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- # Copyright 2019 Huawei Technologies Co., Ltd
- #
- # Licensed under the Apache License, Version 2.0 (the "License");
- # you may not use this file except in compliance with the License.
- # You may obtain a copy of the License at
- #
- # http://www.apache.org/licenses/LICENSE-2.0
- #
- # Unless required by applicable law or agreed to in writing, software
- # distributed under the License is distributed on an "AS IS" BASIS,
- # WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
- # See the License for the specific language governing permissions and
- # limitations under the License.
- # ============================================================================
- """test cases for Geometric distribution"""
- import numpy as np
- from scipy import stats
- import mindspore.context as context
- import mindspore.nn as nn
- import mindspore.nn.probability.distribution as msd
- from mindspore import Tensor
- from mindspore import dtype
-
- context.set_context(mode=context.GRAPH_MODE, device_target="Ascend")
-
- class Prob(nn.Cell):
- """
- Test class: probability of Geometric distribution.
- """
- def __init__(self):
- super(Prob, self).__init__()
- self.g = msd.Geometric(0.7, dtype=dtype.int32)
-
- def construct(self, x_):
- return self.g.prob(x_)
-
- def test_pmf():
- """
- Test pmf.
- """
- geom_benchmark = stats.geom(0.7)
- expect_pmf = geom_benchmark.pmf([0, 1, 2, 3, 4]).astype(np.float32)
- pdf = Prob()
- x_ = Tensor(np.array([-1, 0, 1, 2, 3]).astype(np.float32), dtype=dtype.float32)
- output = pdf(x_)
- tol = 1e-6
- assert (np.abs(output.asnumpy() - expect_pmf) < tol).all()
-
- class LogProb(nn.Cell):
- """
- Test class: log probability of Geometric distribution.
- """
- def __init__(self):
- super(LogProb, self).__init__()
- self.g = msd.Geometric(0.7, dtype=dtype.int32)
-
- def construct(self, x_):
- return self.g.log_prob(x_)
-
- def test_log_likelihood():
- """
- Test log_pmf.
- """
- geom_benchmark = stats.geom(0.7)
- expect_logpmf = geom_benchmark.logpmf([1, 2, 3, 4, 5]).astype(np.float32)
- logprob = LogProb()
- x_ = Tensor(np.array([0, 1, 2, 3, 4]).astype(np.int32), dtype=dtype.float32)
- output = logprob(x_)
- tol = 1e-6
- assert (np.abs(output.asnumpy() - expect_logpmf) < tol).all()
-
- class KL(nn.Cell):
- """
- Test class: kl_loss between Geometric distributions.
- """
- def __init__(self):
- super(KL, self).__init__()
- self.g = msd.Geometric(0.7, dtype=dtype.int32)
-
- def construct(self, x_):
- return self.g.kl_loss('Geometric', x_)
-
- def test_kl_loss():
- """
- Test kl_loss.
- """
- probs1_a = 0.7
- probs1_b = 0.5
- probs0_a = 1 - probs1_a
- probs0_b = 1 - probs1_b
- expect_kl_loss = np.log(probs1_a / probs1_b) + (probs0_a / probs1_a) * np.log(probs0_a / probs0_b)
- kl_loss = KL()
- output = kl_loss(Tensor([probs1_b], dtype=dtype.float32))
- tol = 1e-6
- assert (np.abs(output.asnumpy() - expect_kl_loss) < tol).all()
-
- class Basics(nn.Cell):
- """
- Test class: mean/sd/mode of Geometric distribution.
- """
- def __init__(self):
- super(Basics, self).__init__()
- self.g = msd.Geometric([0.5, 0.5], dtype=dtype.int32)
-
- def construct(self):
- return self.g.mean(), self.g.sd(), self.g.mode()
-
- def test_basics():
- """
- Test mean/standard deviation/mode.
- """
- basics = Basics()
- mean, sd, mode = basics()
- expect_mean = [1.0, 1.0]
- expect_sd = np.sqrt(np.array([0.5, 0.5]) / np.square(np.array([0.5, 0.5])))
- expect_mode = [0.0, 0.0]
- tol = 1e-6
- assert (np.abs(mean.asnumpy()- expect_mean) < tol).all()
- assert (np.abs(sd.asnumpy() - expect_sd) < tol).all()
- assert (np.abs(mode.asnumpy() - expect_mode) < tol).all()
-
- class Sampling(nn.Cell):
- """
- Test class: log probability of bernoulli distribution.
- """
- def __init__(self, shape, seed=0):
- super(Sampling, self).__init__()
- self.g = msd.Geometric([0.7, 0.5], seed=seed, dtype=dtype.int32)
- self.shape = shape
-
- def construct(self, probs=None):
- return self.g.sample(self.shape, probs)
-
- def test_sample():
- """
- Test sample.
- """
- shape = (2, 3)
- sample = Sampling(shape)
- output = sample()
- assert output.shape == (2, 3, 2)
-
- class CDF(nn.Cell):
- """
- Test class: cdf of Geometric distribution.
- """
- def __init__(self):
- super(CDF, self).__init__()
- self.g = msd.Geometric(0.7, dtype=dtype.int32)
-
- def construct(self, x_):
- return self.g.cdf(x_)
-
- def test_cdf():
- """
- Test cdf.
- """
- geom_benchmark = stats.geom(0.7)
- expect_cdf = geom_benchmark.cdf([0, 1, 2, 3, 4]).astype(np.float32)
- x_ = Tensor(np.array([-1, 0, 1, 2, 3]).astype(np.int32), dtype=dtype.float32)
- cdf = CDF()
- output = cdf(x_)
- tol = 1e-6
- assert (np.abs(output.asnumpy() - expect_cdf) < tol).all()
-
- class LogCDF(nn.Cell):
- """
- Test class: log cdf of Geometric distribution.
- """
- def __init__(self):
- super(LogCDF, self).__init__()
- self.g = msd.Geometric(0.7, dtype=dtype.int32)
-
- def construct(self, x_):
- return self.g.log_cdf(x_)
-
- def test_logcdf():
- """
- Test log_cdf.
- """
- geom_benchmark = stats.geom(0.7)
- expect_logcdf = geom_benchmark.logcdf([1, 2, 3, 4, 5]).astype(np.float32)
- x_ = Tensor(np.array([0, 1, 2, 3, 4]).astype(np.int32), dtype=dtype.float32)
- logcdf = LogCDF()
- output = logcdf(x_)
- tol = 1e-6
- assert (np.abs(output.asnumpy() - expect_logcdf) < tol).all()
-
- class SF(nn.Cell):
- """
- Test class: survial funciton of Geometric distribution.
- """
- def __init__(self):
- super(SF, self).__init__()
- self.g = msd.Geometric(0.7, dtype=dtype.int32)
-
- def construct(self, x_):
- return self.g.survival_function(x_)
-
- def test_survival():
- """
- Test survival function.
- """
- geom_benchmark = stats.geom(0.7)
- expect_survival = geom_benchmark.sf([0, 1, 2, 3, 4]).astype(np.float32)
- x_ = Tensor(np.array([-1, 0, 1, 2, 3]).astype(np.int32), dtype=dtype.float32)
- sf = SF()
- output = sf(x_)
- tol = 1e-6
- assert (np.abs(output.asnumpy() - expect_survival) < tol).all()
-
- class LogSF(nn.Cell):
- """
- Test class: log survial funciton of Geometric distribution.
- """
- def __init__(self):
- super(LogSF, self).__init__()
- self.g = msd.Geometric(0.7, dtype=dtype.int32)
-
- def construct(self, x_):
- return self.g.log_survival(x_)
-
- def test_log_survival():
- """
- Test log_survival function.
- """
- geom_benchmark = stats.geom(0.7)
- expect_logsurvival = geom_benchmark.logsf([0, 1, 2, 3, 4]).astype(np.float32)
- x_ = Tensor(np.array([-1, 0, 1, 2, 3]).astype(np.float32), dtype=dtype.float32)
- log_sf = LogSF()
- output = log_sf(x_)
- tol = 5e-6
- assert (np.abs(output.asnumpy() - expect_logsurvival) < tol).all()
-
- class EntropyH(nn.Cell):
- """
- Test class: entropy of Geometric distribution.
- """
- def __init__(self):
- super(EntropyH, self).__init__()
- self.g = msd.Geometric(0.7, dtype=dtype.int32)
-
- def construct(self):
- return self.g.entropy()
-
- def test_entropy():
- """
- Test entropy.
- """
- geom_benchmark = stats.geom(0.7)
- expect_entropy = geom_benchmark.entropy().astype(np.float32)
- entropy = EntropyH()
- output = entropy()
- tol = 1e-6
- assert (np.abs(output.asnumpy() - expect_entropy) < tol).all()
-
- class CrossEntropy(nn.Cell):
- """
- Test class: cross entropy between Geometric distributions.
- """
- def __init__(self):
- super(CrossEntropy, self).__init__()
- self.g = msd.Geometric(0.7, dtype=dtype.int32)
-
- def construct(self, x_):
- entropy = self.g.entropy()
- kl_loss = self.g.kl_loss('Geometric', x_)
- h_sum_kl = entropy + kl_loss
- ans = self.g.cross_entropy('Geometric', x_)
- return h_sum_kl - ans
-
- def test_cross_entropy():
- """
- Test cross_entropy.
- """
- cross_entropy = CrossEntropy()
- prob = Tensor([0.5], dtype=dtype.float32)
- diff = cross_entropy(prob)
- tol = 1e-6
- assert (np.abs(diff.asnumpy() - np.zeros(diff.shape)) < tol).all()
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