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import io |
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import logging |
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from typing import Optional |
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from werkzeug.datastructures import FileStorage |
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from core.model_manager import ModelManager |
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from core.model_runtime.entities.model_entities import ModelType |
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from models.model import App, AppMode, AppModelConfig, Message |
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from services.errors.audio import ( |
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AudioTooLargeServiceError, |
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NoAudioUploadedServiceError, |
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ProviderNotSupportSpeechToTextServiceError, |
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ProviderNotSupportTextToSpeechServiceError, |
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UnsupportedAudioTypeServiceError, |
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) |
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FILE_SIZE = 30 |
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FILE_SIZE_LIMIT = FILE_SIZE * 1024 * 1024 |
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ALLOWED_EXTENSIONS = ["mp3", "mp4", "mpeg", "mpga", "m4a", "wav", "webm", "amr"] |
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logger = logging.getLogger(__name__) |
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class AudioService: |
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@classmethod |
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def transcript_asr(cls, app_model: App, file: FileStorage, end_user: Optional[str] = None): |
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if app_model.mode in {AppMode.ADVANCED_CHAT.value, AppMode.WORKFLOW.value}: |
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workflow = app_model.workflow |
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if workflow is None: |
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raise ValueError("Speech to text is not enabled") |
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features_dict = workflow.features_dict |
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if "speech_to_text" not in features_dict or not features_dict["speech_to_text"].get("enabled"): |
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raise ValueError("Speech to text is not enabled") |
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else: |
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app_model_config: AppModelConfig = app_model.app_model_config |
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if not app_model_config.speech_to_text_dict["enabled"]: |
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raise ValueError("Speech to text is not enabled") |
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if file is None: |
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raise NoAudioUploadedServiceError() |
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extension = file.mimetype |
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if extension not in [f"audio/{ext}" for ext in ALLOWED_EXTENSIONS]: |
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raise UnsupportedAudioTypeServiceError() |
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file_content = file.read() |
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file_size = len(file_content) |
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if file_size > FILE_SIZE_LIMIT: |
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message = f"Audio size larger than {FILE_SIZE} mb" |
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raise AudioTooLargeServiceError(message) |
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model_manager = ModelManager() |
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model_instance = model_manager.get_default_model_instance( |
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tenant_id=app_model.tenant_id, model_type=ModelType.SPEECH2TEXT |
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) |
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if model_instance is None: |
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raise ProviderNotSupportSpeechToTextServiceError() |
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buffer = io.BytesIO(file_content) |
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buffer.name = "temp.mp3" |
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return {"text": model_instance.invoke_speech2text(file=buffer, user=end_user)} |
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@classmethod |
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def transcript_tts( |
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cls, |
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app_model: App, |
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text: Optional[str] = None, |
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voice: Optional[str] = None, |
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end_user: Optional[str] = None, |
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message_id: Optional[str] = None, |
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): |
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from collections.abc import Generator |
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from flask import Response, stream_with_context |
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from app import app |
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from extensions.ext_database import db |
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def invoke_tts(text_content: str, app_model, voice: Optional[str] = None): |
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with app.app_context(): |
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if app_model.mode in {AppMode.ADVANCED_CHAT.value, AppMode.WORKFLOW.value}: |
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workflow = app_model.workflow |
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if workflow is None: |
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raise ValueError("TTS is not enabled") |
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features_dict = workflow.features_dict |
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if "text_to_speech" not in features_dict or not features_dict["text_to_speech"].get("enabled"): |
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raise ValueError("TTS is not enabled") |
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voice = features_dict["text_to_speech"].get("voice") if voice is None else voice |
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else: |
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text_to_speech_dict = app_model.app_model_config.text_to_speech_dict |
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if not text_to_speech_dict.get("enabled"): |
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raise ValueError("TTS is not enabled") |
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voice = text_to_speech_dict.get("voice") if voice is None else voice |
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model_manager = ModelManager() |
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model_instance = model_manager.get_default_model_instance( |
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tenant_id=app_model.tenant_id, model_type=ModelType.TTS |
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) |
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try: |
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if not voice: |
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voices = model_instance.get_tts_voices() |
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if voices: |
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voice = voices[0].get("value") |
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else: |
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raise ValueError("Sorry, no voice available.") |
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return model_instance.invoke_tts( |
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content_text=text_content.strip(), user=end_user, tenant_id=app_model.tenant_id, voice=voice |
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) |
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except Exception as e: |
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raise e |
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if message_id: |
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message = db.session.query(Message).filter(Message.id == message_id).first() |
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if message.answer == "" and message.status == "normal": |
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return None |
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else: |
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response = invoke_tts(message.answer, app_model=app_model, voice=voice) |
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if isinstance(response, Generator): |
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return Response(stream_with_context(response), content_type="audio/mpeg") |
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return response |
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else: |
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response = invoke_tts(text, app_model, voice) |
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if isinstance(response, Generator): |
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return Response(stream_with_context(response), content_type="audio/mpeg") |
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return response |
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@classmethod |
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def transcript_tts_voices(cls, tenant_id: str, language: str): |
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model_manager = ModelManager() |
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model_instance = model_manager.get_default_model_instance(tenant_id=tenant_id, model_type=ModelType.TTS) |
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if model_instance is None: |
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raise ProviderNotSupportTextToSpeechServiceError() |
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try: |
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return model_instance.get_tts_voices(language) |
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except Exception as e: |
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raise e |
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