mirror of https://github.com/coqui-ai/TTS.git
Update fastpitche2e recipe
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@ -2,12 +2,12 @@ from dataclasses import dataclass, field
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from typing import List
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from TTS.tts.configs.shared_configs import BaseTTSConfig
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from TTS.tts.models.forward_tts_e2e import ForwardTTSE2EArgs
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from TTS.tts.models.forward_tts_e2e import ForwardTTSE2eArgs
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@dataclass
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class FastPitchE2EConfig(BaseTTSConfig):
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"""Configure `ForwardTTS` as FastPitch model.
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class FastPitchE2eConfig(BaseTTSConfig):
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"""Configure `ForwardTTSE2e` as FastPitchE2e model.
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Example:
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@ -103,13 +103,13 @@ class FastPitchE2EConfig(BaseTTSConfig):
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"""
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model: str = "fast_pitch_e2e_hifigan"
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base_model: str = "forward_tts"
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base_model: str = "forward_tts_e2e"
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# model specific params
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# model_args: ForwardTTSE2EArgs = ForwardTTSE2EArgs(vocoder_config=HifiganConfig())
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model_args: ForwardTTSE2EArgs = ForwardTTSE2EArgs()
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# model_args: ForwardTTSE2eArgs = ForwardTTSE2eArgs(vocoder_config=HifiganConfig())
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model_args: ForwardTTSE2eArgs = ForwardTTSE2eArgs()
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# # multi-speaker settings
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# multi-speaker settings
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# num_speakers: int = 0
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# speakers_file: str = None
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# use_speaker_embedding: bool = False
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@ -142,11 +142,19 @@ class FastPitchE2EConfig(BaseTTSConfig):
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binary_align_loss_alpha: float = 0.1
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binary_loss_warmup_epochs: int = 150
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# decoder loss params
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# dvocoder loss params
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disc_loss_alpha: float = 1.0
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gen_loss_alpha: float = 1.0
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feat_loss_alpha: float = 1.0
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mel_loss_alpha: float = 45.0
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mel_loss_alpha: float = 10.0
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multi_scale_stft_loss_alpha: float = 2.5
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multi_scale_stft_loss_params: dict = field(
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default_factory=lambda: {
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"n_ffts": [1024, 2048, 512],
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"hop_lengths": [120, 240, 50],
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"win_lengths": [600, 1200, 240],
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}
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)
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# data loader params
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return_wav: bool = True
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@ -2,12 +2,12 @@ import os
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from trainer import Trainer, TrainerArgs
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from TTS.config.shared_configs import BaseAudioConfig, BaseDatasetConfig
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from TTS.tts.configs.fast_pitch_e2e_config import FastPitchE2EConfig
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from TTS.config.shared_configs import BaseDatasetConfig
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from TTS.tts.configs.fast_pitch_e2e_config import FastPitchE2eConfig
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from TTS.tts.datasets import load_tts_samples
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from TTS.tts.models.forward_tts_e2e import ForwardTTSE2E, ForwardTTSE2EArgs
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from TTS.tts.models.forward_tts_e2e import ForwardTTSE2e, ForwardTTSE2eArgs, ForwardTTSE2eAudio
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from TTS.tts.utils.text.tokenizer import TTSTokenizer
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from TTS.utils.audio import AudioProcessor
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output_path = os.path.dirname(os.path.abspath(__file__))
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@ -15,30 +15,26 @@ output_path = os.path.dirname(os.path.abspath(__file__))
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dataset_config = BaseDatasetConfig(
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name="ljspeech",
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meta_file_train="metadata.csv",
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# meta_file_attn_mask=os.path.join(output_path, "../LJSpeech-1.1/metadata_attn_mask.txt"),
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path=os.path.join(output_path, "../LJSpeech-1.1/"),
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)
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audio_config = BaseAudioConfig(
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audio_config = ForwardTTSE2eAudio(
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sample_rate=22050,
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do_trim_silence=True,
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trim_db=60.0,
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signal_norm=False,
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hop_length=256,
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win_length=1024,
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fft_size=1024,
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mel_fmin=0.0,
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mel_fmax=8000,
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spec_gain=1.0,
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log_func="np.log",
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ref_level_db=20,
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preemphasis=0.0,
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pitch_fmax=640.0,
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num_mels=80,
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)
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# vocoder_config = HifiganConfig()
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model_args = ForwardTTSE2EArgs()
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model_args = ForwardTTSE2eArgs()
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config = FastPitchE2EConfig(
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config = FastPitchE2eConfig(
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run_name="fast_pitch_e2e_ljspeech",
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run_description="don't detach vocoder input.",
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run_description="Train like in FS2 paper.",
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model_args=model_args,
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audio=audio_config,
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batch_size=32,
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@ -63,14 +59,9 @@ config = FastPitchE2EConfig(
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output_path=output_path,
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datasets=[dataset_config],
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start_by_longest=False,
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binary_align_loss_alpha=0.0
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binary_align_loss_alpha=0.0,
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)
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# INITIALIZE THE AUDIO PROCESSOR
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# Audio processor is used for feature extraction and audio I/O.
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# It mainly serves to the dataloader and the training loggers.
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ap = AudioProcessor.init_from_config(config)
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# INITIALIZE THE TOKENIZER
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# Tokenizer is used to convert text to sequences of token IDs.
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# If characters are not defined in the config, default characters are passed to the config
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@ -89,7 +80,7 @@ train_samples, eval_samples = load_tts_samples(
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)
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# init the model
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model = ForwardTTSE2E(config, ap, tokenizer, speaker_manager=None)
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model = ForwardTTSE2e(config=config, tokenizer=tokenizer, speaker_manager=None)
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# init the trainer and 🚀
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trainer = Trainer(
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