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import argparse |
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import sys |
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from argparse import RawTextHelpFormatter |
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from pathlib import Path |
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from TTS.utils.manage import ModelManager |
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from TTS.utils.synthesizer import Synthesizer |
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def str2bool(v): |
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if isinstance(v, bool): |
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return v |
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if v.lower() in ("yes", "true", "t", "y", "1"): |
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return True |
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if v.lower() in ("no", "false", "f", "n", "0"): |
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return False |
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raise argparse.ArgumentTypeError("Boolean value expected.") |
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def main(): |
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description = """Synthesize speech on command line. |
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You can either use your trained model or choose a model from the provided list. |
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If you don't specify any models, then it uses LJSpeech based English model. |
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## Example Runs |
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### Single Speaker Models |
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- List provided models: |
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``` |
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$ tts --list_models |
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``` |
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- Query info for model info by idx: |
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``` |
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$ tts --model_info_by_idx "<model_type>/<model_query_idx>" |
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``` |
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- Query info for model info by full name: |
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``` |
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$ tts --model_info_by_name "<model_type>/<language>/<dataset>/<model_name>" |
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``` |
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- Run TTS with default models: |
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``` |
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$ tts --text "Text for TTS" |
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``` |
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- Run a TTS model with its default vocoder model: |
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``` |
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$ tts --text "Text for TTS" --model_name "<model_type>/<language>/<dataset>/<model_name> |
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``` |
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- Run with specific TTS and vocoder models from the list: |
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``` |
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$ tts --text "Text for TTS" --model_name "<model_type>/<language>/<dataset>/<model_name>" --vocoder_name "<model_type>/<language>/<dataset>/<model_name>" --output_path |
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``` |
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- Run your own TTS model (Using Griffin-Lim Vocoder): |
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``` |
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$ tts --text "Text for TTS" --model_path path/to/model.pth --config_path path/to/config.json --out_path output/path/speech.wav |
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``` |
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- Run your own TTS and Vocoder models: |
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``` |
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$ tts --text "Text for TTS" --model_path path/to/config.json --config_path path/to/model.pth --out_path output/path/speech.wav |
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--vocoder_path path/to/vocoder.pth --vocoder_config_path path/to/vocoder_config.json |
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``` |
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### Multi-speaker Models |
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- List the available speakers and choose as <speaker_id> among them: |
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``` |
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$ tts --model_name "<language>/<dataset>/<model_name>" --list_speaker_idxs |
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``` |
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- Run the multi-speaker TTS model with the target speaker ID: |
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``` |
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$ tts --text "Text for TTS." --out_path output/path/speech.wav --model_name "<language>/<dataset>/<model_name>" --speaker_idx <speaker_id> |
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``` |
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- Run your own multi-speaker TTS model: |
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``` |
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$ tts --text "Text for TTS" --out_path output/path/speech.wav --model_path path/to/config.json --config_path path/to/model.pth --speakers_file_path path/to/speaker.json --speaker_idx <speaker_id> |
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``` |
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""" |
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parser = argparse.ArgumentParser( |
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description=description.replace(" ```\n", ""), |
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formatter_class=RawTextHelpFormatter, |
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) |
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parser.add_argument( |
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"--list_models", |
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type=str2bool, |
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nargs="?", |
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const=True, |
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default=False, |
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help="list available pre-trained TTS and vocoder models.", |
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) |
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parser.add_argument( |
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"--model_info_by_idx", |
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type=str, |
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default=None, |
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help="model info using query format: <model_type>/<model_query_idx>", |
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) |
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parser.add_argument( |
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"--model_info_by_name", |
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type=str, |
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default=None, |
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help="model info using query format: <model_type>/<language>/<dataset>/<model_name>", |
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) |
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parser.add_argument("--text", type=str, default=None, help="Text to generate speech.") |
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parser.add_argument( |
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"--model_name", |
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type=str, |
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default="tts_models/en/ljspeech/tacotron2-DDC", |
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help="Name of one of the pre-trained TTS models in format <language>/<dataset>/<model_name>", |
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) |
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parser.add_argument( |
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"--vocoder_name", |
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type=str, |
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default=None, |
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help="Name of one of the pre-trained vocoder models in format <language>/<dataset>/<model_name>", |
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) |
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parser.add_argument("--config_path", default=None, type=str, help="Path to model config file.") |
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parser.add_argument( |
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"--model_path", |
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type=str, |
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default=None, |
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help="Path to model file.", |
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) |
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parser.add_argument( |
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"--out_path", |
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type=str, |
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default="tts_output.wav", |
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help="Output wav file path.", |
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) |
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parser.add_argument("--use_cuda", type=bool, help="Run model on CUDA.", default=False) |
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parser.add_argument( |
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"--vocoder_path", |
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type=str, |
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help="Path to vocoder model file. If it is not defined, model uses GL as vocoder. Please make sure that you installed vocoder library before (WaveRNN).", |
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default=None, |
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) |
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parser.add_argument("--vocoder_config_path", type=str, help="Path to vocoder model config file.", default=None) |
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parser.add_argument( |
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"--encoder_path", |
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type=str, |
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help="Path to speaker encoder model file.", |
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default=None, |
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) |
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parser.add_argument("--encoder_config_path", type=str, help="Path to speaker encoder config file.", default=None) |
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parser.add_argument("--speakers_file_path", type=str, help="JSON file for multi-speaker model.", default=None) |
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parser.add_argument("--language_ids_file_path", type=str, help="JSON file for multi-lingual model.", default=None) |
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parser.add_argument( |
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"--speaker_idx", |
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type=str, |
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help="Target speaker ID for a multi-speaker TTS model.", |
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default=None, |
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) |
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parser.add_argument( |
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"--language_idx", |
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type=str, |
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help="Target language ID for a multi-lingual TTS model.", |
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default=None, |
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) |
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parser.add_argument( |
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"--speaker_wav", |
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nargs="+", |
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help="wav file(s) to condition a multi-speaker TTS model with a Speaker Encoder. You can give multiple file paths. The d_vectors is computed as their average.", |
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default=None, |
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) |
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parser.add_argument("--gst_style", help="Wav path file for GST style reference.", default=None) |
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parser.add_argument( |
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"--capacitron_style_wav", type=str, help="Wav path file for Capacitron prosody reference.", default=None |
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) |
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parser.add_argument("--capacitron_style_text", type=str, help="Transcription of the reference.", default=None) |
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parser.add_argument( |
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"--list_speaker_idxs", |
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help="List available speaker ids for the defined multi-speaker model.", |
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type=str2bool, |
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nargs="?", |
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const=True, |
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default=False, |
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) |
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parser.add_argument( |
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"--list_language_idxs", |
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help="List available language ids for the defined multi-lingual model.", |
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type=str2bool, |
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nargs="?", |
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const=True, |
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default=False, |
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) |
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parser.add_argument( |
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"--save_spectogram", |
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type=bool, |
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help="If true save raw spectogram for further (vocoder) processing in out_path.", |
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default=False, |
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) |
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parser.add_argument( |
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"--reference_wav", |
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type=str, |
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help="Reference wav file to convert in the voice of the speaker_idx or speaker_wav", |
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default=None, |
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) |
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parser.add_argument( |
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"--reference_speaker_idx", |
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type=str, |
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help="speaker ID of the reference_wav speaker (If not provided the embedding will be computed using the Speaker Encoder).", |
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default=None, |
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) |
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parser.add_argument( |
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"--progress_bar", |
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type=str2bool, |
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help="If true shows a progress bar for the model download. Defaults to True", |
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default=True, |
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) |
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args = parser.parse_args() |
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check_args = [ |
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args.text, |
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args.list_models, |
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args.list_speaker_idxs, |
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args.list_language_idxs, |
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args.reference_wav, |
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args.model_info_by_idx, |
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args.model_info_by_name, |
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] |
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if not any(check_args): |
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parser.parse_args(["-h"]) |
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path = Path(__file__).parent / "../.models.json" |
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manager = ModelManager(path, progress_bar=args.progress_bar) |
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model_path = None |
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config_path = None |
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speakers_file_path = None |
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language_ids_file_path = None |
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vocoder_path = None |
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vocoder_config_path = None |
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encoder_path = None |
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encoder_config_path = None |
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if args.list_models: |
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manager.list_models() |
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sys.exit() |
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if args.model_info_by_idx: |
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model_query = args.model_info_by_idx |
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manager.model_info_by_idx(model_query) |
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sys.exit() |
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if args.model_info_by_name: |
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model_query_full_name = args.model_info_by_name |
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manager.model_info_by_full_name(model_query_full_name) |
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sys.exit() |
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if args.model_name is not None and not args.model_path: |
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model_path, config_path, model_item = manager.download_model(args.model_name) |
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args.vocoder_name = model_item["default_vocoder"] if args.vocoder_name is None else args.vocoder_name |
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if args.vocoder_name is not None and not args.vocoder_path: |
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vocoder_path, vocoder_config_path, _ = manager.download_model(args.vocoder_name) |
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if args.model_path is not None: |
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model_path = args.model_path |
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config_path = args.config_path |
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speakers_file_path = args.speakers_file_path |
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language_ids_file_path = args.language_ids_file_path |
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if args.vocoder_path is not None: |
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vocoder_path = args.vocoder_path |
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vocoder_config_path = args.vocoder_config_path |
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if args.encoder_path is not None: |
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encoder_path = args.encoder_path |
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encoder_config_path = args.encoder_config_path |
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synthesizer = Synthesizer( |
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model_path, |
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config_path, |
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speakers_file_path, |
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language_ids_file_path, |
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vocoder_path, |
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vocoder_config_path, |
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encoder_path, |
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encoder_config_path, |
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args.use_cuda, |
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) |
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if args.list_speaker_idxs: |
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print( |
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" > Available speaker ids: (Set --speaker_idx flag to one of these values to use the multi-speaker model." |
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) |
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print(synthesizer.tts_model.speaker_manager.name_to_id) |
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return |
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if args.list_language_idxs: |
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print( |
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" > Available language ids: (Set --language_idx flag to one of these values to use the multi-lingual model." |
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) |
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print(synthesizer.tts_model.language_manager.name_to_id) |
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return |
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if synthesizer.tts_speakers_file and (not args.speaker_idx and not args.speaker_wav): |
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print( |
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" [!] Looks like you use a multi-speaker model. Define `--speaker_idx` to " |
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"select the target speaker. You can list the available speakers for this model by `--list_speaker_idxs`." |
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) |
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return |
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if args.text: |
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print(" > Text: {}".format(args.text)) |
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wav = synthesizer.tts( |
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args.text, |
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args.speaker_idx, |
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args.language_idx, |
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args.speaker_wav, |
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reference_wav=args.reference_wav, |
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style_wav=args.capacitron_style_wav, |
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style_text=args.capacitron_style_text, |
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reference_speaker_name=args.reference_speaker_idx, |
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) |
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print(" > Saving output to {}".format(args.out_path)) |
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synthesizer.save_wav(wav, args.out_path) |
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if __name__ == "__main__": |
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main() |
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