87 lines
2.6 KiB
Python
87 lines
2.6 KiB
Python
from pydantic import BaseModel, Field
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from pydantic_ai import FunctionToolset, RunContext
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from haiku.rag.agents.rlm.agent import create_rlm_agent
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from haiku.rag.agents.rlm.dependencies import RLMContext, RLMDeps
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from haiku.rag.agents.rlm.sandbox import Sandbox
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from haiku.rag.config.models import AppConfig
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from haiku.rag.tools.context import RAGDeps
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from haiku.rag.tools.filters import (
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build_document_filter,
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combine_filters,
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)
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class AnalysisResult(BaseModel):
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"""Result from the analysis toolset (RLM execution)."""
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answer: str = Field(description="The answer produced by analysis")
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code_executed: bool = Field(
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default=True,
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description="Whether code was executed to produce this answer",
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)
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def create_analysis_toolset(
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config: AppConfig,
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base_filter: str | None = None,
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tool_name: str = "analyze",
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) -> FunctionToolset[RAGDeps]:
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"""Create a toolset with code analysis capabilities via RLM agent.
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Args:
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config: Application configuration.
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base_filter: Optional base SQL WHERE clause applied to searches.
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tool_name: Name for the analyze tool. Defaults to "analyze".
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Returns:
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FunctionToolset with an analyze tool.
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"""
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async def analyze( # pragma: no cover
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ctx: RunContext[RAGDeps],
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task: str,
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document_name: str | None = None,
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) -> AnalysisResult:
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"""Execute a computational task via code execution.
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Uses the RLM (Recursive Language Model) agent to write and execute
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Python code to answer the task.
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Args:
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task: A specific, actionable instruction describing what to compute.
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document_name: Optional document name/title to focus on.
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Returns:
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AnalysisResult with answer and execution metadata.
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"""
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client = ctx.deps.client
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doc_filter = build_document_filter(document_name) if document_name else None
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effective_filter = combine_filters(base_filter, doc_filter)
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rlm_context = RLMContext(filter=effective_filter)
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sandbox = Sandbox(
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client=client,
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config=config,
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context=rlm_context,
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)
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deps = RLMDeps(
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sandbox=sandbox,
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context=rlm_context,
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)
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rlm_agent = create_rlm_agent(config)
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result = await rlm_agent.run(task, deps=deps)
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program = result.output.program
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return AnalysisResult(
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answer=result.output.answer,
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code_executed=bool(program),
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)
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toolset: FunctionToolset[RAGDeps] = FunctionToolset()
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toolset.add_function(analyze, name=tool_name)
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return toolset
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