
  76. assert (d == array2d(2, 4, default=-3)).all()
  77. # test apply
  78. d.apply(lambda x: x + 3)
  79. assert (d == array2d(2, 4, default=0)).all()
  80. # test copy_
  81. a[:, :] = d
  82. assert (a == d).all() and a is not d
  83. x = array2d(2, 4, default=0)
  84. x[:, :] = d
  85. assert (x == d).all() and x is not d
  86. # test alive_neighbors
  87. a = array2d[int](3, 3, default=0)
  88. a[1, 1] = 1
  89. """ Moore von Neumann
  90. 0 0 0 1 1 1 0 1 0
  91. 0 1 0 1 0 1 1 0 1
  92. 0 0 0 1 1 1 0 1 0
  93. """
  94. moore_result = array2d(3, 3, default=1)
  95. moore_result[1, 1] = 0
  96. von_neumann_result = array2d(3, 3, default=0)
  97. von_neumann_result[0, 1] = von_neumann_result[1, 0] = von_neumann_result[1, 2] = von_neumann_result[2, 1] = 1
  98. _0 = a.count_neighbors(1, 'Moore')
  99. assert _0 == moore_result
  100. _1 = a.count_neighbors(1, 'von Neumann')
  101. assert _1 == von_neumann_result
  102. MOORE_KERNEL = array2d[int].fromlist([[1, 1, 1], [1, 0, 1], [1, 1, 1]])
  103. VON_NEUMANN_KERNEL = array2d.fromlist([[0, 1, 0], [1, 0, 1], [0, 1, 0]])
  104. moore_conv_result = a.convolve(MOORE_KERNEL, 0)
  105. assert (moore_conv_result == moore_result).all()
  106. von_neumann_conv_result = a.convolve(VON_NEUMANN_KERNEL, 0)
  107. assert (von_neumann_conv_result == von_neumann_result).all()
  108. # test slice get
  109. a = array2d(5, 5, default=0)
  110. b = array2d(3, 2, default=1)
  111. assert a[1:4, 1:4] == array2d(3, 3, default=0)
  112. assert a[1:4, 1:3] == array2d(3, 2, default=0)
  113. assert (a[1:4, 1:3] != b).any()
  114. a[1:4, 1:3] = b
  115. assert (a[1:4, 1:3] == b).all()
  116. """
  117. 0 0 0 0 0
  118. 0 1 1 1 0
  119. 0 1 1 1 0
  120. 0 0 0 0 0
  121. 0 0 0 0 0
  122. """
  123. assert a.count(1) == 3*2
  124. assert a.get_bounding_rect(1) == (1, 1, 3, 2)
  125. assert a.get_bounding_rect(0) == (0, 0, 5, 5)
  126. try:
  127. a.get_bounding_rect(2)
  128. exit_on_error()
  129. except ValueError:
  130. pass
  131. a = array2d(3, 2, default='?')
  132. # int/float/str/bool/None
  133. for value in [0, 0.0, '0', False, None]:
  134. a[0:2, 0:1] = value
  135. assert a[2, 1] == '?'
  136. assert a[0, 0] == value
  137. a[:, :] = 3
  138. assert a == array2d(3, 2, default=3)
  139. try:
  140. a[:, :] = array2d(1, 1)
  141. exit_on_error()
  142. except ValueError:
  143. pass
  144. # test __iter__
  145. a = array2d(3, 4, default=1)
  146. for xy, val in a:
  147. assert a[xy] == x
  148. # test convolve
  149. a = array2d[int].fromlist([[1, 0, 2, 4, 0], [3, 1, 0, 5, 1]])
  150. """
  151. 1 0 2 4 0
  152. 3 1 0 5 1
  153. """
  154. assert a.tolist() == [[1, 0, 2, 4, 0], [3, 1, 0, 5, 1]]
  155. kernel = array2d[int](3, 3, default=1)
  156. res = a.convolve(kernel, -1)
  157. """
  158. 0 4 9 9 5
  159. 0 4 9 9 5
  160. """
  161. assert res.tolist() == [[0, 4, 9, 9, 5], [0, 4, 9, 9, 5]]
  162. mask = res == 9
  163. assert mask.tolist() == [
  164. [False, False, True, True, False],
  165. [False, False, True, True, False]
  166. ]
  167. assert res[mask] == [9, 9, 9, 9]
  168. mask = res != 9
  169. assert mask.tolist() == [
  170. [True, True, False, False, True],
  171. [True, True, False, False, True]
  172. ]
  173. assert res[mask] == [0, 4, 5, 0, 4, 5]
  174. res[mask] = -1
  175. assert res.tolist() == [[-1, -1, 9, 9, -1], [-1, -1, 9, 9, -1]]
  176. # test get_connected_components
  177. a = array2d[int].fromlist([
  178. [1, 1, 0, 1],
  179. [0, 2, 2, 1],
  180. [0, 1, 1, 1],
  181. [1, 0, 0, 0],
  182. ])
  183. vis, cnt = a.get_connected_components(1, 'von Neumann')
  184. assert vis == [
  185. [1, 1, 0, 2],
  186. [0, 0, 0, 2],
  187. [0, 2, 2, 2],
  188. [3, 0, 0, 0]
  189. ]
  190. assert cnt == 3
  191. vis, cnt = a.get_connected_components(1, 'Moore')
  192. assert vis == [
  193. [1, 1, 0, 2],
  194. [0, 0, 0, 2],
  195. [0, 2, 2, 2],
  196. [2, 0, 0, 0]
  197. ]
  198. assert cnt == 2
  199. vis, cnt = a.get_connected_components(2, 'von Neumann')
  200. assert cnt == 1
  201. vis, cnt = a.get_connected_components(0, 'Moore')
  202. assert cnt == 2
  203. # stackoverflow bug due to recursive mark-and-sweep
  204. # class Cell:
  205. # neighbors: list['Cell']
  206. # cells: array2d[Cell] = array2d(192, 108, default=Cell)
  207. # OutOfBounds = Cell()
  208. # for x, y, cell in cells:
  209. # cell.neighbors = [
  210. # cells.get(x-1, y-1, OutOfBounds),
  211. # cells.get(x , y-1, OutOfBounds),
  212. # cells.get(x+1, y-1, OutOfBounds),
  213. # cells.get(x-1, y , OutOfBounds),
  214. # cells.get(x+1, y , OutOfBounds),
  215. # cells.get(x , y+1, OutOfBounds),
  216. # cells.get(x+1, y+1, OutOfBounds),
  217. # ]
  218. # import gc
  219. # gc.collect()