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Fix/agent react output parser (#2689)
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@ -28,6 +28,9 @@ from models.model import Conversation, Message
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class AssistantCotApplicationRunner(BaseAssistantApplicationRunner):
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_is_first_iteration = True
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_ignore_observation_providers = ['wenxin']
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def run(self, conversation: Conversation,
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message: Message,
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query: str,
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@ -42,10 +45,8 @@ class AssistantCotApplicationRunner(BaseAssistantApplicationRunner):
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agent_scratchpad: list[AgentScratchpadUnit] = []
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self._init_agent_scratchpad(agent_scratchpad, self.history_prompt_messages)
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# check model mode
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if self.app_orchestration_config.model_config.mode == "completion":
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# TODO: stop words
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if 'Observation' not in app_orchestration_config.model_config.stop:
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if 'Observation' not in app_orchestration_config.model_config.stop:
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if app_orchestration_config.model_config.provider not in self._ignore_observation_providers:
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app_orchestration_config.model_config.stop.append('Observation')
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# override inputs
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@ -202,6 +203,7 @@ class AssistantCotApplicationRunner(BaseAssistantApplicationRunner):
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)
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)
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scratchpad.thought = scratchpad.thought.strip() or 'I am thinking about how to help you'
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agent_scratchpad.append(scratchpad)
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# get llm usage
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@ -255,9 +257,15 @@ class AssistantCotApplicationRunner(BaseAssistantApplicationRunner):
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# invoke tool
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error_response = None
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try:
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if isinstance(tool_call_args, str):
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try:
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tool_call_args = json.loads(tool_call_args)
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except json.JSONDecodeError:
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pass
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tool_response = tool_instance.invoke(
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user_id=self.user_id,
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tool_parameters=tool_call_args if isinstance(tool_call_args, dict) else json.loads(tool_call_args)
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tool_parameters=tool_call_args
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)
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# transform tool response to llm friendly response
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tool_response = self.transform_tool_invoke_messages(tool_response)
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@ -466,7 +474,7 @@ class AssistantCotApplicationRunner(BaseAssistantApplicationRunner):
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if isinstance(message, AssistantPromptMessage):
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current_scratchpad = AgentScratchpadUnit(
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agent_response=message.content,
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thought=message.content,
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thought=message.content or 'I am thinking about how to help you',
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action_str='',
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action=None,
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observation=None,
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@ -546,7 +554,8 @@ class AssistantCotApplicationRunner(BaseAssistantApplicationRunner):
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result = ''
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for scratchpad in agent_scratchpad:
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result += scratchpad.thought + next_iteration.replace("{{observation}}", scratchpad.observation or '') + "\n"
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result += (scratchpad.thought or '') + (scratchpad.action_str or '') + \
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next_iteration.replace("{{observation}}", scratchpad.observation or 'It seems that no response is available')
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return result
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@ -621,21 +630,24 @@ class AssistantCotApplicationRunner(BaseAssistantApplicationRunner):
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))
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# add assistant message
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if len(agent_scratchpad) > 0:
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if len(agent_scratchpad) > 0 and not self._is_first_iteration:
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prompt_messages.append(AssistantPromptMessage(
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content=(agent_scratchpad[-1].thought or '')
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content=(agent_scratchpad[-1].thought or '') + (agent_scratchpad[-1].action_str or ''),
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))
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# add user message
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if len(agent_scratchpad) > 0:
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if len(agent_scratchpad) > 0 and not self._is_first_iteration:
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prompt_messages.append(UserPromptMessage(
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content=(agent_scratchpad[-1].observation or ''),
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content=(agent_scratchpad[-1].observation or 'It seems that no response is available'),
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))
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self._is_first_iteration = False
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return prompt_messages
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elif mode == "completion":
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# parse agent scratchpad
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agent_scratchpad_str = self._convert_scratchpad_list_to_str(agent_scratchpad)
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self._is_first_iteration = False
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# parse prompt messages
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return [UserPromptMessage(
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content=first_prompt.replace("{{instruction}}", instruction)
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@ -174,7 +174,18 @@ class Tool(BaseModel, ABC):
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return result
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def invoke(self, user_id: str, tool_parameters: dict[str, Any]) -> list[ToolInvokeMessage]:
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def invoke(self, user_id: str, tool_parameters: Union[dict[str, Any], str]) -> list[ToolInvokeMessage]:
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# check if tool_parameters is a string
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if isinstance(tool_parameters, str):
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# check if this tool has only one parameter
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parameters = [parameter for parameter in self.parameters if parameter.form == ToolParameter.ToolParameterForm.LLM]
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if parameters and len(parameters) == 1:
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tool_parameters = {
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parameters[0].name: tool_parameters
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}
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else:
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raise ValueError(f"tool_parameters should be a dict, but got a string: {tool_parameters}")
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# update tool_parameters
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if self.runtime.runtime_parameters:
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tool_parameters.update(self.runtime.runtime_parameters)
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