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feat:support azure tts (#2751)
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@ -583,3 +583,113 @@ SPEECH2TEXT_BASE_MODELS = [
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)
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)
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]
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TTS_BASE_MODELS = [
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AzureBaseModel(
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base_model_name='tts-1',
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entity=AIModelEntity(
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model='fake-deployment-name',
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label=I18nObject(
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en_US='fake-deployment-name-label'
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),
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fetch_from=FetchFrom.CUSTOMIZABLE_MODEL,
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model_type=ModelType.TTS,
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model_properties={
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ModelPropertyKey.DEFAULT_VOICE: 'alloy',
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ModelPropertyKey.VOICES: [
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{
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'mode': 'alloy',
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'name': 'Alloy',
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'language': ['zh-Hans', 'en-US', 'de-DE', 'fr-FR', 'es-ES', 'it-IT', 'th-TH', 'id-ID']
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},
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{
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'mode': 'echo',
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'name': 'Echo',
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'language': ['zh-Hans', 'en-US', 'de-DE', 'fr-FR', 'es-ES', 'it-IT', 'th-TH', 'id-ID']
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},
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{
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'mode': 'fable',
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'name': 'Fable',
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'language': ['zh-Hans', 'en-US', 'de-DE', 'fr-FR', 'es-ES', 'it-IT', 'th-TH', 'id-ID']
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},
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{
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'mode': 'onyx',
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'name': 'Onyx',
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'language': ['zh-Hans', 'en-US', 'de-DE', 'fr-FR', 'es-ES', 'it-IT', 'th-TH', 'id-ID']
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},
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{
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'mode': 'nova',
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'name': 'Nova',
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'language': ['zh-Hans', 'en-US', 'de-DE', 'fr-FR', 'es-ES', 'it-IT', 'th-TH', 'id-ID']
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},
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{
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'mode': 'shimmer',
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'name': 'Shimmer',
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'language': ['zh-Hans', 'en-US', 'de-DE', 'fr-FR', 'es-ES', 'it-IT', 'th-TH', 'id-ID']
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},
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],
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ModelPropertyKey.WORD_LIMIT: 120,
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ModelPropertyKey.AUDOI_TYPE: 'mp3',
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ModelPropertyKey.MAX_WORKERS: 5
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},
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pricing=PriceConfig(
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input=0.015,
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unit=0.001,
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currency='USD',
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)
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)
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),
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AzureBaseModel(
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base_model_name='tts-1-hd',
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entity=AIModelEntity(
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model='fake-deployment-name',
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label=I18nObject(
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en_US='fake-deployment-name-label'
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),
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fetch_from=FetchFrom.CUSTOMIZABLE_MODEL,
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model_type=ModelType.TTS,
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model_properties={
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ModelPropertyKey.DEFAULT_VOICE: 'alloy',
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ModelPropertyKey.VOICES: [
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{
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'mode': 'alloy',
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'name': 'Alloy',
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'language': ['zh-Hans', 'en-US', 'de-DE', 'fr-FR', 'es-ES', 'it-IT', 'th-TH', 'id-ID']
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},
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{
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'mode': 'echo',
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'name': 'Echo',
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'language': ['zh-Hans', 'en-US', 'de-DE', 'fr-FR', 'es-ES', 'it-IT', 'th-TH', 'id-ID']
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},
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{
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'mode': 'fable',
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'name': 'Fable',
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'language': ['zh-Hans', 'en-US', 'de-DE', 'fr-FR', 'es-ES', 'it-IT', 'th-TH', 'id-ID']
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},
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{
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'mode': 'onyx',
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'name': 'Onyx',
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'language': ['zh-Hans', 'en-US', 'de-DE', 'fr-FR', 'es-ES', 'it-IT', 'th-TH', 'id-ID']
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},
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{
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'mode': 'nova',
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'name': 'Nova',
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'language': ['zh-Hans', 'en-US', 'de-DE', 'fr-FR', 'es-ES', 'it-IT', 'th-TH', 'id-ID']
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},
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{
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'mode': 'shimmer',
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'name': 'Shimmer',
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'language': ['zh-Hans', 'en-US', 'de-DE', 'fr-FR', 'es-ES', 'it-IT', 'th-TH', 'id-ID']
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},
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],
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ModelPropertyKey.WORD_LIMIT: 120,
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ModelPropertyKey.AUDOI_TYPE: 'mp3',
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ModelPropertyKey.MAX_WORKERS: 5
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},
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pricing=PriceConfig(
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input=0.03,
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unit=0.001,
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currency='USD',
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)
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)
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)
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]
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@ -16,6 +16,7 @@ supported_model_types:
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- llm
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- text-embedding
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- speech2text
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- tts
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configurate_methods:
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- customizable-model
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model_credential_schema:
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@ -118,6 +119,18 @@ model_credential_schema:
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show_on:
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- variable: __model_type
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value: speech2text
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- label:
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en_US: tts-1
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value: tts-1
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show_on:
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- variable: __model_type
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value: tts
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- label:
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en_US: tts-1-hd
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value: tts-1-hd
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show_on:
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- variable: __model_type
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value: tts
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placeholder:
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zh_Hans: 在此输入您的模型版本
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en_US: Enter your model version
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174
api/core/model_runtime/model_providers/azure_openai/tts/tts.py
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174
api/core/model_runtime/model_providers/azure_openai/tts/tts.py
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@ -0,0 +1,174 @@
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import concurrent.futures
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import copy
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from functools import reduce
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from io import BytesIO
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from typing import Optional
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from flask import Response, stream_with_context
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from openai import AzureOpenAI
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from pydub import AudioSegment
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from core.model_runtime.entities.model_entities import AIModelEntity
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from core.model_runtime.errors.invoke import InvokeBadRequestError
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from core.model_runtime.errors.validate import CredentialsValidateFailedError
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from core.model_runtime.model_providers.__base.tts_model import TTSModel
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from core.model_runtime.model_providers.azure_openai._common import _CommonAzureOpenAI
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from core.model_runtime.model_providers.azure_openai._constant import TTS_BASE_MODELS, AzureBaseModel
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from extensions.ext_storage import storage
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class AzureOpenAIText2SpeechModel(_CommonAzureOpenAI, TTSModel):
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"""
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Model class for OpenAI Speech to text model.
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"""
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def _invoke(self, model: str, tenant_id: str, credentials: dict,
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content_text: str, voice: str, streaming: bool, user: Optional[str] = None) -> any:
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"""
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_invoke text2speech model
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:param model: model name
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:param tenant_id: user tenant id
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:param credentials: model credentials
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:param content_text: text content to be translated
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:param voice: model timbre
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:param streaming: output is streaming
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:param user: unique user id
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:return: text translated to audio file
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"""
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audio_type = self._get_model_audio_type(model, credentials)
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if not voice or voice not in [d['value'] for d in self.get_tts_model_voices(model=model, credentials=credentials)]:
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voice = self._get_model_default_voice(model, credentials)
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if streaming:
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return Response(stream_with_context(self._tts_invoke_streaming(model=model,
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credentials=credentials,
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content_text=content_text,
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tenant_id=tenant_id,
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voice=voice)),
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status=200, mimetype=f'audio/{audio_type}')
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else:
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return self._tts_invoke(model=model, credentials=credentials, content_text=content_text, voice=voice)
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def validate_credentials(self, model: str, credentials: dict, user: Optional[str] = None) -> None:
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"""
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validate credentials text2speech model
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:param model: model name
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:param credentials: model credentials
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:param user: unique user id
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:return: text translated to audio file
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"""
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try:
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self._tts_invoke(
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model=model,
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credentials=credentials,
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content_text='Hello Dify!',
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voice=self._get_model_default_voice(model, credentials),
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)
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except Exception as ex:
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raise CredentialsValidateFailedError(str(ex))
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def _tts_invoke(self, model: str, credentials: dict, content_text: str, voice: str) -> Response:
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"""
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_tts_invoke text2speech model
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:param model: model name
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:param credentials: model credentials
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:param content_text: text content to be translated
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:param voice: model timbre
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:return: text translated to audio file
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"""
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audio_type = self._get_model_audio_type(model, credentials)
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word_limit = self._get_model_word_limit(model, credentials)
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max_workers = self._get_model_workers_limit(model, credentials)
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try:
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sentences = list(self._split_text_into_sentences(text=content_text, limit=word_limit))
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audio_bytes_list = list()
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# Create a thread pool and map the function to the list of sentences
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with concurrent.futures.ThreadPoolExecutor(max_workers=max_workers) as executor:
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futures = [executor.submit(self._process_sentence, sentence=sentence, model=model, voice=voice,
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credentials=credentials) for sentence in sentences]
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for future in futures:
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try:
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if future.result():
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audio_bytes_list.append(future.result())
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except Exception as ex:
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raise InvokeBadRequestError(str(ex))
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if len(audio_bytes_list) > 0:
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audio_segments = [AudioSegment.from_file(BytesIO(audio_bytes), format=audio_type) for audio_bytes in
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audio_bytes_list if audio_bytes]
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combined_segment = reduce(lambda x, y: x + y, audio_segments)
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buffer: BytesIO = BytesIO()
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combined_segment.export(buffer, format=audio_type)
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buffer.seek(0)
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return Response(buffer.read(), status=200, mimetype=f"audio/{audio_type}")
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except Exception as ex:
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raise InvokeBadRequestError(str(ex))
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# Todo: To improve the streaming function
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def _tts_invoke_streaming(self, model: str, tenant_id: str, credentials: dict, content_text: str,
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voice: str) -> any:
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"""
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_tts_invoke_streaming text2speech model
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:param model: model name
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:param tenant_id: user tenant id
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:param credentials: model credentials
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:param content_text: text content to be translated
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:param voice: model timbre
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:return: text translated to audio file
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"""
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# transform credentials to kwargs for model instance
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credentials_kwargs = self._to_credential_kwargs(credentials)
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if not voice or voice not in self.get_tts_model_voices(model=model, credentials=credentials):
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voice = self._get_model_default_voice(model, credentials)
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word_limit = self._get_model_word_limit(model, credentials)
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audio_type = self._get_model_audio_type(model, credentials)
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tts_file_id = self._get_file_name(content_text)
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file_path = f'generate_files/audio/{tenant_id}/{tts_file_id}.{audio_type}'
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try:
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client = AzureOpenAI(**credentials_kwargs)
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sentences = list(self._split_text_into_sentences(text=content_text, limit=word_limit))
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for sentence in sentences:
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response = client.audio.speech.create(model=model, voice=voice, input=sentence.strip())
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# response.stream_to_file(file_path)
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storage.save(file_path, response.read())
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except Exception as ex:
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raise InvokeBadRequestError(str(ex))
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def _process_sentence(self, sentence: str, model: str,
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voice, credentials: dict):
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"""
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_tts_invoke openai text2speech model api
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:param model: model name
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:param credentials: model credentials
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:param voice: model timbre
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:param sentence: text content to be translated
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:return: text translated to audio file
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"""
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# transform credentials to kwargs for model instance
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credentials_kwargs = self._to_credential_kwargs(credentials)
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client = AzureOpenAI(**credentials_kwargs)
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response = client.audio.speech.create(model=model, voice=voice, input=sentence.strip())
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if isinstance(response.read(), bytes):
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return response.read()
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def get_customizable_model_schema(self, model: str, credentials: dict) -> Optional[AIModelEntity]:
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ai_model_entity = self._get_ai_model_entity(credentials['base_model_name'], model)
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return ai_model_entity.entity
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@staticmethod
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def _get_ai_model_entity(base_model_name: str, model: str) -> AzureBaseModel:
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for ai_model_entity in TTS_BASE_MODELS:
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if ai_model_entity.base_model_name == base_model_name:
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ai_model_entity_copy = copy.deepcopy(ai_model_entity)
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ai_model_entity_copy.entity.model = model
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ai_model_entity_copy.entity.label.en_US = model
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ai_model_entity_copy.entity.label.zh_Hans = model
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return ai_model_entity_copy
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return None
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@ -11,7 +11,7 @@ flask-cors~=4.0.0
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gunicorn~=21.2.0
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gevent~=23.9.1
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langchain==0.0.250
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openai~=1.3.6
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openai~=1.13.3
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tiktoken~=0.5.2
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psycopg2-binary~=2.9.6
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pycryptodome==3.19.1
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