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test_math.py 3.4 kB

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  1. # -*- coding: utf-8 -*-
  2. # MegEngine is Licensed under the Apache License, Version 2.0 (the "License")
  3. #
  4. # Copyright (c) 2014-2020 Megvii Inc. All rights reserved.
  5. #
  6. # Unless required by applicable law or agreed to in writing,
  7. # software distributed under the License is distributed on an
  8. # "AS IS" BASIS, WITHOUT ARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
  9. import numpy as np
  10. from helpers import opr_test
  11. import megengine.functional as F
  12. def common_test_reduce(opr, ref_opr):
  13. data1_shape = (5, 6, 7)
  14. data2_shape = (2, 9, 12)
  15. data1 = np.random.random(data1_shape).astype(np.float32)
  16. data2 = np.random.random(data2_shape).astype(np.float32)
  17. cases = [{"input": data1}, {"input": data2}]
  18. if opr not in (F.argmin, F.argmax):
  19. # test default axis
  20. opr_test(cases, opr, ref_fn=ref_opr)
  21. # test all axises in range of input shape
  22. for axis in range(-3, 3):
  23. # test keepdims False
  24. opr_test(cases, opr, ref_fn=lambda x: ref_opr(x, axis=axis), axis=axis)
  25. # test keepdims True
  26. opr_test(
  27. cases,
  28. opr,
  29. ref_fn=lambda x: ref_opr(x, axis=axis, keepdims=True),
  30. axis=axis,
  31. keepdims=True,
  32. )
  33. else:
  34. # test defaut axis
  35. opr_test(cases, opr, ref_fn=lambda x: ref_opr(x).astype(np.int32))
  36. # test all axises in range of input shape
  37. for axis in range(0, 3):
  38. opr_test(
  39. cases,
  40. opr,
  41. ref_fn=lambda x: ref_opr(x, axis=axis).astype(np.int32),
  42. axis=axis,
  43. )
  44. def test_sum():
  45. common_test_reduce(opr=F.sum, ref_opr=np.sum)
  46. def test_prod():
  47. common_test_reduce(opr=F.prod, ref_opr=np.prod)
  48. def test_mean():
  49. common_test_reduce(opr=F.mean, ref_opr=np.mean)
  50. def test_min():
  51. common_test_reduce(opr=F.min, ref_opr=np.min)
  52. def test_max():
  53. common_test_reduce(opr=F.max, ref_opr=np.max)
  54. def test_argmin():
  55. common_test_reduce(opr=F.argmin, ref_opr=np.argmin)
  56. def test_argmax():
  57. common_test_reduce(opr=F.argmax, ref_opr=np.argmax)
  58. def test_sqrt():
  59. d1_shape = (15,)
  60. d2_shape = (25,)
  61. d1 = np.random.random(d1_shape).astype(np.float32)
  62. d2 = np.random.random(d2_shape).astype(np.float32)
  63. cases = [{"input": d1}, {"input": d2}]
  64. opr_test(cases, F.sqrt, ref_fn=np.sqrt)
  65. def test_normalize():
  66. from functools import partial
  67. cases = [
  68. {"input": np.random.random((2, 3, 12, 12)).astype(np.float32)} for i in range(2)
  69. ]
  70. def np_normalize(x, p=2, axis=None, eps=1e-12):
  71. if axis is None:
  72. norm = np.sum(x ** p) ** (1.0 / p)
  73. else:
  74. norm = np.sum(x ** p, axis=axis, keepdims=True) ** (1.0 / p)
  75. return x / np.clip(norm, a_min=eps, a_max=np.inf)
  76. # Test L-2 norm along all dimensions
  77. opr_test(cases, F.normalize, ref_fn=np_normalize)
  78. # Test L-1 norm along all dimensions
  79. opr_test(cases, partial(F.normalize, p=1), ref_fn=partial(np_normalize, p=1))
  80. # Test L-2 norm along the second dimension
  81. opr_test(cases, partial(F.normalize, axis=1), ref_fn=partial(np_normalize, axis=1))
  82. # Test some norm == 0
  83. cases[0]["input"][0, 0, 0, :] = 0
  84. cases[1]["input"][0, 0, 0, :] = 0
  85. opr_test(cases, partial(F.normalize, axis=3), ref_fn=partial(np_normalize, axis=3))

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