mirror of
https://github.com/langbot-app/LangBot.git
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feat: rag pipeline backend
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@@ -20,7 +20,7 @@ class LegacyPipeline(Base):
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)
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for_version = sqlalchemy.Column(sqlalchemy.String(255), nullable=False)
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is_default = sqlalchemy.Column(sqlalchemy.Boolean, nullable=False, default=False)
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knowledge_base_uuid = sqlalchemy.Column(sqlalchemy.String(255), nullable=True)
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stages = sqlalchemy.Column(sqlalchemy.JSON, nullable=False)
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config = sqlalchemy.Column(sqlalchemy.JSON, nullable=False)
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@@ -43,3 +43,4 @@ class PipelineRunRecord(Base):
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started_at = sqlalchemy.Column(sqlalchemy.DateTime, nullable=False)
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finished_at = sqlalchemy.Column(sqlalchemy.DateTime, nullable=False)
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result = sqlalchemy.Column(sqlalchemy.JSON, nullable=False)
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knowledge_base_uuid = sqlalchemy.Column(sqlalchemy.String(255), nullable=True)
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@@ -2,7 +2,7 @@ from __future__ import annotations
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import json
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import typing
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from ...platform.types import message as platform_entities
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from .. import runner
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from ...core import entities as core_entities
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from .. import entities as llm_entities
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@@ -15,9 +15,44 @@ class LocalAgentRunner(runner.RequestRunner):
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async def run(self, query: core_entities.Query) -> typing.AsyncGenerator[llm_entities.Message, None]:
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"""运行请求"""
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pending_tool_calls = []
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req_messages = query.prompt.messages.copy() + query.messages.copy() + [query.user_message]
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pipeline_uuid = query.pipeline_uuid
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pipeline = await self.ap.pipeline_mgr.get_pipeline_by_uuid(pipeline_uuid)
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try:
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if pipeline and pipeline.pipeline_entity.knowledge_base_uuid is not None:
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kb_id = pipeline.pipeline_entity.knowledge_base_uuid
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kb= await self.ap.rag_mgr.load_knowledge_base(kb_id)
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except Exception as e:
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self.ap.logger.error(f'Failed to load knowledge base {kb_id}: {e}')
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kb_id = None
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if kb:
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message = ''
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for msg in query.message_chain:
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if isinstance(msg, platform_entities.Plain):
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message += msg.text
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result = await kb.retrieve(message)
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if result:
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rag_context = "\n\n".join(
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f"[{i+1}] {entry.metadata.get('text', '')}" for i, entry in enumerate(result)
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)
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rag_message = llm_entities.Message(
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role="user",
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content="The following are relevant context entries retrieved from the knowledge base. "
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"Please use them to answer the user's question. "
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"Respond in the same language as the user's input.\n\n" + rag_context
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)
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req_messages += [rag_message]
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# 首次请求
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msg = await query.use_llm_model.requester.invoke_llm(
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query,
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@@ -44,7 +44,8 @@
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"role": "system",
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"content": "You are a helpful assistant."
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}
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]
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],
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"knowledge-base": ""
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},
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"dify-service-api": {
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"base-url": "https://api.dify.ai/v1",
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@@ -68,6 +68,13 @@ stages:
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zh_Hans: 除非您了解消息结构,否则请只使用 system 单提示词
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type: prompt-editor
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required: true
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- name: knowledge-base
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label:
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en_US: Knowledge Base
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zh_Hans: 知识库
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type: knowledge-base-selector
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required: false
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default: ''
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- name: dify-service-api
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label:
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en_US: Dify Service API
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@@ -298,3 +305,4 @@ stages:
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type: string
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required: false
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default: 'response'
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