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from typing import Any, Callable, Optional |
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from agents import Agent, Runner, RunResult |
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from agents.run_context import TContext |
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class ResearchAgent(Agent[TContext]): |
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""" |
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This is a custom implementation of the OpenAI Agent class that supports output parsing |
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for models that don't support structured output types. The user can specify an output_parser |
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function that will be called with the raw output from the agent. This can run custom logic |
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such as cleaning up the output and converting it to a structured JSON object. |
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Needs to be run with the ResearchRunner to work. |
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""" |
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def __init__( |
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self, *args, output_parser: Optional[Callable[[str], Any]] = None, **kwargs |
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): |
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self.output_parser = output_parser |
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if self.output_parser and kwargs.get("output_type"): |
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raise ValueError("Cannot specify both output_parser and output_type") |
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super().__init__(*args, **kwargs) |
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async def parse_output(self, run_result: RunResult) -> RunResult: |
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""" |
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Process the RunResult by applying the output_parser to its final_output if specified. |
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This preserves the RunResult structure while modifying its content. |
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""" |
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if self.output_parser: |
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raw_output = run_result.final_output |
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parsed_output = self.output_parser(raw_output) |
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run_result.final_output = parsed_output |
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return run_result |
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class ResearchRunner(Runner): |
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""" |
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Custom implementation of the OpenAI Runner class that supports output parsing |
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for models that don't support structured output types with tools. |
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Needs to be run with the ResearchAgent class. |
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""" |
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@classmethod |
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async def run(cls, *args, **kwargs) -> RunResult: |
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""" |
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Run the agent and process its output with the custom parser if applicable. |
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""" |
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result = await Runner.run(*args, **kwargs) |
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starting_agent = kwargs.get("starting_agent") or args[0] |
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if isinstance(starting_agent, ResearchAgent): |
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return await starting_agent.parse_output(result) |
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return result |
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class GeneralAgent(Agent[TContext]): |
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""" |
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This is a custom implementation of the OpenAI Agent class that supports output parsing |
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for models that don't support structured output types. The user can specify an output_parser |
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function that will be called with the raw output from the agent. This can run custom logic |
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such as cleaning up the output and converting it to a structured JSON object. |
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Needs to be run with the GeneralRunner to work. |
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""" |
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def __init__( |
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self, *args, output_parser: Optional[Callable[[str], Any]] = None, **kwargs |
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): |
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self.output_parser = output_parser |
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if self.output_parser and kwargs.get("output_type"): |
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raise ValueError("Cannot specify both output_parser and output_type") |
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super().__init__(*args, **kwargs) |
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async def parse_output(self, run_result: RunResult) -> RunResult: |
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""" |
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Process the RunResult by applying the output_parser to its final_output if specified. |
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This preserves the RunResult structure while modifying its content. |
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""" |
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if self.output_parser: |
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raw_output = run_result.final_output |
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parsed_output = self.output_parser(raw_output) |
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run_result.final_output = parsed_output |
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return run_result |
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class GeneralRunner(Runner): |
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""" |
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Custom implementation of the OpenAI Runner class that supports output parsing |
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for models that don't support structured output types with tools. |
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Needs to be run with the ResearchAgent class. |
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""" |
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@classmethod |
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async def run(cls, *args, **kwargs) -> RunResult: |
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""" |
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Run the agent and process its output with the custom parser if applicable. |
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""" |
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result = await Runner.run(*args, **kwargs) |
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starting_agent = kwargs.get("starting_agent") or args[0] |
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if isinstance(starting_agent, GeneralAgent): |
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return await starting_agent.parse_output(result) |
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return result |
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