forked from phoenix-oss/llama-stack-mirror
fix(responses): use input, not original_input when storing the Response (#2300)
We must store the full (re-hydrated) input not just the original input in the Response object. Of course, this is not very space efficient and we should likely find a better storage scheme so that we can only store unique entries in the database and then re-hydrate them efficiently later. But that can be done safely later. Closes https://github.com/meta-llama/llama-stack/issues/2299 ## Test Plan Unit test
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2 changed files with 76 additions and 11 deletions
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@ -292,12 +292,12 @@ class OpenAIResponsesImpl:
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async def _store_response(
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self,
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response: OpenAIResponseObject,
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original_input: str | list[OpenAIResponseInput],
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input: str | list[OpenAIResponseInput],
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) -> None:
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new_input_id = f"msg_{uuid.uuid4()}"
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if isinstance(original_input, str):
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if isinstance(input, str):
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# synthesize a message from the input string
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input_content = OpenAIResponseInputMessageContentText(text=original_input)
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input_content = OpenAIResponseInputMessageContentText(text=input)
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input_content_item = OpenAIResponseMessage(
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role="user",
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content=[input_content],
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@ -307,7 +307,7 @@ class OpenAIResponsesImpl:
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else:
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# we already have a list of messages
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input_items_data = []
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for input_item in original_input:
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for input_item in input:
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if isinstance(input_item, OpenAIResponseMessage):
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# These may or may not already have an id, so dump to dict, check for id, and add if missing
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input_item_dict = input_item.model_dump()
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@ -334,7 +334,6 @@ class OpenAIResponsesImpl:
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tools: list[OpenAIResponseInputTool] | None = None,
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):
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stream = False if stream is None else stream
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original_input = input # Keep reference for storage
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output_messages: list[OpenAIResponseOutput] = []
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@ -372,7 +371,7 @@ class OpenAIResponsesImpl:
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inference_result=inference_result,
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ctx=ctx,
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output_messages=output_messages,
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original_input=original_input,
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input=input,
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model=model,
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store=store,
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tools=tools,
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@ -382,7 +381,7 @@ class OpenAIResponsesImpl:
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inference_result=inference_result,
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ctx=ctx,
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output_messages=output_messages,
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original_input=original_input,
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input=input,
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model=model,
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store=store,
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tools=tools,
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@ -393,7 +392,7 @@ class OpenAIResponsesImpl:
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inference_result: Any,
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ctx: ChatCompletionContext,
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output_messages: list[OpenAIResponseOutput],
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original_input: str | list[OpenAIResponseInput],
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input: str | list[OpenAIResponseInput],
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model: str,
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store: bool | None,
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tools: list[OpenAIResponseInputTool] | None,
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@ -423,7 +422,7 @@ class OpenAIResponsesImpl:
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if store:
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await self._store_response(
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response=response,
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original_input=original_input,
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input=input,
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)
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return response
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@ -433,7 +432,7 @@ class OpenAIResponsesImpl:
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inference_result: Any,
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ctx: ChatCompletionContext,
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output_messages: list[OpenAIResponseOutput],
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original_input: str | list[OpenAIResponseInput],
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input: str | list[OpenAIResponseInput],
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model: str,
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store: bool | None,
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tools: list[OpenAIResponseInputTool] | None,
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@ -544,7 +543,7 @@ class OpenAIResponsesImpl:
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if store:
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await self._store_response(
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response=final_response,
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original_input=original_input,
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input=input,
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)
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# Emit response.completed
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@ -628,3 +628,69 @@ async def test_responses_store_list_input_items_logic():
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result = await responses_store.list_response_input_items("resp_123", limit=0, order=Order.asc)
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assert result.object == "list"
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assert len(result.data) == 0 # Should return no items
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@pytest.mark.asyncio
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async def test_store_response_uses_rehydrated_input_with_previous_response(
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openai_responses_impl, mock_responses_store, mock_inference_api
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):
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"""Test that _store_response uses the full re-hydrated input (including previous responses)
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rather than just the original input when previous_response_id is provided."""
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# Setup - Create a previous response that should be included in the stored input
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previous_response = OpenAIResponseObjectWithInput(
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id="resp-previous-123",
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object="response",
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created_at=1234567890,
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model="meta-llama/Llama-3.1-8B-Instruct",
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status="completed",
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input=[
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OpenAIResponseMessage(
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id="msg-prev-user", role="user", content=[OpenAIResponseInputMessageContentText(text="What is 2+2?")]
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)
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],
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output=[
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OpenAIResponseMessage(
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id="msg-prev-assistant",
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role="assistant",
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content=[OpenAIResponseOutputMessageContentOutputText(text="2+2 equals 4.")],
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)
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],
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)
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mock_responses_store.get_response_object.return_value = previous_response
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current_input = "Now what is 3+3?"
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model = "meta-llama/Llama-3.1-8B-Instruct"
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mock_chat_completion = load_chat_completion_fixture("simple_chat_completion.yaml")
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mock_inference_api.openai_chat_completion.return_value = mock_chat_completion
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# Execute - Create response with previous_response_id
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result = await openai_responses_impl.create_openai_response(
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input=current_input,
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model=model,
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previous_response_id="resp-previous-123",
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store=True,
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)
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store_call_args = mock_responses_store.store_response_object.call_args
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stored_input = store_call_args.kwargs["input"]
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# Verify that the stored input contains the full re-hydrated conversation:
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# 1. Previous user message
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# 2. Previous assistant response
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# 3. Current user message
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assert len(stored_input) == 3
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assert stored_input[0].role == "user"
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assert stored_input[0].content[0].text == "What is 2+2?"
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assert stored_input[1].role == "assistant"
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assert stored_input[1].content[0].text == "2+2 equals 4."
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assert stored_input[2].role == "user"
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assert stored_input[2].content == "Now what is 3+3?"
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# Verify the response itself is correct
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assert result.model == model
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assert result.status == "completed"
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