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| pretrained_path: dragonSwing/audify |
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| n_mels: 80 |
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| out_n_neurons: 5 |
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| compute_features: !new:speechbrain.lobes.features.Fbank |
| n_mels: !ref <n_mels> |
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| mean_var_norm: !new:speechbrain.processing.features.InputNormalization |
| norm_type: sentence |
| std_norm: False |
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| CNN: !new:speechbrain.lobes.models.convolution.ConvolutionFrontEnd |
| input_shape: (null, null, 80) |
| num_blocks: 3 |
| num_layers_per_block: 1 |
| out_channels: (128, 256, 256) |
| kernel_sizes: (3, 3, 1) |
| strides: (2, 2, 1) |
| residuals: (False, False, False) |
| conv_module: !name:speechbrain.nnet.CNN.Conv1d |
| norm: !name:speechbrain.nnet.normalization.BatchNorm1d |
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| pooling: !new:speechbrain.nnet.pooling.AdaptivePool |
| output_size: 1 |
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| embedding: !new:torch.nn.ModuleList |
| - [!ref <CNN>, !ref <pooling>] |
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| embedding_model: !new:speechbrain.nnet.containers.LengthsCapableSequential |
| CNN: !ref <CNN> |
| pooling: !ref <pooling> |
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| classifier: !new:speechbrain.lobes.models.ECAPA_TDNN.Classifier |
| input_size: 256 |
| out_neurons: !ref <out_n_neurons> |
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| modules: |
| compute_features: !ref <compute_features> |
| mean_var_norm: !ref <mean_var_norm> |
| embedding_model: !ref <embedding_model> |
| classifier: !ref <classifier> |
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| label_encoder: !new:speechbrain.dataio.encoder.CategoricalEncoder |
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| pretrainer: !new:speechbrain.utils.parameter_transfer.Pretrainer |
| loadables: |
| embedding_model: !ref <embedding> |
| classifier: !ref <classifier> |
| label_encoder: !ref <label_encoder> |
| paths: |
| embedding_model: !ref <pretrained_path>/embedding_model.ckpt |
| classifier: !ref <pretrained_path>/classifier.ckpt |
| label_encoder: !ref <pretrained_path>/label_encoder.txt |
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