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from toolbox import CatchException, report_execption, select_api_key, update_ui, get_conf |
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from .crazy_utils import request_gpt_model_in_new_thread_with_ui_alive |
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from toolbox import write_history_to_file, promote_file_to_downloadzone, get_log_folder |
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def split_audio_file(filename, split_duration=1000): |
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""" |
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根据给定的切割时长将音频文件切割成多个片段。 |
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Args: |
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filename (str): 需要被切割的音频文件名。 |
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split_duration (int, optional): 每个切割音频片段的时长(以秒为单位)。默认值为1000。 |
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Returns: |
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filelist (list): 一个包含所有切割音频片段文件路径的列表。 |
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""" |
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from moviepy.editor import AudioFileClip |
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import os |
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os.makedirs(f"{get_log_folder(plugin_name='audio')}/mp3/cut/", exist_ok=True) |
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audio = AudioFileClip(filename) |
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total_duration = audio.duration |
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split_points = list(range(0, int(total_duration), split_duration)) |
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split_points.append(int(total_duration)) |
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filelist = [] |
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for i in range(len(split_points) - 1): |
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start_time = split_points[i] |
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end_time = split_points[i + 1] |
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split_audio = audio.subclip(start_time, end_time) |
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split_audio.write_audiofile(f"{get_log_folder(plugin_name='audio')}/mp3/cut/{filename[0]}_{i}.mp3") |
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filelist.append(f"{get_log_folder(plugin_name='audio')}/mp3/cut/{filename[0]}_{i}.mp3") |
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audio.close() |
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return filelist |
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def AnalyAudio(parse_prompt, file_manifest, llm_kwargs, chatbot, history): |
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import os, requests |
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from moviepy.editor import AudioFileClip |
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from request_llm.bridge_all import model_info |
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api_key = select_api_key(llm_kwargs['api_key'], llm_kwargs['llm_model']) |
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chat_endpoint = model_info[llm_kwargs['llm_model']]['endpoint'] |
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whisper_endpoint = chat_endpoint.replace('chat/completions', 'audio/transcriptions') |
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url = whisper_endpoint |
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headers = { |
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'Authorization': f"Bearer {api_key}" |
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} |
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os.makedirs(f"{get_log_folder(plugin_name='audio')}/mp3/", exist_ok=True) |
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for index, fp in enumerate(file_manifest): |
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audio_history = [] |
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ext = os.path.splitext(fp)[1] |
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if ext not in [".mp3", ".wav", ".m4a", ".mpga"]: |
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audio_clip = AudioFileClip(fp) |
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audio_clip.write_audiofile(f"{get_log_folder(plugin_name='audio')}/mp3/output{index}.mp3") |
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fp = f"{get_log_folder(plugin_name='audio')}/mp3/output{index}.mp3" |
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voice = split_audio_file(fp) |
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for j, i in enumerate(voice): |
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with open(i, 'rb') as f: |
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file_content = f.read() |
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files = { |
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'file': (os.path.basename(i), file_content), |
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} |
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data = { |
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"model": "whisper-1", |
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"prompt": parse_prompt, |
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'response_format': "text" |
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} |
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chatbot.append([f"将 {i} 发送到openai音频解析终端 (whisper),当前参数:{parse_prompt}", "正在处理 ..."]) |
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yield from update_ui(chatbot=chatbot, history=history) |
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proxies, = get_conf('proxies') |
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response = requests.post(url, headers=headers, files=files, data=data, proxies=proxies).text |
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chatbot.append(["音频解析结果", response]) |
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history.extend(["音频解析结果", response]) |
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yield from update_ui(chatbot=chatbot, history=history) |
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i_say = f'请对下面的音频片段做概述,音频内容是 ```{response}```' |
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i_say_show_user = f'第{index + 1}段音频的第{j + 1} / {len(voice)}片段。' |
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gpt_say = yield from request_gpt_model_in_new_thread_with_ui_alive( |
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inputs=i_say, |
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inputs_show_user=i_say_show_user, |
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llm_kwargs=llm_kwargs, |
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chatbot=chatbot, |
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history=[], |
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sys_prompt=f"总结音频。音频文件名{fp}" |
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) |
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chatbot[-1] = (i_say_show_user, gpt_say) |
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history.extend([i_say_show_user, gpt_say]) |
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audio_history.extend([i_say_show_user, gpt_say]) |
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result = "".join(audio_history) |
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if len(audio_history) > 1: |
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i_say = f"根据以上的对话,使用中文总结音频“{result}”的主要内容。" |
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i_say_show_user = f'第{index + 1}段音频的主要内容:' |
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gpt_say = yield from request_gpt_model_in_new_thread_with_ui_alive( |
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inputs=i_say, |
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inputs_show_user=i_say_show_user, |
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llm_kwargs=llm_kwargs, |
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chatbot=chatbot, |
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history=audio_history, |
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sys_prompt="总结文章。" |
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) |
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history.extend([i_say, gpt_say]) |
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audio_history.extend([i_say, gpt_say]) |
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res = write_history_to_file(history) |
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promote_file_to_downloadzone(res, chatbot=chatbot) |
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chatbot.append((f"第{index + 1}段音频完成了吗?", res)) |
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yield from update_ui(chatbot=chatbot, history=history) |
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import shutil |
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shutil.rmtree(f"{get_log_folder(plugin_name='audio')}/mp3") |
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res = write_history_to_file(history) |
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promote_file_to_downloadzone(res, chatbot=chatbot) |
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chatbot.append(("所有音频都总结完成了吗?", res)) |
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yield from update_ui(chatbot=chatbot, history=history) |
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@CatchException |
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def 总结音视频(txt, llm_kwargs, plugin_kwargs, chatbot, history, system_prompt, WEB_PORT): |
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import glob, os |
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chatbot.append([ |
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"函数插件功能?", |
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"总结音视频内容,函数插件贡献者: dalvqw & BinaryHusky"]) |
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yield from update_ui(chatbot=chatbot, history=history) |
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try: |
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from moviepy.editor import AudioFileClip |
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except: |
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report_execption(chatbot, history, |
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a=f"解析项目: {txt}", |
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b=f"导入软件依赖失败。使用该模块需要额外依赖,安装方法```pip install --upgrade moviepy```。") |
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yield from update_ui(chatbot=chatbot, history=history) |
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return |
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history = [] |
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if os.path.exists(txt): |
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project_folder = txt |
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else: |
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if txt == "": txt = '空空如也的输入栏' |
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report_execption(chatbot, history, a=f"解析项目: {txt}", b=f"找不到本地项目或无权访问: {txt}") |
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yield from update_ui(chatbot=chatbot, history=history) |
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return |
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extensions = ['.mp4', '.m4a', '.wav', '.mpga', '.mpeg', '.mp3', '.avi', '.mkv', '.flac', '.aac'] |
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if txt.endswith(tuple(extensions)): |
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file_manifest = [txt] |
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else: |
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file_manifest = [] |
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for extension in extensions: |
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file_manifest.extend(glob.glob(f'{project_folder}/**/*{extension}', recursive=True)) |
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if len(file_manifest) == 0: |
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report_execption(chatbot, history, a=f"解析项目: {txt}", b=f"找不到任何音频或视频文件: {txt}") |
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yield from update_ui(chatbot=chatbot, history=history) |
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return |
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if ("advanced_arg" in plugin_kwargs) and (plugin_kwargs["advanced_arg"] == ""): plugin_kwargs.pop("advanced_arg") |
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parse_prompt = plugin_kwargs.get("advanced_arg", '将音频解析为简体中文') |
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yield from AnalyAudio(parse_prompt, file_manifest, llm_kwargs, chatbot, history) |
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yield from update_ui(chatbot=chatbot, history=history) |
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