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import spaces |
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import sys |
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import os |
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sys.path.append(os.path.abspath(os.path.join(os.path.dirname(__file__), 'amt/src'))) |
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import subprocess |
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from typing import Tuple, Dict, Literal |
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from ctypes import ArgumentError |
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from html_helper import * |
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from model_helper import * |
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import torchaudio |
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import glob |
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import gradio as gr |
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from gradio_log import Log |
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from pathlib import Path |
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log_file = 'amt/log.txt' |
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Path(log_file).touch() |
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model_name = "YMT3+" |
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precision = '16' |
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project = '2024' |
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if model_name == "YMT3+": |
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checkpoint = "[email protected]" |
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args = [checkpoint, '-p', project, '-pr', precision] |
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elif model_name == "YPTF+Single (noPS)": |
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checkpoint = "ptf_all_cross_rebal5_mirst_xk2_edr005_attend_c_full_plus_b100@model.ckpt" |
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args = [checkpoint, '-p', project, '-enc', 'perceiver-tf', '-ac', 'spec', |
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'-hop', '300', '-atc', '1', '-pr', precision] |
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elif model_name == "YPTF+Multi (PS)": |
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checkpoint = "mc13_256_all_cross_v6_xk5_amp0811_edr005_attend_c_full_plus_2psn_nl26_sb_b26r_800k@model.ckpt" |
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args = [checkpoint, '-p', project, '-tk', 'mc13_full_plus_256', |
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'-dec', 'multi-t5', '-nl', '26', '-enc', 'perceiver-tf', |
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'-ac', 'spec', '-hop', '300', '-atc', '1', '-pr', precision] |
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elif model_name == "YPTF.MoE+Multi (noPS)": |
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checkpoint = "mc13_256_g4_all_v7_mt3f_sqr_rms_moe_wf4_n8k2_silu_rope_rp_b36_nops@last.ckpt" |
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args = [checkpoint, '-p', project, '-tk', 'mc13_full_plus_256', '-dec', 'multi-t5', |
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'-nl', '26', '-enc', 'perceiver-tf', '-sqr', '1', '-ff', 'moe', |
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'-wf', '4', '-nmoe', '8', '-kmoe', '2', '-act', 'silu', '-epe', 'rope', |
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'-rp', '1', '-ac', 'spec', '-hop', '300', '-atc', '1', '-pr', precision] |
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elif model_name == "YPTF.MoE+Multi (PS)": |
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checkpoint = "mc13_256_g4_all_v7_mt3f_sqr_rms_moe_wf4_n8k2_silu_rope_rp_b80_ps2@model.ckpt" |
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args = [checkpoint, '-p', project, '-tk', 'mc13_full_plus_256', '-dec', 'multi-t5', |
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'-nl', '26', '-enc', 'perceiver-tf', '-sqr', '1', '-ff', 'moe', |
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'-wf', '4', '-nmoe', '8', '-kmoe', '2', '-act', 'silu', '-epe', 'rope', |
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'-rp', '1', '-ac', 'spec', '-hop', '300', '-atc', '1', '-pr', precision] |
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else: |
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raise ValueError(model_name) |
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model = load_model_checkpoint(args=args, device="cpu") |
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def prepare_media(source_path_or_url: os.PathLike, |
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source_type: Literal['audio_filepath', 'youtube_url'], |
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delete_video: bool = True, |
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simulate = False) -> Dict: |
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"""prepare media from source path or youtube, and return audio info""" |
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if source_type == 'audio_filepath': |
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audio_file = source_path_or_url |
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elif source_type == 'youtube_url': |
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if os.path.exists('/download/yt_audio.mp3'): |
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os.remove('/download/yt_audio.mp3') |
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with open(log_file, 'w') as lf: |
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audio_file = './downloaded/yt_audio' |
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command = ['yt-dlp', '-x', source_path_or_url, '-f', 'bestaudio', |
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'-o', audio_file, '--audio-format', 'mp3', '--restrict-filenames', |
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'--extractor-retries', '10', |
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'--force-overwrites', '--username', 'oauth2', '--password', '', '-v'] |
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if simulate: |
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command = command + ['-s'] |
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process = subprocess.Popen(command, |
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stdout=subprocess.PIPE, stderr=subprocess.STDOUT, text=True) |
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for line in iter(process.stdout.readline, ''): |
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print(line) |
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if "www.google.com/device" in line: |
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hl_text = line.replace("https://www.google.com/device", "\033[93mhttps://www.google.com/device\x1b[0m").split() |
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hl_text[-1] = "\x1b[31;1m" + hl_text[-1] + "\x1b[0m" |
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lf.write(' '.join(hl_text)); lf.flush() |
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elif "Authorization successful" in line or "Video unavailable" in line: |
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lf.write(line); lf.flush() |
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process.stdout.close() |
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process.wait() |
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audio_file += '.mp3' |
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else: |
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raise ValueError(source_type) |
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info = torchaudio.info(audio_file) |
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return { |
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"filepath": audio_file, |
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"track_name": os.path.basename(audio_file).split('.')[0], |
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"sample_rate": int(info.sample_rate), |
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"bits_per_sample": int(info.bits_per_sample), |
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"num_channels": int(info.num_channels), |
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"num_frames": int(info.num_frames), |
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"duration": int(info.num_frames / info.sample_rate), |
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"encoding": str.lower(info.encoding), |
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} |
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@spaces.GPU |
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def process_audio(audio_filepath): |
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if audio_filepath is None: |
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return None |
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audio_info = prepare_media(audio_filepath, source_type='audio_filepath') |
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midifile = transcribe(model, audio_info) |
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midifile = to_data_url(midifile) |
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return create_html_from_midi(midifile) |
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@spaces.GPU |
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def process_video(youtube_url): |
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if 'youtu' not in youtube_url: |
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return None |
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audio_info = prepare_media(youtube_url, source_type='youtube_url') |
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midifile = transcribe(model, audio_info) |
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midifile = to_data_url(midifile) |
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return create_html_from_midi(midifile) |
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def play_video(youtube_url): |
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if 'youtu' not in youtube_url: |
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return None |
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return create_html_youtube_player(youtube_url) |
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AUDIO_EXAMPLES = glob.glob('examples/*.*', recursive=True) |
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YOUTUBE_EXAMPLES = ["https://youtu.be/5vJBhdjvVcE?si=s3NFG_SlVju0Iklg", |
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"https://www.youtube.com/watch?v=vMboypSkj3c", |
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"https://youtu.be/vRd5KEjX8vw?si=b-qw633ZjaX6Uxy5", |
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"https://youtu.be/bnS-HK_lTHA?si=PQLVAab3QHMbv0S3https://youtu.be/zJB0nnOc7bM?si=EA1DN8nHWJcpQWp_", |
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"https://youtu.be/7mjQooXt28o?si=qqmMxCxwqBlLPDI2", |
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"https://youtu.be/mIWYTg55h10?si=WkbtKfL6NlNquvT8"] |
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theme = gr.Theme.from_hub("gradio/dracula_revamped") |
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theme.text_md = '10px' |
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theme.text_lg = '12px' |
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theme.body_background_fill_dark = '#060a1c' |
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theme.border_color_primary_dark = '#45507328' |
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theme.block_background_fill_dark = '#3845685c' |
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theme.body_text_color_dark = 'white' |
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theme.block_title_text_color_dark = 'black' |
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theme.body_text_color_subdued_dark = '#e4e9e9' |
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css = """ |
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.gradio-container { |
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background: linear-gradient(-45deg, #ee7752, #e73c7e, #23a6d5, #23d5ab); |
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background-size: 400% 400%; |
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animation: gradient 15s ease infinite; |
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height: 100vh; |
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} |
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@keyframes gradient { |
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0% {background-position: 0% 50%;} |
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50% {background-position: 100% 50%;} |
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100% {background-position: 0% 50%;} |
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} |
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#mylog {font-size: 12pt; line-height: 1.2; min-height: 2em; max-height: 4em;} |
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""" |
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with gr.Blocks(theme=theme, css=css) as demo: |
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with gr.Row(): |
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with gr.Column(scale=10): |
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gr.Markdown( |
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f""" |
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## 🎶YourMT3+: Multi-instrument Music Transcription with Enhanced Transformer Architectures and Cross-dataset Stem Augmentation |
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- Model name: `{model_name}` |
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<details> |
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<summary>▶model details◀</summary> |
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| **Component** | **Details** | |
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|--------------------------|--------------------------------------------------| |
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| Encoder backbone | Perceiver-TF + Mixture of Experts (2/8) | |
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| Decoder backbone | Multi-channel T5-small | |
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| Tokenizer | MT3 tokens with Singing extension | |
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| Dataset | YourMT3 dataset | |
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| Augmentation strategy | Intra-/Cross dataset stem augment, No Pitch-shifting | |
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| FP Precision | BF16-mixed for training, FP16 for inference | |
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</details> |
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## Caution: |
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- For acadmic reproduction purpose, we strongly recommend to use [Colab Demo](https://colab.research.google.com/drive/1AgOVEBfZknDkjmSRA7leoa81a2vrnhBG?usp=sharing) with multiple checkpoints. |
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## YouTube transcription (working 🚀): |
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- Press the `Transcribe` button, copy the 12-digit code below, and paste it into `google.com/device`. (Only needed once.) |
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<div style="display: inline-block;"> |
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<a href="https://arxiv.org/abs/2407.04822"> |
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<img src="https://img.shields.io/badge/arXiv:2407.04822-B31B1B?logo=arxiv&logoColor=fff&style=plastic" alt="arXiv Badge"/> |
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</a> |
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</div> |
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<div style="display: inline-block;"> |
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<a href="https://github.com/mimbres/YourMT3"> |
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<img src="https://img.shields.io/badge/GitHub-181717?logo=github&logoColor=fff&style=plastic" alt="GitHub Badge"/> |
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</a> |
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</div> |
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<div style="display: inline-block;"> |
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<a href="https://colab.research.google.com/drive/1AgOVEBfZknDkjmSRA7leoa81a2vrnhBG?usp=sharing"> |
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<img src="https://img.shields.io/badge/Google%20Colab-F9AB00?logo=googlecolab&logoColor=fff&style=plastic"/> |
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</a> |
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</div> |
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""") |
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with gr.Group(): |
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with gr.Tab("Upload audio"): |
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audio_input = gr.Audio(label="Record Audio", type="filepath", |
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show_share_button=True, show_download_button=True) |
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gr.Examples(examples=AUDIO_EXAMPLES, inputs=audio_input) |
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transcribe_audio_button = gr.Button("Transcribe", variant="primary") |
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output_tab1 = gr.HTML() |
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transcribe_audio_button.click(process_audio, inputs=audio_input, outputs=output_tab1) |
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with gr.Tab("From YouTube"): |
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with gr.Column(scale=4): |
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youtube_url = gr.Textbox(label="YouTube Link URL", |
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placeholder="https://youtu.be/...") |
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gr.Examples(examples=YOUTUBE_EXAMPLES, inputs=youtube_url) |
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play_video_button = gr.Button("Get Audio from YouTube", variant="primary") |
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youtube_player = gr.HTML(render=True) |
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with gr.Column(scale=4): |
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with gr.Row(): |
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transcribe_video_button = gr.Button("Transcribe", variant="primary") |
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oauth_button = gr.Button("google.com/device", variant="primary", link="https://www.google.com/device") |
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with gr.Column(scale=1): |
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output_tab2 = gr.HTML(render=True) |
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transcribe_video_button.click(process_video, inputs=youtube_url, outputs=output_tab2) |
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play_video_button.click(play_video, inputs=youtube_url, outputs=youtube_player) |
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with gr.Column(scale=1): |
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Log(log_file, dark=True, xterm_font_size=12, elem_id='mylog') |
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demo.launch(debug=True) |
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