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import gradio as gr | |
import os | |
os.system('pip install numpy==1.19.0') | |
# update modelscope | |
# os.system("pip install -U modelscope -f https://modelscope.oss-cn-beijing.aliyuncs.com/releases/repo.html -i https://mirror.sjtu.edu.cn/pypi/web/simple") | |
os.system('pip install "modelscope[cv]" -f https://modelscope.oss-cn-beijing.aliyuncs.com/releases/repo.html') | |
import datetime | |
from modelscope.pipelines import pipeline | |
from modelscope.utils.constant import Tasks | |
from subtitle_utils import generate_srt | |
#获取当前北京时间 | |
utc_dt = datetime.datetime.utcnow() | |
beijing_dt = utc_dt.astimezone(datetime.timezone(datetime.timedelta(hours=16))) | |
formatted = beijing_dt.strftime("%Y-%m-%d_%H") | |
print(f"北京时间: {beijing_dt.year}年{beijing_dt.month}月{beijing_dt.day}日 " | |
f"{beijing_dt.hour}时{beijing_dt.minute}分{beijing_dt.second}秒") | |
#创建作品存放目录 | |
works_path = '../works_audio_video_recognize/' + formatted | |
if not os.path.exists(works_path): | |
os.makedirs(works_path) | |
print('作品目录:' + works_path) | |
inference_pipeline = pipeline( | |
task=Tasks.auto_speech_recognition, | |
model='damo/speech_paraformer-large-vad-punc_asr_nat-zh-cn-16k-common-vocab8404-pytorch') | |
def transcript(audiofile, text_file, srt_file): | |
rec_result = inference_pipeline(audio_in=audiofile) | |
text_output = rec_result['text'] | |
with open(text_file, "w") as f: | |
f.write(text_output) | |
srt_output = generate_srt(rec_result['sentences']) | |
with open(srt_file, "w") as f: | |
f.write(srt_output) | |
return text_output, srt_output | |
def audio_recog(audiofile): | |
utc_dt = datetime.datetime.utcnow() | |
beijing_dt = utc_dt.astimezone(datetime.timezone(datetime.timedelta(hours=16))) | |
formatted = beijing_dt.strftime("%Y-%m-%d_%H-%M-%S") | |
print(f"开始时间: {beijing_dt.year}年{beijing_dt.month}月{beijing_dt.day}日 " | |
f"{beijing_dt.hour}时{beijing_dt.minute}分{beijing_dt.second}秒") | |
print("音频文件:" + audiofile) | |
filename = os.path.splitext(os.path.basename(audiofile))[0] | |
text_file = works_path + '/' + filename + '.txt' | |
srt_file = works_path + '/' + filename + '.srt' | |
text_output, srt_output = transcript(audiofile, text_file, srt_file) | |
utc_dt = datetime.datetime.utcnow() | |
beijing_dt = utc_dt.astimezone(datetime.timezone(datetime.timedelta(hours=16))) | |
formatted = beijing_dt.strftime("%Y-%m-%d_%H-%M-%S") | |
print(f"结束时间: {beijing_dt.year}年{beijing_dt.month}月{beijing_dt.day}日 " | |
f"{beijing_dt.hour}时{beijing_dt.minute}分{beijing_dt.second}秒") | |
return text_output, text_file, srt_output, srt_file | |
def video_recog(filepath): | |
filename = os.path.splitext(os.path.basename(filepath))[0] | |
worksfile = works_path + '/works_' + filename + '.mp4' | |
print("视频文件:" + filepath) | |
utc_dt = datetime.datetime.utcnow() | |
beijing_dt = utc_dt.astimezone(datetime.timezone(datetime.timedelta(hours=16))) | |
formatted = beijing_dt.strftime("%Y-%m-%d_%H-%M-%S.%f") | |
# 提取音频为mp3 | |
audiofile = works_path + '/' + formatted + '.mp3' | |
os.system(f"ffmpeg -i {filepath} -vn -c:a libmp3lame -q:a 4 {audiofile}") | |
#识别音频文件 | |
text_output, text_file, srt_output, srt_file = audio_recog(audiofile) | |
# # 给视频添加字幕 | |
# os.system(f"ffmpeg -i {filepath} -i {srt_file} -c:s mov_text -c:v copy -c:a copy {worksfile}") | |
# print("作品:" + worksfile) | |
return text_output, text_file, srt_output, srt_file | |
css_style = "#fixed_size_img {height: 240px;} " \ | |
"#overview {margin: auto;max-width: 400px; max-height: 400px;}" | |
title = "音视频识别 by宁侠" | |
description = "您只需要上传一段音频或视频文件,我们的服务会快速对其进行语音识别,然后生成相应的文字和字幕。这样,您就可以轻松地记录下重要的语音内容,或者为视频添加精准的字幕。现在就来试试我们的音视频识别服务吧,让您的生活和工作更加便捷!" | |
examples_path = 'examples/' | |
examples = [[examples_path + 'demo_shejipuhui.mp4']] | |
# gradio interface | |
with gr.Blocks(title=title, css=css_style) as demo: | |
gr.HTML(''' | |
<div style="text-align: center; max-width: 720px; margin: 0 auto;"> | |
<div | |
style=" | |
display: inline-flex; | |
align-items: center; | |
gap: 0.8rem; | |
font-size: 1.75rem; | |
" | |
> | |
<h1 style="font-family: PingFangSC; font-weight: 500; font-size: 36px; margin-bottom: 7px;"> | |
音视频识别 | |
</h1> | |
<h1 style="font-family: PingFangSC; font-weight: 500; line-height: 1.5em; font-size: 16px; margin-bottom: 7px;"> | |
by宁侠 | |
</h1> | |
''') | |
gr.Markdown(description) | |
with gr.Tab("🔊音频识别 Audio Transcribe"): | |
with gr.Row(): | |
with gr.Column(): | |
audio_input = gr.Audio(label="🔊音频输入 Audio Input", type="filepath") | |
gr.Examples(['examples/paddlespeech.asr-zh.wav', 'examples/demo_shejipuhui.mp3'], [audio_input]) | |
audio_recog_button = gr.Button("👂音频识别 Recognize") | |
with gr.Column(): | |
audio_text_output = gr.Textbox(label="✏️识别结果 Recognition Result", max_lines=5) | |
audio_text_file = gr.File(label="✏️识别结果文件 Recognition Result File") | |
audio_srt_output = gr.Textbox(label="📖SRT字幕内容 SRT Subtitles", max_lines=10) | |
audio_srt_file = gr.File(label="📖SRT字幕文件 SRT File") | |
audio_subtitles_button = gr.Button("添加字幕\nGenerate Subtitles", visible=False) | |
audio_output = gr.Audio(label="🔊音频 Audio", visible=False) | |
audio_recog_button.click(audio_recog, inputs=[audio_input], outputs=[audio_text_output, audio_text_file, audio_srt_output, audio_srt_file]) | |
# audio_subtitles_button.click(audio_subtitles, inputs=[audio_text_input], outputs=[audio_output]) | |
with gr.Tab("🎥视频识别 Video Transcribe"): | |
with gr.Row(): | |
with gr.Column(): | |
video_input = gr.Video(label="🎥视频输入 Video Input") | |
gr.Examples(['examples/demo_shejipuhui.mp4'], [video_input], label='语音识别示例 ASR Demo') | |
video_recog_button = gr.Button("👂视频识别 Recognize") | |
video_output = gr.Video(label="🎥视频 Video", visible=False) | |
with gr.Column(): | |
video_text_output = gr.Textbox(label="✏️识别结果 Recognition Result", max_lines=5) | |
video_text_file = gr.File(label="✏️识别结果文件 Recognition Result File") | |
video_srt_output = gr.Textbox(label="📖SRT字幕内容 SRT Subtitles", max_lines=10) | |
video_srt_file = gr.File(label="📖SRT字幕文件 SRT File") | |
with gr.Row(visible=False): | |
font_size = gr.Slider(minimum=10, maximum=100, value=32, step=2, label="🔠字幕字体大小 Subtitle Font Size") | |
font_color = gr.Radio(["black", "white", "green", "red"], label="🌈字幕颜色 Subtitle Color", value='white') | |
video_subtitles_button = gr.Button("添加字幕\nGenerate Subtitles", visible=False) | |
video_recog_button.click(video_recog, inputs=[video_input], outputs=[video_text_output, video_text_file, video_srt_output, video_srt_file]) | |
# video_subtitles_button.click(video_subtitles, inputs=[video_text_input], outputs=[video_output]) | |
# start gradio service in local | |
demo.queue(api_open=False).launch(debug=True) | |