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lakahaga/novel_reading_tts

2023-12-26 10:37 0 微浪网
导语: ESPnet2 TTS model laka...,

lakahaga/novel_reading_tts


ESPnet2 TTS model


lakahaga/novel_reading_tts

This model was trained by lakahaga using novelspeech recipe in espnet.


Demo: How to use in ESPnet2

cd espnet<br /> git checkout 9827dfe37f69e8e55f902dc4e340de5108596311<br /> pip install -e .<br /> cd egs2/novelspeech/tts1<br /> ./run.sh --skip_data_prep false --skip_train true --download_model lakahaga/novel_reading_tts<br />


TTS config

expand

config: conf/tuning/train_conformer_fastspeech2.yaml<br /> print_config: false<br /> log_level: INFO<br /> dry_run: false<br /> iterator_type: sequence<br /> output_dir: exp/tts_train_conformer_fastspeech2_raw_phn_tacotron_none<br /> ngpu: 1<br /> seed: 0<br /> num_workers: 1<br /> num_att_plot: 3<br /> dist_backend: nccl<br /> dist_init_method: env://<br /> dist_world_size: 4<br /> dist_rank: 0<br /> local_rank: 0<br /> dist_master_addr: localhost<br /> dist_master_port: 34177<br /> dist_launcher: null<br /> multiprocessing_distributed: true<br /> unused_parameters: false<br /> sharded_ddp: false<br /> cudnn_enabled: true<br /> cudnn_benchmark: false<br /> cudnn_deterministic: true<br /> collect_stats: false<br /> write_collected_feats: false<br /> max_epoch: 1000<br /> patience: null<br /> val_scheduler_criterion:<br /> - valid<br /> - loss<br /> early_stopping_criterion:<br /> - valid<br /> - loss<br /> - min<br /> best_model_criterion:<br /> - - valid<br /> - loss<br /> - min<br /> - - train<br /> - loss<br /> - min<br /> keep_nbest_models: 5<br /> nbest_averaging_interval: 0<br /> grad_clip: 1.0<br /> grad_clip_type: 2.0<br /> grad_noise: false<br /> accum_grad: 10<br /> no_forward_run: false<br /> resume: true<br /> train_dtype: float32<br /> use_amp: false<br /> log_interval: null<br /> use_tensorboard: true<br /> use_wandb: false<br /> wandb_project: null<br /> wandb_id: null<br /> wandb_entity: null<br /> wandb_name: null<br /> wandb_model_log_interval: -1<br /> detect_anomaly: false<br /> pretrain_path: null<br /> init_param: []<br /> ignore_init_mismatch: false<br /> freeze_param: []<br /> num_iters_per_epoch: 1000<br /> batch_size: 20<br /> valid_batch_size: null<br /> batch_bins: 25600000<br /> valid_batch_bins: null<br /> train_shape_file:<br /> - exp/tts_train_raw_phn_tacotron_none/decode_use_teacher_forcingtrue_train.loss.best/stats//train/text_shape.phn<br /> - exp/tts_train_raw_phn_tacotron_none/decode_use_teacher_forcingtrue_train.loss.best/stats//train/speech_shape<br /> valid_shape_file:<br /> - exp/tts_train_raw_phn_tacotron_none/decode_use_teacher_forcingtrue_train.loss.best/stats//valid/text_shape.phn<br /> - exp/tts_train_raw_phn_tacotron_none/decode_use_teacher_forcingtrue_train.loss.best/stats//valid/speech_shape<br /> batch_type: numel<br /> valid_batch_type: null<br /> fold_length:<br /> - 150<br /> - 204800<br /> sort_in_batch: descending<br /> sort_batch: descending<br /> multiple_iterator: false<br /> chunk_length: 500<br /> chunk_shift_ratio: 0.5<br /> num_cache_chunks: 1024<br /> train_data_path_and_name_and_type:<br /> - - dump/raw/tr_no_dev/text<br /> - text<br /> - text<br /> - - exp/tts_train_raw_phn_tacotron_none/decode_use_teacher_forcingtrue_train.loss.best/tr_no_dev/durations<br /> - durations<br /> - text_int<br /> - - dump/raw/tr_no_dev/wav.scp<br /> - speech<br /> - sound<br /> - - exp/tts_train_raw_phn_tacotron_none/decode_use_teacher_forcingtrue_train.loss.best/stats//train/collect_feats/pitch.scp<br /> - pitch<br /> - npy<br /> - - exp/tts_train_raw_phn_tacotron_none/decode_use_teacher_forcingtrue_train.loss.best/stats//train/collect_feats/energy.scp<br /> - energy<br /> - npy<br /> - - dump/raw/tr_no_dev/utt2sid<br /> - sids<br /> - text_int<br /> valid_data_path_and_name_and_type:<br /> - - dump/raw/dev/text<br /> - text<br /> - text<br /> - - exp/tts_train_raw_phn_tacotron_none/decode_use_teacher_forcingtrue_train.loss.best/dev/durations<br /> - durations<br /> - text_int<br /> - - dump/raw/dev/wav.scp<br /> - speech<br /> - sound<br /> - - exp/tts_train_raw_phn_tacotron_none/decode_use_teacher_forcingtrue_train.loss.best/stats//valid/collect_feats/pitch.scp<br /> - pitch<br /> - npy<br /> - - exp/tts_train_raw_phn_tacotron_none/decode_use_teacher_forcingtrue_train.loss.best/stats//valid/collect_feats/energy.scp<br /> - energy<br /> - npy<br /> - - dump/raw/dev/utt2sid<br /> - sids<br /> - text_int<br /> allow_variable_data_keys: false<br /> max_cache_size: 0.0<br /> max_cache_fd: 32<br /> valid_max_cache_size: null<br /> optim: adam<br /> optim_conf:<br /> lr: 1.0<br /> scheduler: noamlr<br /> scheduler_conf:<br /> model_size: 384<br /> warmup_steps: 4000<br /> token_list:<br /> - <blank><br /> - <unk><br /> - '='<br /> - _<br /> - A<br /> - Y<br /> - N<br /> - O<br /> - E<br /> - U<br /> - L<br /> - G<br /> - S<br /> - D<br /> - M<br /> - J<br /> - H<br /> - B<br /> - ZERO<br /> - TWO<br /> - C<br /> - .<br /> - Q<br /> - ','<br /> - P<br /> - T<br /> - SEVEN<br /> - X<br /> - W<br /> - THREE<br /> - ONE<br /> - NINE<br /> - K<br /> - EIGHT<br /> - '@'<br /> - '!'<br /> - Z<br /> - '?'<br /> - F<br /> - SIX<br /> - FOUR<br /> - '#'<br /> - $<br /> - +<br /> - '%'<br /> - FIVE<br /> - '~'<br /> - AND<br /> - '*'<br /> - '...'<br /> - ''<br /> - ^<br /> - <sos/eos><br /> odim: null<br /> model_conf: {}<br /> use_preprocessor: true<br /> token_type: phn<br /> bpemodel: null<br /> non_linguistic_symbols: null<br /> cleaner: tacotron<br /> g2p: null<br /> feats_extract: fbank<br /> feats_extract_conf:<br /> n_fft: 1024<br /> hop_length: 256<br /> win_length: null<br /> fs: 22050<br /> fmin: 80<br /> fmax: 7600<br /> n_mels: 80<br /> normalize: global_mvn<br /> normalize_conf:<br /> stats_file: exp/tts_train_raw_phn_tacotron_none/decode_use_teacher_forcingtrue_train.loss.best/stats//train/feats_stats.npz<br /> tts: fastspeech2<br /> tts_conf:<br /> adim: 384<br /> aheads: 2<br /> elayers: 4<br /> eunits: 1536<br /> dlayers: 4<br /> dunits: 1536<br /> positionwise_layer_type: conv1d<br /> positionwise_conv_kernel_size: 3<br /> duration_predictor_layers: 2<br /> duration_predictor_chans: 256<br /> duration_predictor_kernel_size: 3<br /> postnet_layers: 5<br /> postnet_filts: 5<br /> postnet_chans: 256<br /> use_masking: true<br /> encoder_normalize_before: true<br /> decoder_normalize_before: true<br /> reduction_factor: 1<br /> encoder_type: conformer<br /> decoder_type: conformer<br /> conformer_pos_enc_layer_type: rel_pos<br /> conformer_self_attn_layer_type: rel_selfattn<br /> conformer_activation_type: swish<br /> use_macaron_style_in_conformer: true<br /> use_cnn_in_conformer: true<br /> conformer_enc_kernel_size: 7<br /> conformer_dec_kernel_size: 31<br /> init_type: xavier_uniform<br /> transformer_enc_dropout_rate: 0.2<br /> transformer_enc_positional_dropout_rate: 0.2<br /> transformer_enc_attn_dropout_rate: 0.2<br /> transformer_dec_dropout_rate: 0.2<br /> transformer_dec_positional_dropout_rate: 0.2<br /> transformer_dec_attn_dropout_rate: 0.2<br /> pitch_predictor_layers: 5<br /> pitch_predictor_chans: 256<br /> pitch_predictor_kernel_size: 5<br /> pitch_predictor_dropout: 0.5<br /> pitch_embed_kernel_size: 1<br /> pitch_embed_dropout: 0.0<br /> stop_gradient_from_pitch_predictor: true<br /> energy_predictor_layers: 2<br /> energy_predictor_chans: 256<br /> energy_predictor_kernel_size: 3<br /> energy_predictor_dropout: 0.5<br /> energy_embed_kernel_size: 1<br /> energy_embed_dropout: 0.0<br /> stop_gradient_from_energy_predictor: false<br /> pitch_extract: dio<br /> pitch_extract_conf:<br /> fs: 22050<br /> n_fft: 1024<br /> hop_length: 256<br /> f0max: 400<br /> f0min: 80<br /> reduction_factor: 1<br /> pitch_normalize: global_mvn<br /> pitch_normalize_conf:<br /> stats_file: exp/tts_train_raw_phn_tacotron_none/decode_use_teacher_forcingtrue_train.loss.best/stats//train/pitch_stats.npz<br /> energy_extract: energy<br /> energy_extract_conf:<br /> fs: 22050<br /> n_fft: 1024<br /> hop_length: 256<br /> win_length: null<br /> reduction_factor: 1<br /> energy_normalize: global_mvn<br /> energy_normalize_conf:<br /> stats_file: exp/tts_train_raw_phn_tacotron_none/decode_use_teacher_forcingtrue_train.loss.best/stats//train/energy_stats.npz<br /> required:<br /> - output_dir<br /> - token_list<br /> version: 0.10.5a1<br /> distributed: true<br />


Citing ESPnet

@inproceedings{watanabe2018espnet,<br /> author={Shinji Watanabe and Takaaki Hori and Shigeki Karita and Tomoki Hayashi and Jiro Nishitoba and Yuya Unno and Nelson Yalta and Jahn Heymann and Matthew Wiesner and Nanxin Chen and Adithya Renduchintala and Tsubasa Ochiai},<br /> title={{ESPnet}: End-to-End Speech Processing Toolkit},<br /> year={2018},<br /> booktitle={Proceedings of Interspeech},<br /> pages={2207--2211},<br /> doi={10.21437/Interspeech.2018-1456},<br /> url={http://dx.doi.org/10.21437/Interspeech.2018-1456}<br /> }<br /> @inproceedings{hayashi2020espnet,<br /> title={{Espnet-TTS}: Unified, reproducible, and integratable open source end-to-end text-to-speech toolkit},<br /> author={Hayashi, Tomoki and Yamamoto, Ryuichi and Inoue, Katsuki and Yoshimura, Takenori and Watanabe, Shinji and Toda, Tomoki and Takeda, Kazuya and Zhang, Yu and Tan, Xu},<br /> booktitle={Proceedings of IEEE International Conference on Acoustics, Speech and Signal Processing (ICASSP)},<br /> pages={7654--7658},<br /> year={2020},<br /> organization={IEEE}<br /> }<br />

or arXiv:
@misc{watanabe2018espnet,<br /> title={ESPnet: End-to-End Speech Processing Toolkit},<br /> author={Shinji Watanabe and Takaaki Hori and Shigeki Karita and Tomoki Hayashi and Jiro Nishitoba and Yuya Unno and Nelson Yalta and Jahn Heymann and Matthew Wiesner and Nanxin Chen and Adithya Renduchintala and Tsubasa Ochiai},<br /> year={2018},<br /> eprint={1804.00015},<br /> archivePrefix={arXiv},<br /> primaryClass={cs.CL}<br /> }<br />


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2023-12-26

2023-12-26

古风汉服美女图集
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