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agent-framework/python/packages/chatkit
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Evan Mattson f5419b9f38 Python: bump package versions for 1.2.2 release (#5561)
* Python: bump package versions for 1.2.2 release

PATCH bump (1.2.1 -> 1.2.2) for the released cohort. Five PRs land in this
window:

- agent-framework-openai: fix file_search citations breaking the assistant-
  message history roundtrip (#5557) โ€” drives the released-tier PATCH
- agent-framework-orchestrations: [BREAKING] standardize orchestration
  terminal outputs as AgentResponse (#5301)
- agent-framework-core, agent-framework-declarative: preserve Workflow.run()
  shared state across calls, accept list[Message] in declarative start
  executor, and coerce Enum values when serializing PowerFx symbols (#5531)
- agent-framework-foundry-hosting: add hosted Durable Workflow support
  (#5531)
- agent-framework-azure-contentunderstanding: new alpha package โ€” Azure AI
  Content Understanding context provider (#4829)
- dependencies: workspace package dependency refresh (#5555)

Per lockstep convention, all 21 beta packages stamp 1.0.0b260429 and all 4
alpha packages (now including the new contentunderstanding) stamp
1.0.0a260429. Date stamp reflects 2026-04-29 Pacific. Every non-core package
floor on agent-framework-core is raised to >=1.2.2; the new
contentunderstanding package's stale >=1.0.0 floor is brought into line.

Two follow-on fixes bundled to keep validate-dependency-bounds-test green
at lowest-direct resolution:
- Bump agent-framework-azure-contentunderstanding's azure-ai-content
  understanding lower bound from >=1.0.0 to >=1.0.1 (1.0.0 ships without
  proper typing โ€” pyright reports 65 unknown-type errors)
- Add pyright ignore comments to core/foundry/__init__.pyi for the new
  alpha package's type-stub imports, since alpha packages are not in
  core's [all] extra and therefore aren't installed at lowest-direct

* Python: add #5552 to 1.2.2 CHANGELOG

Add the streaming-span observability fix to the Fixed section. PR is on
upstream/main but not yet pulled into origin/main; the code itself will
land via the PR merge.

* Python: address PR #5561 review feedback on dependency bounds

Two packaging fixes flagged in review:

1. agent-framework-azure-contentunderstanding: add agent-framework-foundry
   as a runtime dependency. The package's README directs users to
   `pip install agent-framework-azure-contentunderstanding --pre` and the
   basic example imports `FoundryChatClient` from `agent_framework.foundry`,
   so the documented install path was failing with ImportError. Pulling
   agent-framework-foundry into deps makes the advertised entry path
   self-contained.

2. agent-framework-foundry: bump agent-framework-openai lower bound from
   >=1.1.0 to >=1.2.2,<2. Foundry imports private modules from
   agent_framework_openai (`_chat_client.py:22`, `_agent.py:34`), so
   resolvers were free to pair foundry==1.2.2 with older OpenAI versions
   that lack this release's coordinated Responses/history fix. Lockstep the
   floor with the released cohort to prevent mismatched installs.

Both changes pass `validate-dependency-bounds-test` lower + upper at
their respective packages.
f5419b9f38 ยท 2026-04-29 17:51:48 +09:00
History
..

Agent Framework and ChatKit Integration

This package provides an integration layer between Microsoft Agent Framework and OpenAI ChatKit (Python). Specifically, it mirrors the Agent SDK integration, and provides the following helpers:

  • stream_agent_response: A helper to convert a streamed AgentResponseUpdate from a Microsoft Agent Framework agent that implements SupportsAgentRun to ChatKit events.
  • ThreadItemConverter: A extendable helper class to convert ChatKit thread items to Message objects that can be consumed by an Agent Framework agent.
  • simple_to_agent_input: A helper function that uses the default implementation of ThreadItemConverter to convert a ChatKit thread to a list of Message, useful for getting started quickly.

Installation

pip install agent-framework-chatkit --pre

This will install agent-framework-core and openai-chatkit as dependencies.

Requirements and Limitations

Frontend Requirements

The ChatKit integration requires the OpenAI ChatKit frontend library, which has the following requirements:

  1. Internet Connectivity Required: The ChatKit UI is loaded from OpenAI's CDN (cdn.platform.openai.com). This library cannot be self-hosted or bundled locally.

  2. External Network Requests: The ChatKit frontend makes requests to:

    • cdn.platform.openai.com - UI library (required)
    • chatgpt.com/ces/v1/projects/oai/settings - Configuration
    • api-js.mixpanel.com - Telemetry (metadata only, not user messages)
  3. Domain Registration for Production: Production deployments require registering your domain at platform.openai.com and configuring a domain key.

Air-Gapped / Regulated Environments

The ChatKit frontend is not suitable for air-gapped or highly-regulated environments where outbound connections to OpenAI domains are restricted.

What IS self-hostable:

  • The backend components (chatkit-python, agent-framework-chatkit) are fully open source and have no external dependencies

What is NOT self-hostable:

  • The frontend UI (chatkit.js) requires connectivity to OpenAI's CDN

For environments with network restrictions, consider building a custom frontend that consumes the ChatKit server protocol, or using alternative UI libraries like ai-sdk.

See openai/chatkit-js#57 for tracking self-hosting feature requests.

Example Usage

Here's a minimal example showing how to integrate Agent Framework with ChatKit:

from collections.abc import AsyncIterator
from typing import Any

from azure.identity import AzureCliCredential
from fastapi import FastAPI, Request
from fastapi.responses import Response, StreamingResponse

from agent_framework import Agent
from agent_framework.openai import OpenAIChatCompletionClient
from agent_framework.chatkit import simple_to_agent_input, stream_agent_response

from chatkit.server import ChatKitServer
from chatkit.types import ThreadMetadata, UserMessageItem, ThreadStreamEvent

# You'll need to implement a Store - see the sample for a SQLiteStore implementation
from your_store import YourStore  # type: ignore[import-not-found]  # Replace with your Store implementation

# Define your agent with tools
agent = Agent(
    client=OpenAIChatCompletionClient(credential=AzureCliCredential()),
    instructions="You are a helpful assistant.",
    tools=[],  # Add your tools here
)

# Create a ChatKit server that uses your agent
class MyChatKitServer(ChatKitServer[dict[str, Any]]):
    async def respond(
        self,
        thread: ThreadMetadata,
        input_user_message: UserMessageItem | None,
        context: dict[str, Any],
    ) -> AsyncIterator[ThreadStreamEvent]:
        if input_user_message is None:
            return

        # Load full thread history to maintain conversation context
        thread_items_page = await self.store.load_thread_items(
            thread_id=thread.id,
            after=None,
            limit=1000,
            order="asc",
            context=context,
        )

        # Convert all ChatKit messages to Agent Framework format
        agent_messages = await simple_to_agent_input(thread_items_page.data)

        # Run the agent and stream responses
        response_stream = agent.run(agent_messages, stream=True)

        # Convert agent responses back to ChatKit events
        async for event in stream_agent_response(response_stream, thread.id):
            yield event

# Set up FastAPI endpoint
app = FastAPI()
chatkit_server = MyChatKitServer(YourStore())  # type: ignore[misc]

@app.post("/chatkit")
async def chatkit_endpoint(request: Request):
    result = await chatkit_server.process(await request.body(), {"request": request})

    if hasattr(result, '__aiter__'):  # Streaming
        return StreamingResponse(result, media_type="text/event-stream")  # type: ignore[arg-type]
    else:  # Non-streaming
        return Response(content=result.json, media_type="application/json")  # type: ignore[union-attr]

For a complete end-to-end example with a full frontend, see the weather agent sample.