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import requests |
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from .modules.chat import Chat |
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from .modules.chunk import Chunk |
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from .modules.dataset import DataSet |
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from .modules.agent import Agent |
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class RAGFlow: |
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def __init__(self, api_key, base_url, version='v1'): |
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""" |
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api_url: http://<host_address>/api/v1 |
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""" |
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self.user_key = api_key |
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self.api_url = f"{base_url}/api/{version}" |
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self.authorization_header = {"Authorization": "{} {}".format("Bearer", self.user_key)} |
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def post(self, path, json=None, stream=False, files=None): |
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res = requests.post(url=self.api_url + path, json=json, headers=self.authorization_header, stream=stream,files=files) |
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return res |
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def get(self, path, params=None, json=None): |
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res = requests.get(url=self.api_url + path, params=params, headers=self.authorization_header,json=json) |
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return res |
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def delete(self, path, json): |
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res = requests.delete(url=self.api_url + path, json=json, headers=self.authorization_header) |
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return res |
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def put(self, path, json): |
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res = requests.put(url=self.api_url + path, json= json,headers=self.authorization_header) |
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return res |
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def create_dataset(self, name: str, avatar: str = "", description: str = "", embedding_model:str = "BAAI/bge-large-zh-v1.5", |
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language: str = "English", |
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permission: str = "me",chunk_method: str = "naive", |
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parser_config: DataSet.ParserConfig = None) -> DataSet: |
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if parser_config: |
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parser_config = parser_config.to_json() |
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res = self.post("/datasets", |
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{"name": name, "avatar": avatar, "description": description,"embedding_model":embedding_model, |
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"language": language, |
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"permission": permission, "chunk_method": chunk_method, |
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"parser_config": parser_config |
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} |
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) |
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res = res.json() |
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if res.get("code") == 0: |
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return DataSet(self, res["data"]) |
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raise Exception(res["message"]) |
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def delete_datasets(self, ids: list[str] | None = None): |
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res = self.delete("/datasets",{"ids": ids}) |
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res=res.json() |
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if res.get("code") != 0: |
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raise Exception(res["message"]) |
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def get_dataset(self,name: str): |
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_list = self.list_datasets(name=name) |
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if len(_list) > 0: |
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return _list[0] |
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raise Exception("Dataset %s not found" % name) |
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def list_datasets(self, page: int = 1, page_size: int = 30, orderby: str = "create_time", desc: bool = True, |
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id: str | None = None, name: str | None = None) -> \ |
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list[DataSet]: |
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res = self.get("/datasets", |
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{"page": page, "page_size": page_size, "orderby": orderby, "desc": desc, "id": id, "name": name}) |
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res = res.json() |
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result_list = [] |
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if res.get("code") == 0: |
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for data in res['data']: |
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result_list.append(DataSet(self, data)) |
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return result_list |
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raise Exception(res["message"]) |
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def create_chat(self, name: str, avatar: str = "", dataset_ids=None, |
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llm: Chat.LLM | None = None, prompt: Chat.Prompt | None = None) -> Chat: |
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if dataset_ids is None: |
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dataset_ids = [] |
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dataset_list = [] |
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for id in dataset_ids: |
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dataset_list.append(id) |
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if llm is None: |
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llm = Chat.LLM(self, {"model_name": None, |
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"temperature": 0.1, |
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"top_p": 0.3, |
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"presence_penalty": 0.4, |
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"frequency_penalty": 0.7, |
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"max_tokens": 512, }) |
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if prompt is None: |
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prompt = Chat.Prompt(self, {"similarity_threshold": 0.2, |
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"keywords_similarity_weight": 0.7, |
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"top_n": 8, |
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"top_k": 1024, |
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"variables": [{ |
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"key": "knowledge", |
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"optional": True |
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}], "rerank_model": "", |
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"empty_response": None, |
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"opener": None, |
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"show_quote": True, |
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"prompt": None}) |
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if prompt.opener is None: |
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prompt.opener = "Hi! I'm your assistant, what can I do for you?" |
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if prompt.prompt is None: |
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prompt.prompt = ( |
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"You are an intelligent assistant. Please summarize the content of the knowledge base to answer the question. " |
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"Please list the data in the knowledge base and answer in detail. When all knowledge base content is irrelevant to the question, " |
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"your answer must include the sentence 'The answer you are looking for is not found in the knowledge base!' " |
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"Answers need to consider chat history.\nHere is the knowledge base:\n{knowledge}\nThe above is the knowledge base." |
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) |
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temp_dict = {"name": name, |
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"avatar": avatar, |
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"dataset_ids": dataset_list, |
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"llm": llm.to_json(), |
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"prompt": prompt.to_json()} |
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res = self.post("/chats", temp_dict) |
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res = res.json() |
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if res.get("code") == 0: |
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return Chat(self, res["data"]) |
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raise Exception(res["message"]) |
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def delete_chats(self,ids: list[str] | None = None): |
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res = self.delete('/chats', |
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{"ids":ids}) |
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res = res.json() |
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if res.get("code") != 0: |
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raise Exception(res["message"]) |
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def list_chats(self, page: int = 1, page_size: int = 30, orderby: str = "create_time", desc: bool = True, |
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id: str | None = None, name: str | None = None) -> list[Chat]: |
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res = self.get("/chats",{"page": page, "page_size": page_size, "orderby": orderby, "desc": desc, "id": id, "name": name}) |
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res = res.json() |
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result_list = [] |
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if res.get("code") == 0: |
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for data in res['data']: |
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result_list.append(Chat(self, data)) |
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return result_list |
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raise Exception(res["message"]) |
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def retrieve(self, dataset_ids, document_ids=None, question="", page=1, page_size=30, similarity_threshold=0.2, vector_similarity_weight=0.3, top_k=1024, rerank_id: str | None = None, keyword:bool=False, ): |
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if document_ids is None: |
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document_ids = [] |
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data_json ={ |
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"page": page, |
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"page_size": page_size, |
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"similarity_threshold": similarity_threshold, |
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"vector_similarity_weight": vector_similarity_weight, |
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"top_k": top_k, |
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"rerank_id": rerank_id, |
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"keyword": keyword, |
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"question": question, |
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"dataset_ids": dataset_ids, |
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"documents": document_ids |
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} |
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res = self.post('/retrieval',json=data_json) |
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res = res.json() |
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if res.get("code") ==0: |
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chunks=[] |
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for chunk_data in res["data"].get("chunks"): |
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chunk=Chunk(self,chunk_data) |
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chunks.append(chunk) |
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return chunks |
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raise Exception(res.get("message")) |
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def list_agents(self, page: int = 1, page_size: int = 30, orderby: str = "update_time", desc: bool = True, |
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id: str | None = None, title: str | None = None) -> list[Agent]: |
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res = self.get("/agents",{"page": page, "page_size": page_size, "orderby": orderby, "desc": desc, "id": id, "title": title}) |
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res = res.json() |
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result_list = [] |
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if res.get("code") == 0: |
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for data in res['data']: |
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result_list.append(Agent(self, data)) |
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return result_list |
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raise Exception(res["message"]) |
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