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                        - #
 - #  Copyright 2024 The InfiniFlow Authors. All Rights Reserved.
 - #
 - #  Licensed under the Apache License, Version 2.0 (the "License");
 - #  you may not use this file except in compliance with the License.
 - #  You may obtain a copy of the License at
 - #
 - #      http://www.apache.org/licenses/LICENSE-2.0
 - #
 - #  Unless required by applicable law or agreed to in writing, software
 - #  distributed under the License is distributed on an "AS IS" BASIS,
 - #  WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
 - #  See the License for the specific language governing permissions and
 - #  limitations under the License.
 - #
 - from openai.lib.azure import AzureOpenAI
 - from zhipuai import ZhipuAI
 - import io
 - from abc import ABC
 - from ollama import Client
 - from openai import OpenAI
 - import os
 - import json
 - from rag.utils import num_tokens_from_string
 - 
 - 
 - class Base(ABC):
 -     def __init__(self, key, model_name):
 -         pass
 - 
 -     def transcription(self, audio, **kwargs):
 -         transcription = self.client.audio.transcriptions.create(
 -             model=self.model_name,
 -             file=audio,
 -             response_format="text"
 -         )
 -         return transcription.text.strip(), num_tokens_from_string(transcription.text.strip())
 - 
 - 
 - class GPTSeq2txt(Base):
 -     def __init__(self, key, model_name="whisper-1", base_url="https://api.openai.com/v1"):
 -         if not base_url: base_url = "https://api.openai.com/v1"
 -         self.client = OpenAI(api_key=key, base_url=base_url)
 -         self.model_name = model_name
 - 
 - 
 - class QWenSeq2txt(Base):
 -     def __init__(self, key, model_name="paraformer-realtime-8k-v1", **kwargs):
 -         import dashscope
 -         dashscope.api_key = key
 -         self.model_name = model_name
 - 
 -     def transcription(self, audio, format):
 -         from http import HTTPStatus
 -         from dashscope.audio.asr import Recognition
 - 
 -         recognition = Recognition(model=self.model_name,
 -                                   format=format,
 -                                   sample_rate=16000,
 -                                   callback=None)
 -         result = recognition.call(audio)
 - 
 -         ans = ""
 -         if result.status_code == HTTPStatus.OK:
 -             for sentence in result.get_sentence():
 -                 ans += str(sentence + '\n')
 -             return ans, num_tokens_from_string(ans)
 - 
 -         return "**ERROR**: " + result.message, 0
 - 
 - 
 - class OllamaSeq2txt(Base):
 -     def __init__(self, key, model_name, lang="Chinese", **kwargs):
 -         self.client = Client(host=kwargs["base_url"])
 -         self.model_name = model_name
 -         self.lang = lang
 - 
 - 
 - class AzureSeq2txt(Base):
 -     def __init__(self, key, model_name, lang="Chinese", **kwargs):
 -         self.client = AzureOpenAI(api_key=key, azure_endpoint=kwargs["base_url"], api_version="2024-02-01")
 -         self.model_name = model_name
 -         self.lang = lang
 - 
 - 
 - class XinferenceSeq2txt(Base):
 -     def __init__(self, key, model_name="", base_url=""):
 -         self.client = OpenAI(api_key="xxx", base_url=base_url)
 -         self.model_name = model_name
 
 
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