test.py 3.87 KB
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import unittest
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import torch
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import torchaudio
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import math
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import os

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class Test_LoadSave(unittest.TestCase):
    test_dirpath = os.path.dirname(os.path.realpath(__file__))
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    test_filepath = os.path.join(test_dirpath, "assets",
                                 "steam-train-whistle-daniel_simon.mp3")
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    def test_load(self):
        # check normal loading
        x, sr = torchaudio.load(self.test_filepath)
        self.assertEqual(sr, 44100)
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        self.assertEqual(x.size(), (278756, 2))
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        self.assertGreater(x.sum(), 0)
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        # check normalizing
        x, sr = torchaudio.load(self.test_filepath, normalization=True)
        self.assertTrue(x.min() >= -1.0)
        self.assertTrue(x.max() <= 1.0)

        # check raising errors
        with self.assertRaises(OSError):
            torchaudio.load("file-does-not-exist.mp3")

        with self.assertRaises(OSError):
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            tdir = os.path.join(
                os.path.dirname(self.test_dirpath), "torchaudio")
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            torchaudio.load(tdir)

    def test_save(self):
        # load signal
        x, sr = torchaudio.load(self.test_filepath)

        # check save
        new_filepath = os.path.join(self.test_dirpath, "test.wav")
        torchaudio.save(new_filepath, x, sr)
        self.assertTrue(os.path.isfile(new_filepath))
        os.unlink(new_filepath)

        # check automatic normalization
        x /= 1 << 31
        torchaudio.save(new_filepath, x, sr)
        self.assertTrue(os.path.isfile(new_filepath))
        os.unlink(new_filepath)

        # test save 1d tensor
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        x = x[:, 0]  # get mono signal
        x.squeeze_()  # remove channel dim
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        torchaudio.save(new_filepath, x, sr)
        self.assertTrue(os.path.isfile(new_filepath))
        os.unlink(new_filepath)

        # don't allow invalid sizes as inputs
        with self.assertRaises(ValueError):
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            x.unsqueeze_(0)  # N x L not L x N
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            torchaudio.save(new_filepath, x, sr)

        with self.assertRaises(ValueError):
            x.squeeze_()
            x.unsqueeze_(1)
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            x.unsqueeze_(0)  # 1 x L x 1
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            torchaudio.save(new_filepath, x, sr)

        # automatically convert sr from floating point to int
        x.squeeze_(0)
        torchaudio.save(new_filepath, x, float(sr))
        self.assertTrue(os.path.isfile(new_filepath))
        os.unlink(new_filepath)

        # don't allow uneven integers
        with self.assertRaises(TypeError):
            torchaudio.save(new_filepath, x, float(sr) + 0.5)
            self.assertTrue(os.path.isfile(new_filepath))
            os.unlink(new_filepath)

        # don't save to folders that don't exist
        with self.assertRaises(OSError):
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            new_filepath = os.path.join(self.test_dirpath, "no-path",
                                        "test.wav")
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            torchaudio.save(new_filepath, x, sr)
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        # save created file
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        sinewave_filepath = os.path.join(self.test_dirpath, "assets",
                                         "sinewave.wav")
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        sr = 16000
        freq = 440
        volume = 0.3

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        y = (torch.cos(
            2 * math.pi * torch.arange(0, 4 * sr) * freq / sr)).float()
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        y.unsqueeze_(1)
        # y is between -1 and 1, so must scale
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        y = (y * volume * 2**31).long()
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        torchaudio.save(sinewave_filepath, y, sr)
        self.assertTrue(os.path.isfile(sinewave_filepath))
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    def test_load_and_save_is_identity(self):
        input_path = os.path.join(self.test_dirpath, 'assets', 'sinewave.wav')
        tensor, sample_rate = torchaudio.load(input_path)
        output_path = os.path.join(self.test_dirpath, 'test.wav')
        torchaudio.save(output_path, tensor, sample_rate)
        tensor2, sample_rate2 = torchaudio.load(output_path)
        self.assertTrue(tensor.allclose(tensor2))
        self.assertEqual(sample_rate, sample_rate2)
        os.unlink(output_path)

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if __name__ == '__main__':
    unittest.main()