mirror of https://github.com/coqui-ai/TTS.git
add unit test for GlowTTS inference with MAS
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@ -129,3 +129,58 @@ class GlowTTSTrainTest(unittest.TestCase):
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count, param.shape, param, param_ref
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count, param.shape, param, param_ref
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)
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)
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count += 1
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count += 1
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class GlowTTSInferenceTest(unittest.TestCase):
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@staticmethod
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def test_inference():
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input_dummy = torch.randint(0, 24, (8, 128)).long().to(device)
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input_lengths = torch.randint(100, 129, (8,)).long().to(device)
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input_lengths[-1] = 128
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mel_spec = torch.rand(8, c.audio["num_mels"], 30).to(device)
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mel_lengths = torch.randint(20, 30, (8,)).long().to(device)
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speaker_ids = torch.randint(0, 5, (8,)).long().to(device)
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# create model
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model = GlowTTS(
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num_chars=32,
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hidden_channels_enc=48,
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hidden_channels_dec=48,
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hidden_channels_dp=32,
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out_channels=80,
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encoder_type="rel_pos_transformer",
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encoder_params={
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"kernel_size": 3,
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"dropout_p": 0.1,
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"num_layers": 6,
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"num_heads": 2,
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"hidden_channels_ffn": 16, # 4 times the hidden_channels
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"input_length": None,
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},
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use_encoder_prenet=True,
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num_flow_blocks_dec=12,
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kernel_size_dec=5,
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dilation_rate=1,
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num_block_layers=4,
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dropout_p_dec=0.0,
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num_speakers=0,
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c_in_channels=0,
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num_splits=4,
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num_squeeze=1,
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sigmoid_scale=False,
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mean_only=False,
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).to(device)
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model.eval()
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print(" > Num parameters for GlowTTS model:%s" % (count_parameters(model)))
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# inference encoder and decoder with MAS
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y, _, _, _, _, _, _ = model.inference_with_MAS(
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input_dummy, input_lengths, mel_spec, mel_lengths, None
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)
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y_dec, _ = model.decoder_inference(mel_spec, mel_lengths
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)
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assert (y_dec.shape == y.shape), "Difference between the shapes of the glowTTS inference with MAS ({}) and the inference using only the decoder ({}) !!".format(
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y.shape, y_dec.shape
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)
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