test_rules_numerics.py 4.3 KB

123456789101112131415161718192021222324252627282930313233343536373839404142434445464748495051525354555657585960616263646566676869707172737475767778798081828384858687888990919293949596979899100101102103104105106107108109110111112113114115116
  1. from src.rules.numerics import add_numerics, match_divide_numerics, \
  2. divide_numerics, match_multiply_numerics, multiply_numerics
  3. from src.possibilities import Possibility as P
  4. from src.node import ExpressionLeaf as L
  5. from tests.rulestestcase import RulesTestCase, tree
  6. class TestRulesNumerics(RulesTestCase):
  7. def test_add_numerics(self):
  8. l0, a, l1 = tree('1,a,2')
  9. self.assertEqual(add_numerics(l0 + l1, (l0, l1, L(1), L(2))), 3)
  10. self.assertEqual(add_numerics(l0 + a + l1, (l0, l1, L(1), L(2))),
  11. L(3) + a)
  12. def test_add_numerics_negations(self):
  13. l0, a, l1 = tree('1,a,2')
  14. self.assertEqual(add_numerics(-l0 + l1, (-l0, l1, -L(1), L(2))), 1)
  15. self.assertEqual(add_numerics(l0 + -l1, (l0, -l1, L(1), -L(2))), -1)
  16. self.assertEqual(add_numerics(l0 + a + -l1, (l0, -l1, L(1), -L(2))),
  17. L(-1) + a)
  18. def test_match_divide_numerics(self):
  19. a, b, i2, i3, i6, f1, f2, f3 = tree('a,b,2,3,6,1.0,2.0,3.0')
  20. root = i6 / i2
  21. possibilities = match_divide_numerics(root)
  22. self.assertEqualPos(possibilities,
  23. [P(root, divide_numerics, (6, 2))])
  24. root = i3 / i2
  25. possibilities = match_divide_numerics(root)
  26. self.assertEqualPos(possibilities, [])
  27. root = f3 / i2
  28. possibilities = match_divide_numerics(root)
  29. self.assertEqualPos(possibilities,
  30. [P(root, divide_numerics, (3.0, 2))])
  31. root = i3 / f2
  32. possibilities = match_divide_numerics(root)
  33. self.assertEqualPos(possibilities,
  34. [P(root, divide_numerics, (3, 2.0))])
  35. root = f3 / f2
  36. possibilities = match_divide_numerics(root)
  37. self.assertEqualPos(possibilities,
  38. [P(root, divide_numerics, (3.0, 2.0))])
  39. root = i3 / f1
  40. possibilities = match_divide_numerics(root)
  41. self.assertEqualPos(possibilities,
  42. [P(root, divide_numerics, (3, 1))])
  43. root = a / b
  44. possibilities = match_divide_numerics(root)
  45. self.assertEqualPos(possibilities, [])
  46. def test_divide_numerics(self):
  47. i2, i3, i6, f2, f3 = tree('2,3,6,2.0,3.0')
  48. self.assertEqual(divide_numerics(i6 / i2, (6, 2)), 3)
  49. self.assertEqual(divide_numerics(f3 / i2, (3.0, 2)), 1.5)
  50. self.assertEqual(divide_numerics(i3 / f2, (3, 2.0)), 1.5)
  51. self.assertEqual(divide_numerics(f3 / f2, (3.0, 2.0)), 1.5)
  52. def test_match_multiply_numerics(self):
  53. i2, i3, i6, f2, f3, f6 = tree('2,3,6,2.0,3.0,6.0')
  54. root = i3 * i2
  55. self.assertEqual(match_multiply_numerics(root),
  56. [P(root, multiply_numerics, (i3, i2, 3, 2))])
  57. root = f3 * i2
  58. self.assertEqual(match_multiply_numerics(root),
  59. [P(root, multiply_numerics, (f3, i2, 3.0, 2))])
  60. root = i3 * f2
  61. self.assertEqual(match_multiply_numerics(root),
  62. [P(root, multiply_numerics, (i3, f2, 3, 2.0))])
  63. root = f3 * f2
  64. self.assertEqual(match_multiply_numerics(root),
  65. [P(root, multiply_numerics, (f3, f2, 3.0, 2.0))])
  66. def test_multiply_numerics(self):
  67. a, b, i2, i3, i6, f2, f3, f6 = tree('a,b,2,3,6,2.0,3.0,6.0')
  68. self.assertEqual(multiply_numerics(i3 * i2, (i3, i2, 3, 2)), 6)
  69. self.assertEqual(multiply_numerics(f3 * i2, (f3, i2, 3.0, 2)), 6.0)
  70. self.assertEqual(multiply_numerics(i3 * f2, (i3, f2, 3, 2.0)), 6.0)
  71. self.assertEqual(multiply_numerics(f3 * f2, (f3, f2, 3.0, 2.0)), 6.0)
  72. self.assertEqualNodes(multiply_numerics(a * i3 * i2 * b,
  73. (i3, i2, 3, 2)), a * 6 * b)
  74. def test_multiply_numerics_negation(self):
  75. l1_neg, l2 = root = tree('-1 * 2')
  76. self.assertEqualNodes(multiply_numerics(root, (l1_neg, l2, -1, 2)),
  77. -l2)
  78. root, l6 = tree('1 - 2 * 3,6')
  79. l1, neg = root
  80. l2, l3 = mul = neg[0]
  81. self.assertEqualNodes(multiply_numerics(mul, (l2, l3, 2, 3)), l6)
  82. l1, mul = root = tree('1 + -2 * 3')
  83. l2_neg, l3 = mul
  84. self.assertEqualNodes(multiply_numerics(mul, (l2_neg, l3, -2, 3)), -l6)
  85. root, l30 = tree('-5 * x ^ 2 - -15x - 5 * 6,30')
  86. rest, mul_neg = root
  87. l5_neg, l6 = mul = mul_neg[0]
  88. self.assertEqualNodes(multiply_numerics(mul, (l5_neg, l6, 5, 6)), l30)