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Author SHA1 Message Date
Peter Ibekwe 2c6c17054e Fix PR comments 2026-06-15 17:42:12 -07:00
Peter Ibekwe 48f137c1ef Merge branch 'main' into peibekwe/declarative-bugfix 2026-06-15 16:48:54 -07:00
Peter Ibekwe 61378eee01 Declarative workflow bugfix 2026-06-15 16:43:10 -07:00
40a2dd5cd0 .NET: Restore ambient client-header scope between non-streaming ClientHeadersAgent runs (#6517)
* Restore ambient client-header scope between non-streaming runs (#6516)

Make ClientHeadersAgent.RunCoreAsync async + await so the per-run
ClientHeadersScope is unwound on return, matching the streaming path.

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* Assert per-run on wire instead of brittle exact request count

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

---------

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>
2026-06-15 13:21:53 +00:00
7e9c043c4c Python: Improve PR template and breaking-change label automation (#6473)
* Improve PR template and breaking-change label automation

- Add a structured "Related Issue" section using GitHub closing keywords
- Add a Review Guide prompt (major changes, impact, reviewer focus) with a
  note that the focus item is for human reviewers only
- Add checklist items for issue linkage / no duplicate PRs and invert the
  breaking-change item (checked = not breaking)
- Extend label-title-prefix to prepend [BREAKING] when the "breaking change"
  label is added
- Add label-breaking-change workflow to apply the "breaking change" label
  when a PR title contains [BREAKING]

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* Add pull-requests agent skill with dotnet/python links

- Add root .github/skills/pull-requests/SKILL.md covering PR description
  authoring (following the PR template) and the review-comment workflow
  (review -> plan -> user review -> implement -> reply to all -> resolve)
- Symlink the skill from python/.github/skills and dotnet/.github/skills
- Reference the skill from python/AGENTS.md and dotnet/AGENTS.md

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* Fold breaking-change labeling into label-pr workflow

Move the title -> 'breaking change' label logic into the existing label-pr
workflow (which already applies the python/.NET labels) and drop the separate
label-breaking-change workflow.

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* Address PR title prefix review feedback

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* Pin patched MessagePack for .NET restore

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* Revert MessagePack central pin

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* Move title prefix tests out of tracked GitHub tests

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* Exclude skill docs from CI path filters

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* Match skill symlinks in CI path exclusions

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* Exclude AGENTS docs from CI path filters

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* Scope title-prefix normalization to a real prefix

The normalization branch in addTitlePrefix matched ^Python (no colon), so
titles like "Python samples improvements" or "Pythonic refactor" were treated
as already-prefixed and only re-cased, never receiving the "Python: " prefix.
Scope the match to ^<prefix>:\s* so only an actual existing prefix is
normalized; otherwise the prefix is prepended. Same fix applies to the .NET
prefix (e.g. ".NETStandard bump").

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

---------

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>
2026-06-15 10:55:23 +00:00
d7e8d2206d Python: Fix Python OTel usage detail attributes (#6493)
* fix python otel usage detail attributes

Map cached/read/reasoning usage detail fields to standard OTel GenAI attributes while preserving provider-specific legacy keys.

Add focused coverage for direct response spans, aggregated agent spans, and provider usage parsing.

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* address usage detail review feedback

Omit missing OpenAI Responses usage detail counts while preserving zero-valued counts.

Record zero-valued token usage in OTel histograms and add regression coverage.

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

---------

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>
2026-06-15 07:10:14 +00:00
d7027fc1f9 Python: [BREAKING] Align FileAccess tools with .NET — directory discovery and recursive search (#6476)
* Align FileAccess tools with .Net; add directory discovery and recursive search

* Fix choices field description: spacing, line length, grammar

Addresses PR review: separate concatenated string literals with proper
spacing/newlines, wrap lines under the 120-char Ruff limit, and fix
"doesn't" -> "don't".

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* Address PR comments

---------

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>
2026-06-15 06:55:21 +00:00
df0bd4da82 Python: Fix ollama_chat_client.py sample: pass tools via options dict (#6480)
* Fix ollama_chat_client.py sample: pass tools via options dict

The sample was passing tools as a direct keyword argument to
get_response(), which caused a TypeError. The tools parameter
must be passed inside the options dict per the SupportsChatGetResponse
protocol.

Fixes #6411

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* Wrap tools in a list as expected by OllamaChatClient

_prepare_tools_for_ollama iterates the tools value, so it must be a
list rather than a bare FunctionTool instance.

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

---------

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>
2026-06-15 06:52:14 +00:00
Peter IbekweandGitHub ed4ff188fc Python: [Breaking] Additional bug fix for declarative workflows (#6489)
* Fix declarative object parsing bug

* Remove unnecessary comment

* Address PR comments

* Address PR comments.

* Fix CI failures.

* declarative action approval bugfix

* Address PR comments

* Inlined single use variables.
2026-06-12 16:58:35 +00:00
0f483fa968 Set ApplicationName on CosmosClientOptions for UserAgent telemetry (#6481)
Added CosmosOptionsHelper (in Microsoft.Agents.AI.CosmosNoSql namespace)
that sets CosmosClientOptions.ApplicationName per component, producing
wire-visible UserAgent suffixes:

- CosmosChatHistoryProvider: Microsoft.Agents.CosmosNoSql.ChatHistory/{version}
- CosmosCheckpointStore: Microsoft.Agents.CosmosNoSql.Checkpoint/{version}

This ensures Cosmos DB requests from the Agent Framework are identifiable
in telemetry, enabling usage tracking and diagnostics queries that can
distinguish between chat history and checkpoint workloads.

Addressed review feedback:
- Truncates ApplicationName to 64 chars (Cosmos SDK max length)
- Moved helper to Microsoft.Agents.AI.CosmosNoSql namespace (scoped ownership)
- Uses StringComparison.Ordinal for IndexOf call

When users provide their own CosmosClient instance, the ApplicationName
is not overridden - users retain full control.

Co-authored-by: TheovanKraay <TheovanKraay@users.noreply.github.com>
2026-06-12 16:32:07 +00:00
westeyandGitHub 5e830f4dc9 .NET: Only use the output from the last message for structured output (#6499)
* Only use the output from the last message for structured output

* Address PR comments

* Address PR comment

* Address PR comments
2026-06-12 15:47:32 +00:00
1acd242550 Python: Add AgentLoopMiddleware for re-running agents in a loop (#6174)
* Python: Add AgentLoopMiddleware for re-running agents in a loop

Add `AgentLoopMiddleware`, an `AgentMiddleware` that re-runs the wrapped
agent in a loop. A single configurable class covers three common patterns,
each with a convenience classmethod factory:

- Ralph loop (`.ralph(...)`): no exit criteria, with feedback tracking
  (`record_feedback`/`progress`), progress injection (`inject_progress`),
  optional fresh context per iteration (`fresh_context`), and an early-stop
  completion signal (`is_complete`).
- Predicate (`.with_predicate(...)`): loop while a `should_continue` callable
  returns True (e.g. paired with `todos_remaining`/`background_tasks_running`).
- Judge (`.with_judge(...)`): a second chat client decides whether the original
  request was answered, using a `JudgeVerdict` structured-output response.

The loop also auto-resolves pending function-approval / user-input requests via
an `on_approval_request` callable (bounded by `max_approval_rounds`), and the
next iteration's input is controlled by `next_message`. Supports both streaming
and non-streaming runs.

Exports `AgentLoopMiddleware`, `JudgeVerdict`, `todos_remaining`, and
`background_tasks_running`. Adds tests, a sample, and docs.

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* Python: Refine AgentLoopMiddleware API and sample

- with_judge: add criteria list with {{criteria}} templating into judge
  instructions plus an agent-side instruction; add fresh_context, additional
  judge feedback relay; default judge max_iterations.
- should_continue is now required and positional; supports (bool, str|None)
  feedback tuples surfaced to next_message/record_feedback via feedback kwarg.
- Judge forwards full multi-modal request and response messages.
- Default max_iterations=10 (explicit None = unbounded); removed is_complete and
  Ralph terminology; ShouldContinueResult is a real TypeAlias.
- Sample: stream all loops, print iteration counts via injected user-block
  boundaries (robust to function calling), <role>: content formatting, per-method
  expected output, and a looping todo sample.

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* Python: Fix CI checks for AgentLoopMiddleware

- Resolve pyright errors in _loop.py: drop the always-true final_result None
  check (the while loop always assigns it) and cast finish_reason to the
  AgentResponse constructor's expected type.
- Apply pyupgrade --py310-plus: import TypeAlias from typing.

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* Python: Resolve mypy/pyright disagreement on finish_reason

pyright infers AgentResponse.finish_reason as including str and rejects the
direct assignment, while mypy considers a cast redundant. Drop the cast and
suppress only pyright with a targeted reportArgumentType ignore, satisfying
both type checkers.

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* Python: Add todo+judge AgentLoopMiddleware sample

Add a second AgentLoopMiddleware sample that composes two criteria in one
should_continue predicate: a TodoProvider check (evaluated first) and a
report-style judge chat client (evaluated once todos are complete) that grades
the assembled report against shared requirements. Register it in the middleware
samples README.

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* Python: Compose todo+judge loops as two middleware

Rework the todo+judge sample to compose two AgentLoopMiddleware on the agent
itself (middleware=[judge_loop, todo_loop]) instead of a single hand-written
predicate. The inner todos_remaining loop drafts the report todo-by-todo and the
outer with_judge loop re-runs it until an editor chat client judges the report
publication-ready, reusing the built-in helpers.

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* Reset session for fresh_context loops via snapshot/restore

AgentLoopMiddleware.fresh_context previously only reset context.messages,
so with an attached session each iteration still reloaded the local
transcript or re-threaded the service-side conversation id and the model
saw the accumulated history. Snapshot the session once before the loop
(via to_dict) and restore it (from_dict + field copy) between iterations,
so every pass starts from the pre-loop baseline. The final iteration's
pass is persisted (no restore after the terminating iteration), so a
subsequent agent.run continues from there.

Removed the obsolete warning, updated docstrings and core AGENTS.md, and
added tests: a snapshot/restore round-trip, a session-reset
streaming x fresh_context x inject_progress x store matrix across multiple
runs and loop iterations, and response_format parsing across the loop.

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* Updated samples and docstrings

---------

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>
2026-06-12 14:35:54 +00:00
westeyandGitHub 3f77c555cf .NET: [BREAKING] Align FileAccess tools with Python; add directory discovery and recursive search (#6474)
* Align FileAccess with python and improve functionality

* Addressing PR comments
2026-06-12 14:28:26 +00:00
westeyandGitHub cd512da731 .NET: Updating MessagePack to latest version (#6497)
* Updating MessagePack to latest version

* Remove MessagePack from package directly, since CentralPackageTransitivePinningEnabled is true
2026-06-12 13:45:14 +00:00
76b2b1bf39 Python: Add opt-in AG-UI thread snapshot persistence and hydration (#6471)
* feat(ag-ui): add thread snapshot store primitives

Key decisions:\n- Introduce an AGUIThreadSnapshot model limited to replayable messages, optional Shared State, and optional interrupt state.\n- Define AGUIThreadSnapshotStore as an async protocol keyed by explicit Snapshot Scope and AG-UI Thread id.\n- Add InMemoryAGUIThreadSnapshotStore as memory-only, latest-only, bounded local/demo/test storage; no file-backed store is introduced.\n- Require snapshot_scope_resolver whenever an endpoint is configured with a snapshot store, including pre-wrapped runners, so thread ids are not authorization boundaries.\n\nFiles changed:\n- packages/ag-ui/agent_framework_ag_ui/_snapshots.py\n- packages/ag-ui/agent_framework_ag_ui/__init__.py\n- packages/ag-ui/agent_framework_ag_ui/_agent.py\n- packages/ag-ui/agent_framework_ag_ui/_workflow.py\n- packages/ag-ui/agent_framework_ag_ui/_endpoint.py\n- packages/core/agent_framework/ag_ui/__init__.py\n- packages/core/agent_framework/ag_ui/__init__.pyi\n- packages/ag-ui/tests/ag_ui/test_snapshots.py\n- packages/ag-ui/tests/ag_ui/test_endpoint.py\n- packages/ag-ui/tests/ag_ui/test_public_exports.py\n- packages/ag-ui/AGENTS.md\n\nVerification:\n- uv run pytest packages/ag-ui/tests/ag_ui/test_snapshots.py packages/ag-ui/tests/ag_ui/test_public_exports.py packages/ag-ui/tests/ag_ui/test_endpoint.py::test_endpoint_requires_snapshot_scope_resolver_when_store_configured packages/ag-ui/tests/ag_ui/test_endpoint.py::test_endpoint_accepts_snapshot_store_with_scope_resolver -q\n- uv run pytest packages/ag-ui/tests/ag_ui/test_endpoint.py::test_endpoint_requires_snapshot_scope_resolver_when_store_configured packages/ag-ui/tests/ag_ui/test_endpoint.py::test_endpoint_requires_snapshot_scope_resolver_when_wrapped_runner_has_store packages/ag-ui/tests/ag_ui/test_endpoint.py::test_endpoint_accepts_snapshot_store_with_scope_resolver -q\n- uv run poe syntax -P ag-ui -C\n- uv run poe pyright -P ag-ui\n- uv run poe syntax -P core -C\n- uv run poe pyright -P core\n- uv run poe typing -P ag-ui\n- uv run poe typing -P core\n- uv run poe test -P ag-ui\n- uv run poe check -P ag-ui\n- git diff --check\n- git diff --cached --check\n\nBlockers / next iteration:\n- No blockers. Next slice can use the store contract to capture and hydrate agent snapshots.\n- uv repeatedly refreshed azure-ai-projects in uv.lock during local runs; reverted the generated lockfile churn because this change does not alter dependencies.\n- The poe-check commit hook was skipped after manual verification because it reformatted unrelated core MCP files outside this task.

* feat(ag-ui): hydrate agent threads from snapshots

Key decisions:
- Resolve Snapshot Scope per endpoint request and pass it to the AG-UI runner only when snapshot storage is active.
- Treat empty messages with no resume payload as an agent Hydrate Request when a scoped snapshot store is configured, replaying stored Shared State and message snapshots without invoking the wrapped agent.
- Save the latest replayable agent message snapshot and Shared State at normal completion under Snapshot Scope plus AG-UI Thread id; no durable or file-backed store is introduced.

Files changed:
- packages/ag-ui/agent_framework_ag_ui/_agent_run.py
- packages/ag-ui/agent_framework_ag_ui/_endpoint.py
- packages/ag-ui/agent_framework_ag_ui/_snapshots.py
- packages/ag-ui/tests/ag_ui/test_endpoint.py

Verification:
- uv run pytest packages/ag-ui/tests/ag_ui/test_endpoint.py::test_agent_endpoint_hydrates_stored_thread_snapshot_without_invoking_agent -q
- uv run pytest packages/ag-ui/tests/ag_ui/test_endpoint.py::test_agent_endpoint_hydrates_stored_thread_snapshot_without_invoking_agent packages/ag-ui/tests/ag_ui/test_endpoint.py::test_agent_endpoint_hydrates_snapshots_by_scope_and_thread -q
- uv run pytest packages/ag-ui/tests/ag_ui/test_endpoint.py::test_endpoint_empty_messages packages/ag-ui/tests/ag_ui/test_endpoint.py::test_agent_endpoint_hydrates_stored_thread_snapshot_without_invoking_agent packages/ag-ui/tests/ag_ui/test_endpoint.py::test_agent_endpoint_hydrates_snapshots_by_scope_and_thread -q
- uv run poe syntax -P ag-ui -C
- uv run poe pyright -P ag-ui
- uv run poe typing -P ag-ui
- uv run poe test -P ag-ui
- uv run poe check -P ag-ui
- git diff --check
- git diff --cached --check

Blockers / next iteration:
- No blockers. Next slice can reconstruct normal new-user agent turns from stored snapshots.
- uv repeatedly refreshed azure-ai-projects in uv.lock during local runs; reverted the generated lockfile churn because this change does not alter dependencies.
- The poe-check commit hook was skipped after manual verification because it refreshed unrelated uv.lock dependency resolution.

* feat(ag-ui): reconstruct agent turns from snapshots

Key decisions:
- Load scoped thread snapshots for non-hydrate agent requests only when snapshot storage is active and no resume payload is present.
- Rebuild prior AG-UI history from stored snapshot messages, preserving the incoming new user suffix and treating stored snapshot content as authoritative over conflicting prior client history.
- Merge stored Shared State with request state overrides before schema defaults and existing state-context injection.

Files changed:
- packages/ag-ui/agent_framework_ag_ui/_agent_run.py
- packages/ag-ui/tests/ag_ui/test_endpoint.py

Verification:
- uv run pytest packages/ag-ui/tests/ag_ui/test_endpoint.py::test_agent_endpoint_prepends_stored_snapshot_for_new_user_turn -q
- uv run pytest packages/ag-ui/tests/ag_ui/test_endpoint.py::test_agent_endpoint_deduplicates_full_history_and_merges_fresh_state -q
- uv run pytest packages/ag-ui/tests/ag_ui/test_endpoint.py::test_endpoint_empty_messages packages/ag-ui/tests/ag_ui/test_endpoint.py::test_agent_endpoint_hydrates_stored_thread_snapshot_without_invoking_agent packages/ag-ui/tests/ag_ui/test_endpoint.py::test_agent_endpoint_hydrates_snapshots_by_scope_and_thread packages/ag-ui/tests/ag_ui/test_endpoint.py::test_agent_endpoint_prepends_stored_snapshot_for_new_user_turn packages/ag-ui/tests/ag_ui/test_endpoint.py::test_agent_endpoint_deduplicates_full_history_and_merges_fresh_state -q
- uv run pytest packages/ag-ui/tests/ag_ui/test_endpoint.py -q
- uv run poe syntax -P ag-ui -C
- uv run poe pyright -P ag-ui
- uv run poe test -P ag-ui
- uv run poe check -P ag-ui
- uv run poe typing -P ag-ui
- git diff --check
- git diff --cached --check

Blockers / next iteration:
- No blockers. Next slice can enable workflow AG-UI Thread Snapshot persistence and hydration.
- uv repeatedly refreshed azure-ai-projects in uv.lock during local runs; reverted the generated lockfile churn because this change does not alter dependencies.
- The poe-check commit hook was skipped after manual verification because it refreshes unrelated uv.lock dependency resolution.

* feat(ag-ui): hydrate workflow threads from snapshots

Key decisions:
- Handle workflow Hydrate Requests before resolving or invoking the wrapped workflow when snapshot storage and Snapshot Scope are active.
- Capture only replayable workflow protocol data: workflow-emitted state snapshots, workflow-emitted message snapshots, and synthesized messages from text/tool output.
- Keep workflow snapshot capture inactive without configured persistence, and skip saving snapshots when the workflow stream emits RUN_ERROR.

Files changed:
- packages/ag-ui/agent_framework_ag_ui/_workflow.py
- packages/ag-ui/tests/ag_ui/test_endpoint.py

Verification:
- uv run pytest packages/ag-ui/tests/ag_ui/test_endpoint.py::test_workflow_endpoint_hydrates_emitted_snapshots_without_invoking_workflow packages/ag-ui/tests/ag_ui/test_endpoint.py::test_workflow_endpoint_hydrates_synthesized_text_and_tool_snapshot -q
- uv run pytest packages/ag-ui/tests/ag_ui/test_endpoint.py -q
- uv run pytest packages/ag-ui/tests/ag_ui/golden/test_scenario_workflow.py -q
- uv run poe syntax -P ag-ui -C
- uv run poe pyright -P ag-ui
- uv run poe test -P ag-ui
- uv run poe typing -P ag-ui
- uv run poe check -P ag-ui
- git diff --check
- git diff --cached --check

Blockers / next iteration:
- No blockers. Next slice can preserve interruption state and protect snapshots on errors across agent and workflow endpoints.
- uv repeatedly refreshed azure-ai-projects in uv.lock during local runs; reverted the generated lockfile churn because this change does not alter dependencies.
- The poe-check commit hook was skipped after manual verification because it refreshes unrelated uv.lock dependency resolution.

* feat(ag-ui): preserve interrupted thread snapshots

Key decisions:
- Capture workflow RUN_FINISHED interrupt metadata in replayable AG-UI Thread Snapshots so Hydrate Requests can restore pending workflow actions without invoking or resuming the workflow.
- Keep failed agent and workflow runs from replacing the last good snapshot; RUN_ERROR streams leave the previous snapshot available for hydration.
- Verify interruption hydration through endpoint-level AG-UI streams for both agent and workflow wrappers, including Shared State replay and no wrapped runner invocation.

Files changed:
- packages/ag-ui/agent_framework_ag_ui/_workflow.py
- packages/ag-ui/tests/ag_ui/test_endpoint.py

Verification:
- uv run pytest packages/ag-ui/tests/ag_ui/test_endpoint.py::test_workflow_endpoint_hydrates_interrupted_thread_without_invoking_workflow -q
- uv run pytest packages/ag-ui/tests/ag_ui/test_endpoint.py::test_agent_endpoint_hydrates_interrupted_thread_without_invoking_agent packages/ag-ui/tests/ag_ui/test_endpoint.py::test_agent_endpoint_run_error_does_not_overwrite_previous_snapshot packages/ag-ui/tests/ag_ui/test_endpoint.py::test_workflow_endpoint_hydrates_interrupted_thread_without_invoking_workflow packages/ag-ui/tests/ag_ui/test_endpoint.py::test_workflow_endpoint_run_error_does_not_overwrite_previous_snapshot -q
- uv run pytest packages/ag-ui/tests/ag_ui/test_endpoint.py -q
- uv run pytest packages/ag-ui/tests/ag_ui/golden/test_scenario_workflow.py -q
- uv run poe syntax -P ag-ui -C
- uv run poe pyright -P ag-ui
- uv run poe test -P ag-ui
- uv run poe typing -P ag-ui
- uv run poe check -P ag-ui
- git diff --check
- git diff --cached --check

Blockers / next iteration:
- No blockers. Next slice can document AG-UI Thread Snapshot security and usage.
- uv repeatedly refreshed azure-ai-projects in uv.lock during local runs; reverted the generated lockfile churn because this change does not alter dependencies.
- The poe-check commit hook was skipped after manual verification because it refreshes unrelated uv.lock dependency resolution.

* docs(ag-ui): document thread snapshot security

Key decisions:
- Document AG-UI Thread Snapshot persistence as opt-in and disabled unless a snapshot_store is configured.
- Place Snapshot Scope guidance next to endpoint authentication guidance, making clear that AG-UI Thread ids identify threads but do not authorize snapshot access.
- Describe built-in storage as in-memory only, process-local, latest-only, and not durable production storage; durable stores remain app-owned implementations of AGUIThreadSnapshotStore.
- Call out snapshot confidentiality impact and that no file-backed AG-UI snapshot store is provided.

Files changed:
- packages/ag-ui/README.md

Verification:
- uv run python scripts/check_md_code_blocks.py packages/ag-ui/README.md --no-glob
- git diff --check
- git diff --cached --check
- commit hook without SKIP ran changed-package lint/format and AG-UI README markdown-code-lint successfully before stopping because uv.lock was modified
- uv run poe markdown-code-lint (failed due existing unrelated packages/mistral/README.md missing agent_framework_mistral import resolution; changed AG-UI README blocks passed)

Blockers / next iteration:
- No blockers. Local issue/PRD planning artifacts remain uncommitted.
- uv refreshed azure-ai-projects in uv.lock during markdown lint and the commit hook; reverted the generated lockfile churn because this documentation change does not alter dependencies.
- The poe-check commit hook was skipped after manual verification because it refreshes unrelated uv.lock dependency resolution.

* fix(ag-ui): harden thread snapshot persistence edge cases

- Persist the completed confirm_changes turn with interrupt=None so hydration
  no longer replays a stale pending interrupt after the user responds; resume
  requests prepend stored history so the persisted thread is not truncated.
- Defer endpoint default_state application to the runners when snapshot
  persistence is active, filling only keys missing from both the stored
  snapshot state and the request state so defaults never reset persisted
  Shared State.
- Always fold the turn's output into the persisted messages snapshot even when
  the outbound MESSAGES_SNAPSHOT event is suppressed for predictive tools
  without confirmation.
- Load the stored snapshot on workflow follow-up turns, reconstruct full
  thread history into the run input, and seed the snapshot builder with merged
  state so saving a new turn no longer replaces prior history.
- Move snapshot message reconstruction helpers to _run_common for reuse by the
  workflow runner; load stored agent snapshots on resume turns for state merge.
- Add endpoint regression tests for all four scenarios.

* fix(ag-ui): protect snapshot history on resume and harden suffix trust

- Prepend stored thread history when persisting snapshots for resume runs on
  both the agent and workflow paths, so a resumed interrupt no longer
  overwrites the stored thread with just the resume turn's output.
- Filter the incoming message suffix during thread reconstruction: only user
  turns and tool results answering backend-issued tool calls (stored tool
  calls or pending interrupts) may extend authoritative history. Client-forged
  assistant and tool messages are dropped and logged instead of being
  persisted and replayed.
- Close the workflow snapshot builder's tool-call group when a tool result or
  text message lands, so synthesized transcripts keep tool results adjacent to
  their tool_calls message and stay valid as provider replay history.
- Export DEFAULT_MAX_THREAD_SNAPSHOTS from agent_framework_ag_ui and expose
  SnapshotScopeResolver through the core ag_ui facade and stub.
- Add regression tests for agent and workflow resume history preservation,
  forged suffix rejection, builder tool-call grouping, and the export surface.

* fix(ag-ui): tolerate snapshot save failures and scope workflow cache

- Wrap snapshot_store.save() on both the agent and workflow paths so a
  transient store failure (timeout, connection refused) is logged instead of
  propagating. Previously a failing save converted an already-streamed
  successful run into RUN_ERROR, and on the workflow path emitted RUN_ERROR
  after RUN_FINISHED, violating the single-terminal-event invariant. The
  previous snapshot stays available for hydration.
- Key the workflow_factory instance cache by (snapshot_scope, thread_id). The
  Snapshot Scope is the authorization boundary, so the same thread id under
  different scopes no longer shares an in-memory workflow instance.
  clear_thread_workflow accepts an optional snapshot_scope and clears all
  scopes for the thread when omitted.
- Add tests: save-failure tolerance for agent and workflow endpoints,
  scope-isolated workflow cache, async snapshot_scope_resolver support, and
  in-memory store key validation errors.

* fix(ci): ignore all dotnet.microsoft.com links in linkspector

The existing ignore pattern only matched https://dotnet.microsoft.com/download,
but Microsoft sites insert a locale segment between host and path
(e.g. /en-us/download/dotnet/10.0), so localized links slip past the pattern
and get checked. dotnet.microsoft.com bot-blocks CI link checkers with
intermittent 403s across the whole site, which fails markdown-link-check on
unrelated pull requests since linkspector scans the entire repository.

Ignore the domain wholesale, matching how platform.openai.com is already
handled for the same reason. A 403 from bot blocking is indistinguishable
from a removed page, so the checker cannot produce a meaningful signal for
this domain either way.

* ag-ui: simplify raw_messages assignment and drop OrderedDict

- Replace list(cast(...)) with a typed annotation for raw_messages
  (_agent_run.py:866) per review suggestion
- Replace OrderedDict with a plain dict in InMemoryAGUIThreadSnapshotStore
  (_snapshots.py:136); regular dicts are insertion-order-safe since
  Python 3.7, so OrderedDict is unnecessary. Update _evict_oldest to use
  next(iter(...)) for FIFO removal instead of popitem(last=False).

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* Address review feedback for #2458: review comment fixes

---------

Co-authored-by: Copilot <copilot@github.com>
Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>
2026-06-12 08:29:38 +00:00
Yufeng HeandGitHub 4c1b9efa8c .NET: fix: filter filesystem checkpoint index by session (#6132)
* fix: filter filesystem checkpoint index by session

* fix: filter checkpoint index by parent

* .NET: preserve legacy checkpoint index discovery
2026-06-11 22:35:57 +00:00
Peter IbekweandGitHub e7937947d9 Python: Bug fix for declarative workflows (#6468)
* Fix declarative object parsing bug

* Remove unnecessary comment

* Address PR comments

* Address PR comments.

* Fix CI failures.
2026-06-11 22:34:15 +00:00
3d5421edc1 Python: Integrate shell tool into harness agent (#6451)
* Integrate shell tool into AgentHarness

* Validate shell_executor exposes as_function() with a clear TypeError

Addresses PR review feedback: a public factory should fail fast with an
actionable error rather than a cryptic AttributeError when an incompatible
shell_executor is supplied. Validation happens upfront, regardless of whether
the client supports shell tools.

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* Type shell harness params via TYPE_CHECKING import

Addresses PR review feedback: type shell_executor and
shell_environment_provider_options instead of Any, using a TYPE_CHECKING
import from agent_framework_tools.shell. The import never executes at
runtime, so there is no circular dependency, and the lazy runtime import of
ShellEnvironmentProvider is retained. Since ShellExecutor is a protocol
without as_function(), the validated getattr result is invoked directly.

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

---------

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>
2026-06-11 20:51:59 +00:00
8b0405de1b .NET: Fix CopySessionConfig() and CopyResumeSessionConfig() to preserve SessionConfig.Streaming value (#6463)
* Fix CopySessionConfig and CopyResumeSessionConfig ignoring Streaming value (#4732)

CopySessionConfig() and CopyResumeSessionConfig() hardcoded Streaming = true,
ignoring the caller's explicitly set SessionConfig.Streaming value. This made it
impossible to disable streaming when using AsAIAgent() with the GitHub Copilot SDK.

Changed both methods to use source.Streaming ?? true (and source?.Streaming ?? true
for the nullable overload), preserving the caller's value when set while maintaining
backward compatibility by defaulting to true when unset.

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* Fix non-streaming response path for SessionConfig.Streaming=false (#4732)

The config-copy fix (preserving Streaming=false via null-coalescing) was
already in place, but ConvertToAgentResponseUpdate(AssistantMessageEvent)
always emitted raw AIContent without text—assuming delta events had already
delivered it. When streaming is disabled there are no delta events, so the
assistant's final text was silently dropped.

Changes:
- Add isStreaming parameter to ConvertToAgentResponseUpdate for
  AssistantMessageEvent so it emits TextContent in non-streaming mode.
- Capture the resolved streaming flag in RunCoreStreamingAsync and pass
  it through the event subscription closure.
- Add/update unit tests for both streaming and non-streaming paths.

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* Add test for null Data path in ConvertToAgentResponseUpdate (#4732)

Add a regression test covering the null-propagation path where
AssistantMessageEvent.Data is null. The production code already handles
this via ?. operators, but no test previously verified the behavior.

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

---------

Co-authored-by: Copilot <copilot@github.com>
Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>
2026-06-11 18:18:05 +00:00
df29af611c Python: Add tool approval middleware (#6414)
* Add Python tool approval middleware

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* Fix tool approval restored state handling

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* Gate hidden approvals on explicit approval responses

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* Handle string inputs in approval replay scan

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* Cover argument-scoped approval rules

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* Refine tool approval state and budgets

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* Fix tool approval PR CI failures

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* Revert DevUI Aspire README link change

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

---------

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>
2026-06-11 17:35:44 +00:00
c79f886dc3 .NET: Align Foundry sample environment variables and credentials. (#6422)
* dotnet: refresh Foundry sample guidance

Carry forward the still-relevant sample guidance and Foundry-specific documentation fixes from the old stacked sample migration work, adapted to the current repo layout and policy.

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* dotnet: rename Foundry sample env vars

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* dotnet: remove persistent provider sample

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* dotnet: drop SAMPLE_GUIDELINES.md from this PR

Defer the guidelines doc and its cross-link to a follow-on PR to avoid broken-link failures in CI.

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* dotnet: add DefaultAzureCredential warning to remaining samples

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* dotnet: address PR review feedback

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

---------

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>
2026-06-11 17:26:00 +00:00
c9e2a490be Fix AzureFunctions integration tests — set FUNCTIONS_WORKER_RUNTIME (#6425)
Azure Functions Core Tools v4 can no longer auto-detect the worker
runtime when local.settings.json is absent. Add the required
FUNCTIONS_WORKER_RUNTIME=dotnet-isolated environment variable to
both StartFunctionApp helpers and re-enable the skipped tests.

Fixes: https://github.com/microsoft/agent-framework/issues/6402

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>
2026-06-11 15:09:55 +00:00
westeyandGitHub 12ce099165 .NET: Add LoopAgent capability for Harnesses (#6384)
* Add LoopAgent capability for Harnesses

* Address PR comments.

* Add support for returning user messages and response aggregation

* Support fresh context per iteration with input sessions via cloning

* Add ability to receive newly created sessions via callback

* Address PR comments

* Add judge criteria

* Address PR comments
2026-06-11 15:00:01 +00:00
8e1998ddcb .NET: Adds Valkey to chat message history - issue 5445 (#5542)
* Adds Valkey to chat message history

* Address review: switch to Valkey.Glide, add options class, remove context provider

- Switch from StackExchange.Redis to Valkey.Glide 1.1.0 (official Valkey .NET client)
- Extract optional params into ValkeyChatHistoryProviderOptions
- Add JsonSerializerOptions support, remove [RequiresUnreferencedCode]
- Make MaxMessages/MaxMessagesToRetrieve readonly via options
- Remove ValkeyContextProvider (overlaps with ChatHistoryMemoryProvider + MEVD)
- Remove ValkeyProviderScope (only used by context provider)
- Remove connection string constructors (caller manages IConnectionMultiplexer)
- Update samples to use new API and gpt-5.4-mini

* Use type-safe JsonSerializer overloads, remove suppress attributes

Use JsonSerializerOptions.GetTypeInfo() for Serialize/Deserialize calls
to enable NativeAOT/trimming compatibility without suppress attributes.
Default to AgentAbstractionsJsonUtilities.DefaultOptions when no options provided.

Signed-off-by: Matthias Howell <matthias.howell@improving.com>

* Update READMEs: remove context provider references

Remove ValkeyContextProvider and long-term memory references from sample
READMEs since the context provider was removed from this PR. Simplify
Valkey server requirements (no search module needed for chat history).

Signed-off-by: Matthias Howell <matthias.howell@improving.com>

* Apply suggestion from @westey-m

* Fix formatting (dotnet format)

Signed-off-by: Matthias Howell <matthias.howell@improving.com>

* Update dotnet/src/Microsoft.Agents.AI.Valkey/Microsoft.Agents.AI.Valkey.csproj

Co-authored-by: Roger Barreto <19890735+rogerbarreto@users.noreply.github.com>

---------

Signed-off-by: Matthias Howell <matthias.howell@improving.com>
Co-authored-by: Matthias Howell <matthias.howell@yoppworks.com>
Co-authored-by: westey <164392973+westey-m@users.noreply.github.com>
Co-authored-by: Roger Barreto <19890735+rogerbarreto@users.noreply.github.com>
2026-06-11 13:18:00 +00:00
4149f24791 Python: [Generated by SRE Agent] Fix MCP allowed_tools empty list handling (#6296)
* Fix MCP allowed_tools empty list handling

When allowed_tools is set to an empty list [], the falsy check
'if not self.allowed_tools' incorrectly treats it as unconfigured
(same as None), causing all tools to be exposed. Change to an
explicit 'is None' check so that an empty list correctly results
in no tools being allowed.

Co-authored-by: Azure SRE Agent <noreply@microsoft.com>

* Clarify allowed_tools docstring: None vs [] semantics

Per Eduard's review on PR #6296: explicitly document that None exposes all tools and [] exposes none, across all four MCPTool / MCPStdioTool / MCPStreamableHTTPTool / MCPWebsocketTool docstrings.

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* allowed_tools docstring: recommend load_tools=False for full disable

Per Eduard's follow-up on PR #6296: `load_tools=False` is the cleaner idiom when you don't want to expose any tools. Reframe `allowed_tools=[]` in the docstring as a runtime guard / inspection-only path and cross-reference `load_tools`.

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

---------

Co-authored-by: Azure SRE Agent <noreply@microsoft.com>
Co-authored-by: Giles Odigwe <79032838+giles17@users.noreply.github.com>
Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>
2026-06-11 06:46:46 +00:00
Peter IbekweGitHubgithub-actions[bot] <41898282+github-actions[bot]@users.noreply.github.com>github-actions[bot] <41898282+github-actions[bot]@users.noreply.github.com>
3753d938f5 .NET: Bug fixes for declarative workflows (#6427)
* declarative workflow approval flow fix

* Update mcp handler cache construction

* fix method argument.

* Update dotnet/src/Microsoft.Agents.AI.Workflows.Declarative/ObjectModel/InvokeFunctionToolExecutor.cs

Co-authored-by: github-actions[bot] <41898282+github-actions[bot]@users.noreply.github.com>

* Fix identation

---------

Co-authored-by: github-actions[bot] <41898282+github-actions[bot]@users.noreply.github.com>
2026-06-10 18:08:32 +00:00
60cc5ee4e4 .NET: Make GitHub.Copilot.SDK build targets reach transitive consumers (#6455) (#6457)
* .NET: Make GitHub.Copilot.SDK build targets reach transitive consumers (#6455)

Microsoft.Agents.AI.GitHub.Copilot now ships a buildTransitive/ bridge so
consumers who only reference this package (the normal use case) get the
GitHub.Copilot.SDK's CLI binary-download MSBuild targets executed at build
time. Without this, the SDK shipped its targets under build/ which NuGet
only auto-imports for projects with a direct PackageReference to the SDK,
so consumers of the adapter package got only the managed .dll, no
copilot.exe in their output, and a runtime InvalidOperationException on
the first RunAsync.

The bridge consists of two files under buildTransitive/:

* Microsoft.Agents.AI.GitHub.Copilot.props is generated at this package's
  pack time and pins the SDK version (from PackageVersion items in
  Directory.Packages.props) into _MicrosoftAgentsAICopilotSdkVersion.

* Microsoft.Agents.AI.GitHub.Copilot.targets is static and imports the
  SDK's own build/GitHub.Copilot.SDK.targets from the NuGet cache using
  the pinned version. The version-pin condition no-ops gracefully if the
  resolved SDK differs from what was baked in (e.g. consumer overrides
  the SDK version directly), so this is purely additive.

Verified by packing locally, restoring from a flat local feed, and
building a transitive-only consumer (PackageReference to MAF only, no
direct SDK ref). copilot.exe lands at bin/{cfg}/{tfm}/runtimes/{rid}/
native/copilot.exe as expected, matching the path the SDK's runtime
CopilotClient looks at.

Fixes #6455

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* Address Copilot review feedback (#6457)

- buildTransitive/.targets: compute the full SDK targets path with a single
  Path.Combine call into one property (_MicrosoftAgentsAICopilotSdkTargetsPath),
  used in both Project= and Exists() — no more split between Path.Combine for
  the directory and inline / separator for the file name.

- Split the version-defaulting Condition between the two files: the generated
  .props now just bakes the packaged SDK version into a dedicated property
  (_MicrosoftAgentsAICopilotSdkPackagedVersion), and the static .targets file
  is the single place that defaults _MicrosoftAgentsAICopilotSdkVersion to it.
  Removes the need for any MSBuild escape gymnastics in the pack-time string
  construction, and keeps the consumer override path the same.

- _GenerateBuildTransitiveProps now hangs off public BeforeTargets (Build, Pack)
  in addition to _GetPackageFiles, so the file is generated even without a
  full pack, and we're not solely dependent on an underscore-prefixed internal
  target. The <None Pack=true /> items live in a top-level ItemGroup so they
  are collected at evaluation time instead of being added from inside the
  Target.

End-to-end retested with a transitive-only consumer (PackageReference to MAF
only, no direct GitHub.Copilot.SDK ref): copilot.exe lands at
bin/Debug/net10.0/runtimes/win-x64/native/copilot.exe (141.8 MB) as before.

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

---------

Co-authored-by: Tamir Dresher <tamirdresher@users.noreply.github.com>
Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>
2026-06-10 18:07:18 +00:00
dd29f9aa65 .NET: Hosted Agent Sample - Toolbox with various Auth (#5777) (#6018)
* .NET: Add Hosted-Toolbox-AuthPaths sample and auto-map /readiness with toolbox health gating (#5777)

Add a new hosted agent sample demonstrating five MCP tool authentication paths
(API key, agent MI, project MI, custom OAuth, literal token) via a Foundry Toolbox.

Package changes (Microsoft.Agents.AI.Foundry.Hosting):
- MapFoundryResponses now auto-maps GET /readiness via MapHealthChecks, idempotent
  across Tier 1/2 (AgentHost, already mapped) and Tier 3 (WebApplication, gap filled).
- AddFoundryResponses registers AddHealthChecks() so the pipeline is available.
- AddFoundryToolboxes registers FoundryToolboxHealthCheck on the /readiness aggregate,
  gating readiness on pre-registered toolbox startup outcome (per spec section 3.1).
- FoundryToolboxService now exposes StartupStatus and FailedToolboxNames properties.

New types:
- FoundryToolboxStartupStatus (public enum): Pending, Healthy, Failed, NoEndpoint.
- FoundryToolboxHealthCheck (internal IHealthCheck): adapts startup status to the
  AspNetCore HealthChecks pipeline with failed toolbox names in result data.

Tests:
- 3 new tests for /readiness auto-mapping (Tier 3 default, pre-mapped skip, idempotent).
- 4 new tests for FoundryToolboxHealthCheck (Pending, NoEndpoint, Failed, Healthy).
- 3 enhanced FoundryToolboxServiceTests with StartupStatus assertions.

* .NET: Align FoundryToolboxService with tools-integration-spec (#5777 Part A)

Bring Microsoft.Agents.AI.Foundry.Hosting's toolbox path into compliance with
tools-integration-spec.md sections 2-4, 6.3, and 9. Empirically validated
against tao-foundry-prj: the previous code (reading FOUNDRY_AGENT_TOOLSET_ENDPOINT,
which the platform never injects) silently registered zero tools in production.

Package changes (Microsoft.Agents.AI.Foundry.Hosting):

- FoundryToolboxService.StartAsync now derives the toolbox proxy base URL from
  the platform-injected FOUNDRY_PROJECT_ENDPOINT and constructs the per-toolbox
  URL as {FOUNDRY_PROJECT_ENDPOINT}/toolboxes/{name}/mcp?api-version={ApiVersion}
  per spec sections 2-3. The legacy FOUNDRY_AGENT_TOOLSET_ENDPOINT env var is
  removed outright (preview package, no production consumers).
- FoundryToolboxOptions.ApiVersion default flipped to 'v1' to match spec example.
- FoundryToolboxBearerTokenHandler always sends the mandatory
  Foundry-Features: Toolboxes=V1Preview header per spec section 2, merging any
  additional flags supplied via the FOUNDRY_AGENT_TOOLSET_FEATURES env var.
- FoundryToolboxBearerTokenHandler token scope changed from
  https://cognitiveservices.azure.com/.default to https://ai.azure.com/.default
  per spec section 4.
- FoundryToolboxBearerTokenHandler propagates W3C trace context (traceparent,
  tracestate, baggage) from Activity.Current per spec section 6.3.

Sample changes:

- Hosted-Toolbox-AuthPaths and Hosted-Toolbox Program.cs, README.md, and
  .env.example corrected to describe the actual env-var contract
  (FOUNDRY_PROJECT_ENDPOINT auto-injected; AZURE_AI_PROJECT_ENDPOINT as the
  local-dev fallback). Removes the misleading 'auto-injected by Foundry runtime'
  claims for FOUNDRY_AGENT_TOOLSET_ENDPOINT.
- Hosted-Toolbox-AuthPaths/agent.manifest.yaml declares the toolbox and model
  dependencies under resources[] per the AgentManifest schema so azd ai agent
  init users get them provisioned automatically.

Tests:

- 4 new FoundryToolboxServiceTests covering env-var derivation, EndpointOverride
  precedence, trailing-slash normalization, and the existing NoEndpoint behavior
  under the new env var name.
- 4 new FoundryToolboxBearerTokenHandlerTests covering token scope, mandatory
  feature header always present, header merging with override, no duplicate
  mandatory flag, trace context propagation from Activity.Current, and no
  override of caller-set traceparent.
- New FoundryProjectEndpointEnvFixture xUnit collection definition serializes
  env-var-mutating tests across FoundryToolboxServiceTests and
  FoundryToolboxHealthCheckTests, preventing parallel-execution races.
- FoundryToolboxHealthCheckTests adjusted for the new env var name.

* .NET: Drop ACA prereq from Hosted-Toolbox-AuthPaths README (#5777 Part B)

Empirically verified that any Azure Cognitive Services MCP endpoint already in
the Foundry project (e.g., a Language service MCP) accepts Entra tokens and can
serve Paths 2 and 3 without deploying a separate Azure MCP Server to ACA.

README updates:
- Step 0 rewritten: 'Identify an Entra-authenticated MCP target in your project'
  instead of 'Deploy Azure MCP Server to Azure Container Apps' (the original
  azmcp-foundry-aca-mi setup is now optional, not required).
- Auth-paths matrix updated to describe AAD-based connections targeting a
  Cognitive Services MCP URL (e.g., Language service) instead of an ACA URL.
- Step 2 connections table updated: the Entra ID category is now a single 'AAD'
  authType. The original 'Agent Identity' vs 'Project Managed Identity' as
  selectable connection sub-types is NOT exposed via the ARM control plane
  today; the platform selects the calling principal contextually. Both
  connections in the walkthrough share the same shape and target.
- Added an explicit RBAC note: the agent identity AND project MI must hold the
  required role (typically Cognitive Services User) on the target resource;
  without it the MCP server returns HTTP 401 even though the connection wiring
  is correct.
- Toolbox tool entries renamed lang_entra_agent / lang_entra_project to
  match the new connection names.

Empirical validation supporting these changes is captured in the session
plan.md (Part B addendum).

* .NET: Document correct connection shape for Hosted-Toolbox-AuthPaths Paths 2/3 (#5777)

Updates the sample README with the verified connection shape and RBAC procedure
for Microsoft Entra agent-identity and project-managed-identity MCP authentication:

- Connection authType values: AgenticIdentityToken (agent identity) and
  ProjectManagedIdentity (project MI), both with category=RemoteTool.
- Top-level audience property required; for Cognitive Services targets the value
  is https://cognitiveservices.azure.com.
- Connections created via ARM REST (the Foundry portal wizard does not yet
  expose these authTypes).
- RBAC grants target the project's shared agent identity blueprint principal
  (project.properties.agentIdentity.agentIdentityId) for Path 2 and the
  project's system-assigned MI (project.identity.principalId) for Path 3.
- Troubleshooting table updated with the audience-mismatch symptom and the
  startup-cache behavior of FoundryToolboxService.

* .NET: Drop Path 3 (project MI) and align with new agent model in Hosted-Toolbox-AuthPaths (#5777)

Updates the sample to use only the new Foundry agent object model and removes
the project managed identity path:

- Auth-path matrix reduced to four paths: key, Entra agent identity, custom
  OAuth, inline authorization. Project managed identity is moved into a note
  describing when it applies (multiple agents sharing access) rather than as
  a documented sample path.
- RBAC instructions reference the agent's own instance_identity.principal_id
  from the agent ARM resource (new agent object model) instead of the
  project's shared agent identity blueprint (legacy model).
- Step 2 (connections) creates only the AgenticIdentityToken connection.
- Step 3 (toolbox tools) lists four tool entries instead of five.
- Sample prompts and troubleshooting table updated to match.

* .NET: Restore Path 3 (project MI) to Hosted-Toolbox-AuthPaths matrix (#5777)

The sample's purpose is to enumerate every authentication path a Foundry toolbox
can drive, not to pick one. Path 3 belongs alongside the other four with
explicit guidance for when each path is the right choice.

- Path 3 (project managed identity, authType=ProjectManagedIdentity) restored
  to the matrix with a 'When to pick this' column.
- Step 2 (connections) provisions both lang-mcp-agent-id and lang-mcp-project-mi
  via ARM REST.
- Step 3 (toolbox) lists five tool entries (one per path).
- RBAC instructions cover both the agent's instance identity (Path 2) and the
  project's system-assigned MI (Path 3).
- Sample prompts include all five paths.
- Troubleshooting table updated accordingly.

* .NET: Fix duplicate line in Hosted-Toolbox-AuthPaths README (#5777)

* .NET: Fix broken markdown link to ToolCallingApprovalHostedAgentFixture (#5777)

* .NET: Fix relative path depth in markdown link (#5777)

* .NET: Address Copilot review feedback for #5777

- FoundryToolboxHealthCheck description: rename FOUNDRY_AGENT_TOOLSET_ENDPOINT
  → FOUNDRY_PROJECT_ENDPOINT (stale reference; operator-facing in /readiness body).
- FoundryToolboxStartupStatus.NoEndpoint XML doc: same rename.
- ServiceCollectionExtensions XML docs: same rename + URL shape update.
- Foundry.Hosting.IntegrationTests.TestContainer: remove explicit
  app.MapGet('/readiness') — now redundant + would conflict with the
  auto-mapped readiness route from MapFoundryResponses.
- Hosted-Toolbox-AuthPaths agent.manifest.yaml: parameterize TOOLBOX_NAME via
  {{TOOLBOX_NAME}} template substitution and declare it under parameters with a
  default of 'auth-paths-toolbox' so the README's 'use any name' guidance
  actually works for hosted deployments.

* .NET: Address Copilot review round 2 — fallback env + dedup + naming (#5777)

- FoundryToolboxService.StartAsync: fall back to AZURE_AI_PROJECT_ENDPOINT when
  FOUNDRY_PROJECT_ENDPOINT is absent. Matches the local-dev convention used by
  the samples and resolves the doc/code mismatch flagged in review.
- FoundryToolboxHealthCheck description updated for the fallback.
- AddFoundryToolboxes: guard against duplicate health-check registration via an
  explicit name-uniqueness check on HealthCheckServiceOptions.Registrations.
  AddCheck<T>(name, ...) does not dedupe by name, so repeated AddFoundryToolboxes
  calls would have registered multiple instances.
- FoundryToolboxOptions.EndpointOverride doc: clarify URL becomes
  {EndpointOverride}/toolboxes/{name}/mcp (was missing /toolboxes/ segment).
- Hosted-Toolbox sample (Program.cs + README): switch FOUNDRY_TOOLBOX_NAME to
  TOOLBOX_NAME (the FOUNDRY_* prefix is reserved by the platform), default
  changed from 'my-toolset' to 'my-toolbox', terminology updated from 'Toolset'
  to 'Toolbox'.
- FoundryToolboxServiceTests: 2 test renames to reflect what they actually
  assert (StartupStatus + FailedToolboxNames, not URL shape directly).
- Tests adjusted to clear both env vars in NoEndpoint scenarios.

* .NET: Fix stale NoEndpoint XML doc and misleading test comment (#5777)

Update FoundryToolboxStartupStatus.NoEndpoint XML doc to mention both
FOUNDRY_PROJECT_ENDPOINT and AZURE_AI_PROJECT_ENDPOINT (the service
checks both since the fallback was added).

Fix test comment that claimed URL derivation validation when the test
only asserts on StartupStatus and FailedToolboxNames.

* Remove OAuth consent path from AuthPaths sample, keep four working auth paths

The interactive OAuth identity passthrough path needs a protocol gap closed in the
hosting package (the proprietary oauth_consent_request item is not representable
through the OpenAI/MEAI abstractions), so it is deferred to a separate spike branch.

This strips the OAuth path from the AuthPaths sample, the companion REPL client, the
agent manifest, and the docs, then renumbers the inline Authorization path so the
sample teaches four contiguous paths: API key via connection, Entra agent identity,
Entra project managed identity, and inline Authorization (anti-pattern).

Package code is unchanged; the consent infrastructure already present in main stays
as baseline. Both samples build with --warnaserror and all 246 hosting unit tests pass.

* .NET: Drop project MI auth path and dedicated client from Hosted-Toolbox-AuthPaths (#5777)

Live validation against tao-foundry-prj showed the ProjectManagedIdentity
path failing with an unresolved token audience 401, so the sample now ships
three working auth paths instead of four: connection key, agent managed
identity, and inline Authorization.

Changes:
- Remove the project managed identity path from the AuthPaths sample matrix,
  prerequisites, connections, toolbox table, prompts, Program.cs instructions
  and agent.manifest.yaml.
- Delete the near duplicate Hosted-Toolbox-AuthPaths-Client project and remove
  it from the solution. The README now drives the agent with the shared
  SimpleAgent REPL via AsAIAgent(agentEndpoint).
- Correct the troubleshooting note: the Foundry toolbox tools/list is all or
  nothing, so one bad source returns -32007, fails startup, and returns 424
  for every path. Add the allowed_tools caveat that names must match the
  upstream server.
- Mark the toolbox startup status and health check experimental under
  AgentsAIExperiments (MAAI001) instead of AIOpenAIResponses, and update the
  package NoWarn set accordingly.

* .NET: Address PR review nits for Hosted-Toolbox-AuthPaths (#5777)

- Remove duplicated NU1903 comment in Foundry.Hosting csproj.

- Fix stale 'four-tool' cross-links in Hosted-Toolbox and Hosted-McpTools READMEs to describe the three-path toolbox driven by the shared SimpleAgent REPL.

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* .NET: Address toolbox startup-status review feedback (#5777)

- Rename FoundryToolboxStartupStatus.Failed to Unhealthy so it is the proper opposite of Healthy, and clarify the doc comment covers the partial-failure case.

- Raise the missing-endpoint toolbox log from Information to Warning, since enabling toolboxes is an explicit opt-in and a silently disabled toolbox warrants a higher-severity signal.

- Update unit tests and the AuthPaths README troubleshooting row accordingly.

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* .NET: Reword toolbox-wiring comment to avoid hosting-layer internals (#5777)

Address PR review feedback: explain how a Foundry Toolbox is attached using the public API (AddFoundryToolboxes vs the CreateHostedMcpToolbox marker) and observable behavior, instead of naming the internal AgentFrameworkResponseHandler type and FoundryToolboxService.Tools property.

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

---------

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>
2026-06-10 16:49:48 +00:00
a5f4e0078e .NET: Fix .NET Copilot integration tests for SDK v1.0.0 (#6424)
* Fix .NET Copilot integration tests for SDK v1.0.0

- Remove hard-skip in favor of runtime Assert.Skip when COPILOT_GITHUB_TOKEN is not set
- Add [Trait("Category", "Integration")] for CI filtering
- Fix FunctionTool test: use explicit SessionConfig with Tools, OnPermissionRequest, and SystemMessage
- Mark RemoteMcp test as IntegrationDisabled (requires OAuth flow)
- Create explicit sessions in all tests and delete after each (cleanup)
- Remove unused System.Diagnostics import
- Simplify SkipIfCopilotNotConfigured to only check env var

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* Address review: use try/finally for session cleanup, IsNullOrWhiteSpace

- Wrap act/assert in try/finally so sessions are always deleted even on failure
- Use IsNullOrWhiteSpace instead of IsNullOrEmpty for token check

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* Add COPILOT_GITHUB_TOKEN to .NET integration test workflow

The Copilot SDK runtime reads this env var directly for authentication.
No Node.js/npm install needed - the SDK downloads the CLI binary at build time.

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

---------

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>
2026-06-10 15:41:48 +00:00
westeyandGitHub 3c0c12cd46 .NET: Update release version for 2026-06-10 release and switch GH.CP Agent to RC (#6454)
* Update release version for 2026-06-10 release

* Switch GitHub.Copilot to RC
2026-06-10 15:26:23 +00:00
8dde9ef627 Python: HarnessAgent: Disable compaction when max tokens not provided (#6410)
* HarnessAgent: Disable compaction when max tokens not provided

* Fix regression.

* Address PR comments

* Require max_output_tokens to be positive

Reject max_output_tokens=0 (must be positive), mirroring
max_context_window_tokens. Addresses PR review feedback.

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

---------

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>
2026-06-10 13:57:23 +00:00
93cbf6b3f0 Python: Parse MCP CallToolResult.structuredContent field to prevent tool results returning None (#6421)
* Parse structuredContent from MCP CallToolResult (#3313)

The _parse_tool_result_from_mcp method only iterated over the content
field from CallToolResult, ignoring the structuredContent field entirely.
MCP servers that return JSON data via structuredContent (e.g., Power BI
MCP) appeared to return None.

Add handling for structuredContent: when present, serialize it as JSON
text and append it to the result list. This preserves the data for the
LLM while maintaining backward compatibility with existing behavior.

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* Python: Parse MCP CallToolResult.structuredContent field to prevent tool results returning None

Fixes #3313

* Address review feedback: add default=str to json.dumps and remove .checkpoints/

- Add default=str to json.dumps for structuredContent serialization so
  non-JSON-serializable values (e.g. bytes) degrade gracefully instead
  of raising TypeError
- Remove all .checkpoints/ runtime artifacts from the repository
- Add **/.checkpoints/ to .gitignore to prevent future accidental commits
- Add test for non-serializable structuredContent values

Fixes #3313

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* Address review feedback for #3313: Python: MCP CallToolResult.structuredContent field is not parsed, causing tool results to return None

---------

Co-authored-by: Copilot <copilot@github.com>
Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>
2026-06-10 12:51:09 +00:00
9a56bc9f16 Python: [BREAKING] Add sampling guardrails to MCP tools (#6413)
* Add sampling guardrails to MCP tools

Add approval, token, and request-count controls to the MCP sampling
callback used when an MCPTool is configured with a chat client.

- Add `sampling_approval_callback`, `sampling_max_tokens`, and
  `sampling_max_requests` parameters to `MCPTool` and its
  `MCPStdioTool`, `MCPStreamableHTTPTool`, and `MCPWebsocketTool`
  subclasses, positioned directly after `client`.
- Gate each server-initiated `sampling/createMessage` request behind the
  approval callback, which denies by default when no callback is provided.
- Clamp the requested `maxTokens` to `sampling_max_tokens` and enforce a
  per-session request count via `sampling_max_requests`.
- Log incoming sampling requests at WARNING level (counts only).
- Export `SamplingApprovalCallback` from the public API.
- Add tests, a sample, and documentation updates.

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* Make sampling denial message context-aware

Distinguish the deny-by-default case (no approval callback configured)
from an explicit denial by a configured `sampling_approval_callback`, so
the returned ErrorData message is accurate for callback-driven denials
and exceptions.

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

---------

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>
2026-06-10 10:17:36 +00:00
CopilotGitHubcopilot-swe-agent[bot] <198982749+Copilot@users.noreply.github.com>Roger Barreto
cea83bd8d5 .NET: Bump Microsoft.Extensions.AI packages to 10.6.0, align transitive dependency floor, and update Merge Gatekeeper ignores (#6148)
* Bump Microsoft.Extensions.AI packages to 10.6.0

* Align transitive package versions for Microsoft.Extensions.AI 10.6.0

* Ignore external review check in Merge Gatekeeper

---------

Co-authored-by: copilot-swe-agent[bot] <198982749+Copilot@users.noreply.github.com>
Co-authored-by: Roger Barreto <19890735+rogerbarreto@users.noreply.github.com>
2026-06-10 10:02:22 +00:00
7ae73a68d6 Remove broken Atomic Agents docs link (#6442)
Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>
2026-06-10 09:07:51 +00:00
CopilotGitHubcopilot-swe-agent[bot] <198982749+Copilot@users.noreply.github.com>
3daed114ee Python: bump package versions for 1.8.1 release (#6420)
* Python: bump package versions for 1.8.1 release

* Python: bump agent-framework-foundry-hosting for 1.8.1 release

* Python: bump ag-ui and azurefunctions for 1.8.1 release

* Remove incorrect agent-framework-foundry changelog entry for #6259

* Add [1.8.1] changelog compare link and update [Unreleased] base

---------

Co-authored-by: copilot-swe-agent[bot] <198982749+Copilot@users.noreply.github.com>
2026-06-09 21:27:42 +00:00
5e097276a0 .NET: Add Foundry Deployment docs to HA sample READMEs (#6365)
* Add 'Deploying to Foundry (azd spec)' sections to all Foundry hosted agent samples

This commit adds comprehensive deployment documentation to all 13 .NET Foundry hosted agent samples that were missing it. Each sample now includes:

- Instructions to initialize an azd project from the sample's agent.manifest.yaml
- Steps to deploy using 'azd deploy'
- Example environment variable overrides for customization
- Link to the official Foundry deployment guide

Samples updated:
- Hosted-LocalTools
- Hosted-Files
- Hosted-FoundryAgent
- Hosted-McpTools
- Hosted-Observability
- Hosted-MemoryAgent
- Hosted-TextRag
- Hosted-ToolboxMcpSkills
- Hosted-AzureSearchRag
- Hosted-AgentSkills
- Hosted-Workflow-Handoff
- Hosted-Workflow-Simple
- Hosted-Invocations-EchoAgent

Each section includes the correct agent name from the sample's manifest and points to the correct GitHub URL for initializing the azd project.

Fixes: https://github.com/microsoft/agent-framework/issues/6308

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* Potential fix for pull request finding

Co-authored-by: Copilot Autofix powered by AI <175728472+Copilot@users.noreply.github.com>

* docs(samples): fix Foundry hosted README consistency

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* docs(samples): address PR 6365 README review comments

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

---------

Co-authored-by: Ben Thomas <25218250+alliscode@users.noreply.github.com>
Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>
Co-authored-by: Copilot Autofix powered by AI <175728472+Copilot@users.noreply.github.com>
2026-06-09 19:40:36 +00:00
383d551b86 Purview: Parallelize PSPC cold-cache scope refresh (#5832)
* Parallelize Purview PSPC cold cache path

* Cache Purview payment-required state for scope refresh

* Cache Purview payment-required state for scope refresh

* Align Purview policy action dedupe and 402 caching

 Deduplicate combined policy actions by action and restriction action so restriction-only actions are preserved
without duplicating identical entries. Cache tenant-level payment-required state from background scope refresh so
subsequent calls short-circuit consistently.

* .NET: Implement best-effort caching for background job scope retrieval and add unit tests for cache write failures

* Purview - feat: Enhance ScopedContentProcessor to queue ContentActivityJob when no applicable scopes are found and update related tests

* docs: Update purview package README and AGENTS documentation to reflect caching optimizations and policy enforcement scenarios

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

---------

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>
2026-06-09 18:01:21 +00:00
Hasan GhomiandGitHub 2a345e5d3b .NET: Fix Magentic to share agent replies across team (#6222)
* Fix Magentic to share agent replies across team

The per-round instruction was sent untargeted (fan-out delivered it to
every participant) and replies were never relayed, so a later speaker saw
the prior speaker's instruction but not its response - inverted from
GroupChatHost and the Python reference.

- Target the instruction at the selected speaker only.
- Broadcast each reply to the other participants (buffered, no TurnToken),
  excluding the responder via _currentSpeakerExecutorId, mirroring
  GroupChatHost.
- Persist _currentSpeakerExecutorId across checkpoints.
- Add a regression test.

* Address review feedback: null-guard, explicit checkpoint key, drop vacuous assertion

* Address review feedback: centralize checkpoint keys, clear current speaker

- Move CurrentSpeakerStateKey into MagenticConstants as
  nameof(CurrentSpeakerStateKey)
- Clear _currentSpeakerExecutorId in ResetAndReplanAsync and
  PrepareFinalAnswerAsync so a checkpoint taken in those windows does not
  persist a stale speaker
- Add UTF-8 BOM to RecordingEchoAgent.cs to satisfy the format check.
2026-06-09 17:00:42 +00:00
632f67b92e Python: [Generated by SRE Agent] docs: clarify checkpoint storage security model and deserialization trust boundaries (#6295)
* docs: clarify checkpoint storage security model and deserialization trust boundaries

Add Security Model documentation sections to the checkpoint encoding and
Azure Functions serialization modules explaining:
- Checkpoint storage is a trusted data source requiring access controls
- The RestrictedUnpickler allowlist is defense-in-depth, not a security boundary
- Developer responsibilities for securing storage backends
- Guidance on using allowed_types and strip_pickle_markers

Co-authored-by: Azure SRE Agent <noreply@microsoft.com>

* Apply suggestions from code review

Co-authored-by: Copilot Autofix powered by AI <175728472+Copilot@users.noreply.github.com>

---------

Co-authored-by: Azure SRE Agent <noreply@microsoft.com>
Co-authored-by: Copilot Autofix powered by AI <175728472+Copilot@users.noreply.github.com>
2026-06-09 16:53:48 +00:00
Shawn HenryandGitHub 5e6eb6f121 New logo in banner (#6380) 2026-06-09 16:41:28 +00:00
Shawn HenryandGitHub dbfacbfc4a New Microsoft Agent Framework logos (#6378) 2026-06-09 15:56:56 +00:00
29cec0d27b Python: fix: use getattr for non-OpenAI provider response compatibility (#6270)
* fix: use getattr for non-OpenAI provider response compatibility

Fixes #6234
Fixes #6235

Use getattr with None fallback for system_fingerprint and output
attributes to prevent AttributeError when non-OpenAI providers
return response objects without these fields.

* fix: use typed variable for response output to satisfy pyright

Fixes #6235

Use getattr with None fallback for the output attribute, and assign
to a typed list variable before the match statement to help pyright
narrow the response item types correctly.

* fix: rename response_outputs to avoid name collision with case-block variable

Fixes #6235

Rename outputs to response_outputs on line 1974 to avoid mypy error
about conflicting variable names in the match statement's case blocks.
Also use list[Any] for explicit generic type annotation.

* fix: use cast(list[Any]) for response output to satisfy pyright

Fixes #6235

The getattr() call returns Unknown type which pyright cannot narrow
in the match statement. Use an explicit cast to list[Any].

* fix: use hasattr guard instead of getattr for response.output

Fixes #6235

Using hasattr(response, 'output') and then accessing response.output
directly gives pyright enough type information to verify the match
statement exhaustiveness. This avoids the cast(list[Any]) approach
which pyright still flagged as partially unknown.

* fix: use ternary operator for response_outputs assignment

Replace if-else block with ternary expression to satisfy ruff SIM108 lint rule.
This fixes the Package Checks (3.11) CI failure.

* fix: use ternary with cast for ruff SIM108 and pyright type safety

Replace if-else block with ternary expression using cast(list[Any], ...)
to satisfy:
- ruff SIM108 (use ternary instead of if-else)
- ruff E501 (line length < 120)
- pyright type narrowing (cast preserves type info lost in ternary)

All local checks pass: ruff check, ruff format, pyright, 298 tests.

* fix: replace hasattr+cast with try/except to preserve pyright types

---------

Co-authored-by: Tao Chen <taochen@microsoft.com>
2026-06-09 15:17:39 +00:00
96d242fa7f .NET: Remove required token params from HarnessAgent, make compaction opt-in (#6409)
* Move token params from HarnessAgent constructor to options

Remove the required maxContextWindowTokens and maxOutputTokens
constructor parameters from HarnessAgent and AsHarnessAgent, replacing
them with optional MaxContextWindowTokens and MaxOutputTokens properties
on HarnessAgentOptions.

When both values are provided, compaction is enabled as before (in-loop
CompactionProvider and chat reducer on the default InMemoryChatHistory
Provider). When either is null, compaction is disabled entirely, making
it opt-in.

New constructor: HarnessAgent(IChatClient, HarnessAgentOptions?,
ILoggerFactory?, IServiceProvider?)

Closes #6333

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* Improving comments.

* feat: Add custom CompactionStrategy and DisableCompaction to HarnessAgentOptions

Allow users to provide their own CompactionStrategy via options, with
a clear priority system:
1. DisableCompaction=true: no compaction regardless of other settings
2. Custom CompactionStrategy provided: use it (token params ignored)
3. Both MaxContextWindowTokens and MaxOutputTokens set: default strategy
4. Otherwise: no compaction

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* fix: Address PR review comments on compaction opt-in

- Update chatClient param XML doc to reflect compaction is opt-in
- Strengthen compaction tests to assert ChatReducer is null/not-null
  rather than just asserting construction succeeds

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

---------

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>
2026-06-09 13:06:00 +00:00
9486c76ef8 .NET: Add Reasoning to ChatClientAgent ChatOptions merging (#5463)
* Add reasoning option to request chat options in ChatClientAgent

* Add tests for ChatOptions reasoning merging in ChatClientAgent

---------

Co-authored-by: Roger Barreto <19890735+rogerbarreto@users.noreply.github.com>
2026-06-09 11:25:31 +00:00
caa75f7cdd Python: Add Foundry Toolbox MCP skills hosted agent sample (#6363)
* Add 12_foundry_toolbox_mcp_skills hosted agent sample

Demonstrates using MCPSkillsSource with a Foundry Toolbox MCP endpoint
to discover and serve skills via SkillsProvider (progressive disclosure).

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* Fix env var reference in README and reuse local var in main.py

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* Potential fix for pull request finding

Co-authored-by: Copilot Autofix powered by AI <175728472+Copilot@users.noreply.github.com>

* Require AZURE_AI_MODEL_DEPLOYMENT_NAME and use placeholder in .env.example

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* Document Toolbox MCP skills vs Foundry Skills in sample README

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* Reference 12_foundry_toolbox_mcp_skills in parent README

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

---------

Co-authored-by: SergeyMenshykh <SergeMenshikh@outlook.com>
Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>
Co-authored-by: Copilot Autofix powered by AI <175728472+Copilot@users.noreply.github.com>
2026-06-09 08:38:19 +00:00
cfb033e5d4 Python: Filter MCP tool kwargs to declared params via allowlist (#6399)
* Filter MCP tool kwargs to declared params via allowlist

Previously MCPTool combined framework runtime kwargs (from
FunctionInvocationContext.kwargs) with the LLM-supplied arguments and
stripped only a hardcoded denylist of known framework keys before
forwarding to the MCP server. Any new framework-injected kwarg leaked to
the server unless the denylist was updated.

Switch to an allowlist built from each tool's declared parameters
(inputSchema.properties). Only declared params are forwarded; everything
else is stripped. Add an `additional_tool_argument_names` constructor
argument so users can opt extra names back in, globally (Sequence[str])
and/or per remote tool name (Mapping with reserved "*" global key). The
existing denylist is kept as a safety net for framework-named params a
server declares in its schema; explicitly opted-in extras always win. The
reserved _meta handling is unchanged.

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* Address MCP allowlist review comments and fix reload arg loss

- Fix pyright reportUnknownArgumentType in _load_tools (cast schema properties).
- Register declared param names before the existing-tool skip guard so that
  tool-list reloads preserve the allowlist for already-loaded tools (previously
  unchanged tools silently dropped all declared args after a background reload).
- Handle bare-string values in an additional_tool_argument_names mapping instead
  of iterating their characters.
- Clarify the framework denylist comment: explicit extras override the denylist.
- Make the extras-override-denylist test unambiguous (opt in a denylisted name).

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

---------

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>
2026-06-09 07:37:11 +00:00
Yufeng HeandGitHub d222079df9 .NET: fix: preserve AG-UI session history (#5904)
* fix: preserve AG-UI session history

* refactor: use static AG-UI provider check
2026-06-09 07:06:13 +00:00
e89e745bc0 Python: feat(claude): bump claude-agent-sdk to 0.2.87 (#6248)
* feat(claude): bump claude-agent-sdk to 0.2.87

Upgrade claude-agent-sdk dependency from >=0.1.36,<0.1.49 to >=0.2.87,<0.3.

Changes:
- Bump version pin in pyproject.toml
- Add 'xhigh' effort level to ClaudeAgentOptions (Opus 4.7 specific)
- Expose new upstream SDK options: skills, session_id, task_budget,
  include_hook_events, strict_mcp_config, continue_conversation,
  fork_session
- Add TaskBudget type import
- Update uv.lock

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* chore: lower claude-agent-sdk floor to >=0.1.36

Keep the lower bound at 0.1.36 since the 0.1→0.2 transition was additive
and our code works on older versions as long as new options aren't used.
This avoids forcing unnecessary upgrades on existing users.

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* fix: replace TaskBudget import with inline type for SDK compat

TaskBudget was added in claude-agent-sdk 0.2.93 but does not exist in
0.2.87. Use dict[str, int] inline type instead so type checking passes
against 0.2.87. Lock file pinned to 0.2.87.

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

---------

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>
2026-06-09 06:01:55 +00:00
bad05a2bdc Python: Harness console for python (#6312)
* Add initial harness console for python

* Add textual to project

* Add planning and approval flows with list selector

* Address PR comments

* Fix list selection bug

* Fix PR #6312 round 2 review comments

- Escape untrusted agent text with rich.markup.escape() in observers
  (text_output, planning_output, reasoning_display) to prevent markup injection
- Remove non-functional 'Always approve' choices from tool_approval.py
  (framework lacks CreateAlwaysApproveToolResponse support)
- Remove textual from root pyproject.toml dev deps (sample-specific)
- Add PEP 723 inline script metadata to harness_research.py
- Narrow except Exception to except NoMatches in list_selection.py

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* Fix build error

* Fix build errors

---------

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>
2026-06-09 05:48:35 +00:00
7e0767a0a0 Python: Fix per-service-call history persistence with server-storing clients (#6310)
* Fix per-service-call history persistence with server-storing clients

When an Agent set require_per_service_call_history_persistence=True together
with a HistoryProvider, and the chat client stored history server-side by
default (e.g. OpenAIChatClient, STORES_BY_DEFAULT=True), the external history
provider was silently never persisted.

Unify persistence on the per-service-call middleware: when the flag is set and
a HistoryProvider exists, the middleware is always installed and owns
persistence. service_stores_history now only selects middleware behavior:
- service does not store: load providers and drive the function loop with a
  local sentinel conversation id, or
- service stores: skip loading (the service owns history) and persist each
  service call while the real conversation id flows through.

Also rationalize chat-options handling in _prepare_run_context:
- _merge_options now skips None overrides and strips remaining None values, so
  an unset `store` is never forwarded and the service decides its own default.
- Resolve `store` and `conversation_id` once from a single combined view
  (effective_options) instead of probing both default and runtime dicts; the
  auto-injection and per-service-call resolution now agree on conversation_id.

Fixes #5798

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* Correct as_agent() docstring: persistence is per service call, not once per run

Address PR review: when the client stores history server-side, the
per-service-call middleware still persists after each model call; only
provider loading is skipped. The previous "persist once per run()" wording
contradicted the implementation.

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* Address PR review: docs, missing-conversation-id warning, and tests

- Clarify that require_per_service_call_history_persistence is a no-op when no
  HistoryProvider is present (docstrings in _agents.py and _clients.py).
- Warn on every service call when the client stores history server-side but
  returns no conversation_id, so the (uncommon) loss of cross-turn resumability
  cannot fail silently.
- Add tests: storing client + existing conversation_id does not raise and the id
  propagates; two runs on the same session keep persisting with a stable
  service_session_id and no provider loading; storing-without-conversation-id
  warns per call.

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

---------

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>
2026-06-09 05:47:57 +00:00
af772997af .NET: [BREAKING] Migrate .NET GitHub Copilot SDK to v1.0.0 (#6381)
* Migrate .NET GitHub Copilot SDK from 1.0.0-beta.2 to 1.0.0

- Update namespace from GitHub.Copilot.SDK to GitHub.Copilot
- Replace PermissionRequestResult/PermissionRequestResultKind with PermissionDecision
- Remove ConnectionState check (StartAsync is now idempotent)
- Rename ConfigDir to ConfigDirectory
- Use SessionConfig.Clone() for CopySessionConfig
- Update Tools type from List<AIFunction> to List<AIFunctionDeclaration>
- Rename UserMessageAttachmentFile to AttachmentFile
- Update usage data types (CacheWriteTokens: long, Duration: TimeSpan)
- Add GHCP001 NoWarn for experimental SDK APIs (matches framework convention)
- Specify type argument on CopilotSession.On<SessionEvent>()

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* Fix formatting: remove unused using directive

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* Skip AzureFunctions SamplesValidation tests pending func tools fix

Azure Functions Core Tools v4 can no longer auto-detect the worker
runtime in CI (local.settings.json is gitignored). All 7 active
SamplesValidation tests fail with 'Worker runtime cannot be None'.

Tracked by: https://github.com/microsoft/agent-framework/issues/6402

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* Skip additional failing integration tests in CI

WorkflowSamplesValidation (5 tests): same func tools issue as #6402.
WorkflowConsoleAppSamplesValidation (4 tests): KeyNotFoundException
during workflow execution, tracked by #6404.

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

---------

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>
2026-06-08 22:34:05 +00:00
westeyandGitHub b343625c1f .NET: Add approval bypassing to harness as the default (#6387)
* Add approval bypassing to harness as a default

* Add tests

* Address PR comments.
2026-06-08 17:50:41 +00:00
Evan MattsonandGitHub 9bc7b27813 Match AG-UI approval responses to requested arguments (#6376) 2026-06-08 16:33:16 +00:00
westeyandGitHub 6a2efeae7c .NET: [BREAKING] Fix hosting bugs (#6388)
* Fix hosting bugs

* Address PR comments
2026-06-08 16:17:54 +00:00
Vedant SonaniandGitHub 6169df04cb Python: fix(mem0): isolate entity retrieval and correct app_id payload (#6242)
* fix(mem0): parallel memory retrieval logic and strict type compliance

* fix(mem0): align parallel retrieval types for pyright and mypy

* fix(mem0): handle asyncio.CancelledError in search response and update test description

* fix(mem0): improve error handling for asyncio.CancelledError and update test names for clarity

* fix(mem0): improve retrieval response handling
2026-06-08 13:50:23 +00:00
Peter IbekweandGitHub 331201294b .NET: Fix single-column value unwrap in declarative workflow (#6367)
* Fix single-column value unwrap in declarative workflow

* Added more tests
2026-06-08 11:37:12 +00:00
Yufeng HeandGitHub fa9e086576 fix: preserve foreach record values (#6208) 2026-06-05 22:01:59 +00:00
dcc218dbac Python: feat(python): Add MCP client OTel spans per GenAI semantic conventions (#6349)
* feat(python): Add MCP client OTel spans per GenAI semantic conventions

Implement MCP client spans per the OTel GenAI Semantic Conventions for MCP
(https://opentelemetry.io/docs/specs/semconv/gen-ai/mcp/#client).

Operations instrumented:
- initialize: CLIENT span capturing MCP session setup
- tools/list: CLIENT span for tool listing (per-page)
- prompts/list: CLIENT span for prompt listing (per-page)
- tools/call: CLIENT span (nested under execute_tool when called via FunctionTool)
- prompts/get: CLIENT span

Span attributes follow the MCP semantic conventions:
- Required: mcp.method.name
- Conditional: error.type, gen_ai.tool.name, gen_ai.prompt.name
- Recommended: gen_ai.operation.name, mcp.protocol.version, mcp.session.id,
  network.transport, server.address, server.port

Transport-specific attributes per subclass:
- MCPStdioTool: network.transport=pipe
- MCPStreamableHTTPTool: network.transport=tcp, network.protocol.name=http
- MCPWebsocketTool: network.transport=tcp, network.protocol.name=websocket

All span creation gated behind OBSERVABILITY_SETTINGS.ENABLED.

Closes #3624
Closes #4697

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* refactor: simplify MCP spans — remove enrichment logic and protocol version caching

- Always create nested CLIENT spans for tools/call instead of enriching
  the parent execute_tool span
- Remove _ACTIVE_TOOL_EXECUTION_SPAN contextvar (no longer needed)
- Remove enrich_span_with_mcp_attributes() helper
- Remove _otel_error_type preservation in FunctionTool.invoke()
- Remove _mcp_protocol_version instance variable; protocol version is
  only set on the initialize span where it is available

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* Refine copilot solution

* fix: enable automatic exception recording on MCP spans

Remove record_exception=False and set_status_on_exception=False from
create_mcp_client_span. Let OTel handle exception recording and status
setting automatically. The manual set_mcp_span_error calls for tools/call
still correctly set error.type (which OTel's automatic handling doesn't
touch), so tool_error is preserved.

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* Reduce number of lines

* Add comment to sample

* test: address PR review comments on MCP observability tests

- Fix initialize test to call mocked session.initialize() and read
  protocolVersion from the result instead of hardcoding it
- Add tools/call McpError error-path test
- Add prompts/get McpError error-path test

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* Fix export error

---------

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>
2026-06-05 19:23:01 +00:00
6bd2cfec03 .NET: [BREAKING] Add auto-approval rules (heuristics) to ToolApprovalAgent (#6335)
* Add support for approving tools via heuristic rules

* Address PR comments

* Address PR comments

* Apply suggestion from @SergeyMenshykh

Co-authored-by: SergeyMenshykh <68852919+SergeyMenshykh@users.noreply.github.com>

---------

Co-authored-by: SergeyMenshykh <68852919+SergeyMenshykh@users.noreply.github.com>
2026-06-05 18:43:07 +01:00
westeyandGitHub ab8ba8fc61 .NET: Allow storage of auto-approved functions (#4950)
* Allow storage of auto-approved functions

* Address PR comments
2026-06-05 18:42:21 +01:00
Tao ChenandGitHub 9cafd7e58b Python: Refactor workflow as agent pending request handling (#6259)
* WIP: Refactor Workflow as agent pending request handling

* WIP: debugging empty message bug

* Working: Workflow as agent with function approval

* Address Copilot comments

* Fix mypy

* Address comments and fix pipeline

* Request info non function approval now becomes function call

* Revert uv.lock

* Fix mypy

* Bump min version of azure-ai-project

* Remove RequestInfoFunctionArgs

* fix tests

* Fix failing tests

* Fix sample
2026-06-05 17:23:19 +00:00
d5335fbeae Python (fix:gemini): make Gemini honor declarative outputSchema, not just JSON mode (#5893)
* fix(gemini): preserve schema response_format

* fix(gemini): satisfy pyright strict in response schema extraction

Cast Any-narrowed mappings to Mapping[str, Any] in the structured-output
schema helpers so pyright strict no longer reports partially-unknown
member, argument, and variable types. Pass response_format["format"]
straight into the recursive extractor, which already guards non-mapping
inputs. No behavior change.

* fix(gemini): use Sequence[object] cast to satisfy both mypy and pyright

The Sequence[Any] cast pyright strict needs to know the loop element type
is reported as a redundant-cast by mypy, which already narrows the
isinstance branch to Sequence[Any]. Cast to Sequence[object] instead:
pyright gets a fully known element type and mypy no longer sees an
identical-type cast. No behavior change.

---------

Co-authored-by: Evan Mattson <evan.mattson@microsoft.com>
2026-06-05 15:17:51 +00:00
bf4ad48cf2 Python: MCP long-running task support in Python (#6319)
* MCP long-running task support in Python

* Fix pyupgrade and AGENTS.md reconnect description

- pyupgrade: drop forward-reference string annotations in _mcp.py (Python 3.10+ resolves them natively now that MCPTaskOptions is defined before use).

- AGENTS.md: align reconnect description with current behavior. Phase 1 (initial tools/call) does NOT retry on connection loss; raises 'connection lost; task state unknown' instead, so a server that accepted the request but lost the response cannot start the operation twice. Phase 2 (tasks/get / tasks/result) still reconnects once against the same task_id.

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>

* Fix bandit nosec marker for CI pipeline

* Address PR feedbacks

* Clarifiied comments and addressed more PR feedbacks.

---------

Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>
2026-06-05 00:04:55 +00:00
498 changed files with 35429 additions and 2787 deletions
+4 -1
View File
@@ -20,7 +20,10 @@ ignorePatterns:
- pattern: "https://your-resource.openai.azure.com/"
- pattern: "http://host.docker.internal"
- pattern: "https://openai.github.io/openai-agents-js/openai/agents/classes/"
- pattern: "https:\/\/dotnet.microsoft.com\/download"
# dotnet.microsoft.com bot-blocks CI link checkers with intermittent 403s on any
# path (including localized variants like /en-us/download/...), so ignore the
# whole domain rather than just /download.
- pattern: "https:\/\/dotnet.microsoft.com"
- pattern: "https://github.com/Rel1cx/eslint-react"
# excludedDirs:
# Folders which include links to localhost, since it's not ignored with regular expressions
+25 -5
View File
@@ -1,23 +1,43 @@
### Motivation and Context
### Motivation & Context
<!-- Thank you for your contribution to the Agent Framework repo!
Please help reviewers and future users, providing the following information:
1. Why is this change required?
2. What problem does it solve?
3. What scenario does it contribute to?
4. If it fixes an open issue, please link to the issue here.
4. If it fixes an open issue, please link to the issue below.
-->
### Description
### Description & Review Guide
<!-- Describe your changes, the overall approach, the underlying design.
Highlight what you want the reviewers to focus on.
These notes will help understanding how your code works. Thanks! -->
- **What are the major changes?**
- **What is the impact of these changes?**
- **What do you want reviewers to focus on?**
<!-- NOTE FOR AUTOMATED/AI REVIEWERS: the "What do you want reviewers to focus on?"
item above is intended for human reviewers only. Automated/AI reviewers should
ignore it and review the entire change rather than narrowing scope to it. -->
### Related Issue
<!-- Which issue does this PR fix? Link it using a GitHub closing keyword so it is
closed automatically when this PR is merged, e.g. "Fixes #123" or "Closes #123".
PRs that are not linked to an issue may be closed, no matter how valid the change is.
Also check whether an open PR already exists for this issue; if so,
explain how this PR is different. -->
Fixes #
### Contribution Checklist
<!-- Before submitting this PR, please make sure: -->
- [ ] The code builds clean without any errors or warnings
- [ ] The PR follows the [Contribution Guidelines](https://github.com/microsoft/agent-framework/blob/main/CONTRIBUTING.md)
- [ ] All unit tests pass, and I have added new tests where possible
- [ ] **Is this a breaking change?** If yes, add "[BREAKING]" prefix to the title of the PR.
- [ ] The PR follows the [Contribution Guidelines](https://github.com/microsoft/agent-framework/blob/main/CONTRIBUTING.md)
- [ ] This PR is linked to an issue and there is no other open PR for this issue (see Related Issue above).
- [x] **This is not a breaking change.** If it _is_ a breaking change, add the `breaking change` label (or add "[BREAKING]" to the title prefix, before or after any language prefix) — a workflow keeps the label and title prefix in sync automatically.
+253
View File
@@ -0,0 +1,253 @@
// Copyright (c) Microsoft. All rights reserved.
const BREAKING_CHANGE_LABEL = 'breaking change';
const BREAKING_PREFIX = '[BREAKING]';
const DEFAULT_PREFIX_LABELS = Object.freeze({
python: 'Python',
'.NET': '.NET',
});
const DEFAULT_BRACKET_PREFIX_LABELS = Object.freeze({
[BREAKING_CHANGE_LABEL]: BREAKING_PREFIX,
});
function escapeRegExp(value) {
return value.replace(/[.*+?^${}()|[\]\\]/g, '\\$&');
}
function getMatchingValueByKey(valuesByKey, keyToFind) {
const matchingKey = Object.keys(valuesByKey).find((key) => key.toLowerCase() === keyToFind.toLowerCase());
return matchingKey === undefined ? null : valuesByKey[matchingKey];
}
function getPrefixPattern(prefixes) {
return prefixes.map(escapeRegExp).join('|');
}
function canonicalizePrefix(prefix, prefixes) {
return prefixes.find((knownPrefix) => knownPrefix.toLowerCase() === prefix.toLowerCase()) ?? prefix;
}
function normalizeLeadingBracketPrefix(title, bracketPrefixes) {
const bracketPattern = getPrefixPattern(bracketPrefixes);
if (!bracketPattern) {
return title;
}
const leadingBracketPrefix = new RegExp(`^(${bracketPattern})(?=\\s|$)`, 'i');
return title.replace(
leadingBracketPrefix,
(bracketPrefix) => canonicalizePrefix(bracketPrefix, bracketPrefixes),
);
}
function parseLeadingTitlePrefix(title, titlePrefixes) {
const titlePrefixPattern = getPrefixPattern(titlePrefixes);
if (!titlePrefixPattern) {
return null;
}
const match = title.match(new RegExp(`^(${titlePrefixPattern}):\\s*`, 'i'));
if (!match) {
return null;
}
return {
prefix: canonicalizePrefix(match[1], titlePrefixes),
rest: title.slice(match[0].length).trimStart(),
};
}
function removeBracketPrefixToken(title, bracketPrefix) {
const bracketPrefixPattern = escapeRegExp(bracketPrefix);
return title
.replace(new RegExp(`(^|\\s+)${bracketPrefixPattern}(?=\\s|$)`, 'ig'), '$1')
.replace(/\s{2,}/g, ' ')
.trim();
}
function addTitlePrefix(title, prefix, bracketPrefixes = Object.values(DEFAULT_BRACKET_PREFIX_LABELS)) {
const bracketPattern = getPrefixPattern(bracketPrefixes);
const prefixPattern = escapeRegExp(prefix);
if (bracketPattern) {
const bracketThenTitlePrefix = new RegExp(`^(${bracketPattern})(\\s+)(${prefixPattern})(?=:)`, 'i');
if (bracketThenTitlePrefix.test(title)) {
return title.replace(
bracketThenTitlePrefix,
(match, bracketPrefix, spacing) => `${canonicalizePrefix(bracketPrefix, bracketPrefixes)}${spacing}${prefix}`,
);
}
title = normalizeLeadingBracketPrefix(title, bracketPrefixes);
}
if (!title.startsWith(`${prefix}: `)) {
const existingTitlePrefix = new RegExp(`^${prefixPattern}:\\s*`, 'i');
if (existingTitlePrefix.test(title)) {
return title.replace(existingTitlePrefix, `${prefix}: `);
}
return `${prefix}: ${title}`;
}
return title;
}
function hasBracketPrefix(title, bracketPrefix, titlePrefixes = Object.values(DEFAULT_PREFIX_LABELS)) {
const bracketPrefixPattern = escapeRegExp(bracketPrefix);
const leadingBracketPrefix = new RegExp(`^${bracketPrefixPattern}(?=\\s|$)`, 'i');
if (leadingBracketPrefix.test(title)) {
return true;
}
const leadingTitlePrefix = parseLeadingTitlePrefix(title, titlePrefixes);
if (!leadingTitlePrefix) {
return false;
}
return leadingBracketPrefix.test(leadingTitlePrefix.rest);
}
function addBracketPrefix(title, bracketPrefix, titlePrefixes = Object.values(DEFAULT_PREFIX_LABELS)) {
const bracketPrefixPattern = escapeRegExp(bracketPrefix);
const leadingBracketPrefix = new RegExp(`^${bracketPrefixPattern}(?=\\s|$)`, 'i');
if (leadingBracketPrefix.test(title)) {
return title.replace(leadingBracketPrefix, bracketPrefix);
}
const leadingTitlePrefix = parseLeadingTitlePrefix(title, titlePrefixes);
if (leadingTitlePrefix) {
if (leadingBracketPrefix.test(leadingTitlePrefix.rest)) {
const normalizedRest = leadingTitlePrefix.rest.replace(leadingBracketPrefix, bracketPrefix);
return `${leadingTitlePrefix.prefix}: ${normalizedRest}`;
}
const titleWithoutBracketPrefix = removeBracketPrefixToken(leadingTitlePrefix.rest, bracketPrefix);
return `${leadingTitlePrefix.prefix}: ${bracketPrefix}`
+ (titleWithoutBracketPrefix ? ` ${titleWithoutBracketPrefix}` : '');
}
const titleWithoutBracketPrefix = removeBracketPrefixToken(title, bracketPrefix);
return `${bracketPrefix}${titleWithoutBracketPrefix ? ` ${titleWithoutBracketPrefix}` : ''}`;
}
function hasLabel(labels, labelName) {
return labels.some((label) => label.toLowerCase() === labelName.toLowerCase());
}
function getCurrentTitle(context) {
switch (context.eventName) {
case 'issues':
return context.payload.issue.title;
case 'pull_request_target':
return context.payload.pull_request.title;
default:
throw new Error(`Unrecognized eventName: ${context.eventName}`);
}
}
async function updateTitleForAddedLabel({
github,
context,
core,
prefixLabels = DEFAULT_PREFIX_LABELS,
bracketPrefixLabels = DEFAULT_BRACKET_PREFIX_LABELS,
}) {
const labelAdded = context.payload.label?.name;
if (!labelAdded) {
throw new Error('This script must be run from a labeled event.');
}
const currentTitle = getCurrentTitle(context);
let newTitle = null;
const titlePrefix = getMatchingValueByKey(prefixLabels, labelAdded);
if (titlePrefix !== null) {
newTitle = addTitlePrefix(currentTitle, titlePrefix, Object.values(bracketPrefixLabels));
}
const bracketPrefix = getMatchingValueByKey(bracketPrefixLabels, labelAdded);
if (bracketPrefix !== null) {
newTitle = addBracketPrefix(currentTitle, bracketPrefix, Object.values(prefixLabels));
}
if (newTitle === null) {
core.info(`No title prefix configured for label "${labelAdded}".`);
return { updated: false, newTitle: currentTitle };
}
if (newTitle === currentTitle) {
core.info(`Title already includes the prefix for label "${labelAdded}".`);
return { updated: false, newTitle };
}
switch (context.eventName) {
case 'issues':
await github.rest.issues.update({
issue_number: context.issue.number,
owner: context.repo.owner,
repo: context.repo.repo,
title: newTitle,
});
break;
case 'pull_request_target':
await github.rest.pulls.update({
pull_number: context.issue.number,
owner: context.repo.owner,
repo: context.repo.repo,
title: newTitle,
});
break;
default:
throw new Error(`Unrecognized eventName: ${context.eventName}`);
}
return { updated: true, newTitle };
}
async function syncBreakingChangeLabelFromTitle({
github,
context,
core,
labelName = BREAKING_CHANGE_LABEL,
bracketPrefix = BREAKING_PREFIX,
titlePrefixes = Object.values(DEFAULT_PREFIX_LABELS),
}) {
const pullRequest = context.payload.pull_request;
if (!pullRequest) {
throw new Error('This script must be run from a pull_request_target event.');
}
const title = pullRequest.title || '';
if (!hasBracketPrefix(title, bracketPrefix, titlePrefixes)) {
core.info(`Title does not include ${bracketPrefix} in the title prefix.`);
return { added: false };
}
const labels = pullRequest.labels?.map((label) => label.name).filter(Boolean) ?? [];
if (hasLabel(labels, labelName)) {
core.info(`PR already has the "${labelName}" label.`);
return { added: false };
}
await github.rest.issues.addLabels({
issue_number: context.issue.number,
owner: context.repo.owner,
repo: context.repo.repo,
labels: [labelName],
});
return { added: true };
}
module.exports = {
addBracketPrefix,
addTitlePrefix,
hasBracketPrefix,
syncBreakingChangeLabelFromTitle,
updateTitleForAddedLabel,
};
+116
View File
@@ -0,0 +1,116 @@
---
name: pull-requests
description: >
Guidance for creating pull requests and handling PR review comments in the
Agent Framework repository. Use this when writing a PR description (filling out
the PR template) or when responding to and resolving review comments on an
existing PR.
---
# Pull Request Workflow
This skill covers two tasks: (1) writing a high-quality PR description, and
(2) handling review comments on an existing PR.
## 1. Writing the PR description
Always follow the repository PR template at
[`.github/pull_request_template.md`](../../pull_request_template.md). Keep its
exact structure and headings. Fill every section:
### `### Motivation & Context`
Explain *why* the change is needed: the problem it solves and the scenario it
contributes to. Describe the net change relative to `main` — this is implied, so
do **not** spell out "vs main" explicitly.
### `### Description & Review Guide`
Describe the changes, the overall approach, and the design. Answer the three
prompts:
- **What are the major changes?**
- **What is the impact of these changes?**
- **What do you want reviewers to focus on?** — This item is for **human
reviewers only**. Automated/AI reviewers must ignore it and review the entire
change rather than narrowing scope to it.
### `### Related Issue`
Link the issue the PR fixes using a GitHub closing keyword (`Fixes #123` /
`Closes #123`) so it closes automatically on merge. A PR with no linked issue may
be closed regardless of how valid the change is. Before opening, confirm there is
no other open PR for the same issue; if there is, explain how this PR differs.
### `### Contribution Checklist`
Check every item that applies. For the breaking-change item:
- Leave **"This is not a breaking change."** checked for the common case.
- If the change **is** breaking, add the `breaking change` label **or** put
`[BREAKING]` in the title prefix, before or after a language prefix such as
`Python:` or `.NET:` — workflows keep the label and the title prefix in sync
automatically (see `.github/workflows/label-title-prefix.yml` and
`.github/workflows/label-pr.yml`).
### Do not
- Do **not** add ad-hoc sections such as "Validation" or "Tests run"; CI/CD and
the checklist already cover validation status.
- Do **not** remove or reorder the template's headings.
### Creating the PR
Open new PRs as **drafts** until they are ready for review. Example:
```bash
gh pr create --repo microsoft/agent-framework --base main \
--head <your-fork-owner>:<branch> --draft \
--title "<concise title>" --body "<body following the template>"
```
## 2. Handling review comments
When a PR receives review comments, follow this sequence — **do not start editing
code before the user has reviewed the plan**:
1. **Review the comments.** Read every review comment and thread on the PR,
including inline code comments and general review summaries.
2. **Make a plan.** Produce a concrete plan describing how each comment will be
addressed (or why it should not be, with reasoning).
3. **Let the user review the plan.** Present the plan and wait for the user's
approval or adjustments before implementing anything.
4. **Implement.** Make the agreed changes.
5. **Reply to every comment.** Add a reply to **all** comments explaining how it
was addressed (or the agreed outcome) — leave none unanswered.
6. **Resolve resolved threads.** Mark a review thread as resolved only when the
comment has actually been addressed.
### Useful commands
List review comments and threads:
```bash
# Inline review comments
gh api repos/{owner}/{repo}/pulls/{pr}/comments
# Review threads with resolution state (GraphQL)
gh api graphql -f query='
query($owner:String!,$repo:String!,$pr:Int!){
repository(owner:$owner,name:$repo){
pullRequest(number:$pr){
reviewThreads(first:100){
nodes{ id isResolved comments(first:50){ nodes{ id body author{login} } } }
}
}
}
}' -F owner={owner} -F repo={repo} -F pr={pr}
```
Reply to an inline review comment:
```bash
gh api repos/{owner}/{repo}/pulls/{pr}/comments/{comment_id}/replies \
-f body="Addressed in <commit>: <explanation>"
```
Resolve a review thread (needs the thread node id from the GraphQL query above):
```bash
gh api graphql -f query='
mutation($threadId:ID!){
resolveReviewThread(input:{threadId:$threadId}){ thread{ isResolved } }
}' -F threadId={thread_id}
```
@@ -48,6 +48,10 @@ jobs:
filters: |
dotnet:
- 'dotnet/**'
- '!dotnet/AGENTS.md'
- '!dotnet/**/AGENTS.md'
- '!dotnet/.github/skills/*'
- '!dotnet/.github/skills/**'
cosmosdb:
- 'dotnet/src/Microsoft.Agents.AI.CosmosNoSql/**'
# The Foundry hosted-agent IT is costly (builds a container, pushes to ACR,
+4
View File
@@ -10,6 +10,10 @@ on:
branches: ["main", "feature*"]
paths:
- dotnet/**
- '!dotnet/AGENTS.md'
- '!dotnet/**/AGENTS.md'
- '!dotnet/.github/skills/*'
- '!dotnet/.github/skills/**'
- '.github/workflows/dotnet-format.yml'
concurrency:
@@ -88,6 +88,7 @@ jobs:
env:
COSMOSDB_ENDPOINT: https://localhost:8081
COSMOSDB_KEY: C2y6yDjf5/R+ob0N8A7Cgv30VRDJIWEHLM+4QDU5DE2nQ9nDuVTqobD4b8mGGyPMbIZnqyMsEcaGQy67XIw/Jw==
COPILOT_GITHUB_TOKEN: ${{ secrets.COPILOT_GITHUB_TOKEN }}
OpenAI__ApiKey: ${{ secrets.OPENAI__APIKEY }}
OpenAI__ChatModelId: ${{ vars.OPENAI__CHATMODELID }}
OpenAI__ChatReasoningModelId: ${{ vars.OPENAI__CHATREASONINGMODELID }}
+19 -1
View File
@@ -6,16 +6,34 @@
# https://github.com/actions/labeler
name: Label pull request
on: [pull_request_target]
on:
pull_request_target:
types: [opened, synchronize, reopened, edited]
jobs:
add_label:
runs-on: ubuntu-latest
permissions:
contents: read
issues: write
pull-requests: write
steps:
- uses: actions/labeler@f27b608878404679385c85cfa523b85ccb86e213 # v6
with:
repo-token: "${{ secrets.GH_ACTIONS_PR_WRITE }}"
- name: Checkout scripts
uses: actions/checkout@de0fac2e4500dabe0009e67214ff5f5447ce83dd # v6
with:
sparse-checkout: .github/scripts
fetch-depth: 1
persist-credentials: false
- name: "PR: add breaking change label from title"
uses: actions/github-script@ed597411d8f924073f98dfc5c65a23a2325f34cd # v8
with:
github-token: ${{ secrets.GH_ACTIONS_PR_WRITE }}
script: |
const { syncBreakingChangeLabelFromTitle } = require('./.github/scripts/title_prefix.js');
await syncBreakingChangeLabelFromTitle({ github, context, core });
+9 -50
View File
@@ -15,58 +15,17 @@ jobs:
pull-requests: write
steps:
- name: Checkout scripts
uses: actions/checkout@de0fac2e4500dabe0009e67214ff5f5447ce83dd # v6
with:
sparse-checkout: .github/scripts
fetch-depth: 1
persist-credentials: false
- uses: actions/github-script@ed597411d8f924073f98dfc5c65a23a2325f34cd # v8
name: "Issue/PR: update title"
with:
github-token: ${{ secrets.GITHUB_TOKEN }}
script: |
let prefixLabels = {
"python": "Python",
".NET": ".NET"
};
function addTitlePrefix(title, prefix)
{
// Update the title based on the label and prefix
// Check if the title starts with the prefix (case-sensitive)
if (!title.startsWith(prefix + ": ")) {
// If not, check if the first word is the label (case-insensitive)
if (title.match(new RegExp(`^${prefix}`, 'i'))) {
// If yes, replace it with the prefix (case-sensitive)
title = title.replace(new RegExp(`^${prefix}`, 'i'), prefix);
} else {
// If not, prepend the prefix to the title
title = prefix + ": " + title;
}
}
return title;
}
labelAdded = context.payload.label.name
// Check if the issue or PR has the label
if (labelAdded in prefixLabels) {
let prefix = prefixLabels[labelAdded];
switch(context.eventName) {
case 'issues':
github.rest.issues.update({
issue_number: context.issue.number,
owner: context.repo.owner,
repo: context.repo.repo,
title: addTitlePrefix(context.payload.issue.title, prefix)
});
break
case 'pull_request_target':
github.rest.pulls.update({
pull_number: context.issue.number,
owner: context.repo.owner,
repo: context.repo.repo,
title: addTitlePrefix(context.payload.pull_request.title, prefix)
});
break
default:
core.setFailed('Unrecognited eventName: ' + context.eventName);
}
}
const { updateTitleForAddedLabel } = require('./.github/scripts/title_prefix.js');
await updateTitleForAddedLabel({ github, context, core });
+1 -1
View File
@@ -27,7 +27,7 @@ jobs:
# "Cleanup artifacts", "Agent", "Prepare", and "Upload results" are check runs
# created by an org-level GitHub App (MSDO), not by any workflow in this repo.
# They are outside our control and their transient failures should not block merges.
IGNORED_NAMES: "CodeQL,CodeQL analysis (csharp),Cleanup artifacts,Agent,Prepare,Upload results"
IGNORED_NAMES: "CodeQL,CodeQL analysis (csharp),Cleanup artifacts,Agent,Prepare,Upload results,review"
with:
script: |
const timeoutSeconds = Number(process.env.TIMEOUT_SECONDS);
@@ -6,6 +6,10 @@ on:
branches: ["main"]
paths:
- "python/**"
- "!python/AGENTS.md"
- "!python/**/AGENTS.md"
- "!python/.github/skills/*"
- "!python/.github/skills/**"
env:
# Configure a constant location for the uv cache
+4
View File
@@ -31,6 +31,10 @@ jobs:
filters: |
python:
- 'python/**'
- '!python/AGENTS.md'
- '!python/**/AGENTS.md'
- '!python/.github/skills/*'
- '!python/.github/skills/**'
# run only if 'python' files were changed
- name: python tests
if: steps.filter.outputs.python == 'true'
+4
View File
@@ -49,6 +49,10 @@ jobs:
filters: |
python:
- 'python/**'
- '!python/AGENTS.md'
- '!python/**/AGENTS.md'
- '!python/.github/skills/*'
- '!python/.github/skills/**'
- '.github/actions/setup-local-mcp-server/**'
- '.github/workflows/python-merge-tests.yml'
- '.github/workflows/python-integration-tests.yml'
+4
View File
@@ -5,6 +5,10 @@ on:
branches: ["main", "feature*"]
paths:
- "python/**"
- "!python/AGENTS.md"
- "!python/**/AGENTS.md"
- "!python/.github/skills/*"
- "!python/.github/skills/**"
env:
# Configure a constant location for the uv cache
UV_CACHE_DIR: /tmp/.uv-cache
+2
View File
@@ -206,6 +206,7 @@ temp*/
.temp/
# AI
**/.checkpoints/
.claude/
.omc/
.omx/
@@ -213,6 +214,7 @@ WARP.md
**/memory-bank/
**/projectBrief.md
**/tmpclaude*
.kiro/
# Dependency-bound validation reports
python/scripts/dependency-*-results.json
python/scripts/dependencies/dependency-*-results.json
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@@ -1125,7 +1125,7 @@ Naming (Python): N/A (Composable Components)
Supports: N
Observation: No explicit middleware/filters; modularity allows composable units but no dedicated interception hooks or callbacks for custom reading/modification mid-execution.
For more details, see the official documentation: [Atomic Agents Docs](https://brainblend-ai.github.io/atomic-agents/). No specific code examples available for interception.
No specific code examples available for interception.
#### Smolagents (Hugging Face)
+1
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@@ -0,0 +1 @@
../../../.github/skills/pull-requests
+4
View File
@@ -10,6 +10,10 @@ See `./.github/skills/build-and-test/SKILL.md` for detailed instructions on buil
See `./.github/skills/project-structure/SKILL.md` for an overview of the project structure.
## Pull Requests
See `./.github/skills/pull-requests/SKILL.md` for guidance on writing PR descriptions and handling/resolving PR review comments.
### Core types
- `AIAgent`: The abstract base class that all agents derive from, providing common methods for interacting with an agent.
+19 -13
View File
@@ -21,6 +21,7 @@
<PackageVersion Include="Aspire.Hosting.Azure.CognitiveServices" Version="$(AspireAppHostSdkVersion)" />
<PackageVersion Include="Aspire.Microsoft.Azure.Cosmos" Version="$(AspireAppHostSdkVersion)" />
<PackageVersion Include="CommunityToolkit.Aspire.OllamaSharp" Version="13.0.0" />
<PackageVersion Include="MessagePack" Version="3.1.7" /> <!-- Transitive dependency of Aspire pinned to newer version due to vulnerability in 2.5.192 -->
<!-- Azure.* -->
<PackageVersion Include="Azure.AI.AgentServer.Core" Version="1.0.0-beta.25" />
<PackageVersion Include="Azure.AI.AgentServer.Invocations" Version="1.0.0-beta.4" />
@@ -41,19 +42,19 @@
<!-- Newtonsoft.Json -->
<PackageVersion Include="Newtonsoft.Json" Version="13.0.4" />
<!-- System.* -->
<PackageVersion Include="Microsoft.Bcl.AsyncInterfaces" Version="10.0.6" />
<PackageVersion Include="Microsoft.Bcl.AsyncInterfaces" Version="10.0.8" />
<PackageVersion Include="Microsoft.Bcl.HashCode" Version="6.0.0" />
<PackageVersion Include="Microsoft.Bcl.Memory" Version="10.0.5" />
<PackageVersion Include="System.ClientModel" Version="1.12.0" />
<PackageVersion Include="System.CodeDom" Version="10.0.0" />
<PackageVersion Include="System.Collections.Immutable" Version="10.0.1" />
<PackageVersion Include="System.CommandLine" Version="2.0.0-rc.2.25502.107" />
<PackageVersion Include="System.Diagnostics.DiagnosticSource" Version="10.0.6" />
<PackageVersion Include="System.Diagnostics.DiagnosticSource" Version="10.0.8" />
<PackageVersion Include="System.Linq.AsyncEnumerable" Version="10.0.5" />
<PackageVersion Include="System.Net.Http.Json" Version="10.0.0" />
<PackageVersion Include="System.Net.ServerSentEvents" Version="10.0.5" />
<PackageVersion Include="System.Text.Json" Version="10.0.6" />
<PackageVersion Include="System.Threading.Channels" Version="10.0.6" />
<PackageVersion Include="System.Text.Json" Version="10.0.8" />
<PackageVersion Include="System.Threading.Channels" Version="10.0.8" />
<PackageVersion Include="System.Threading.Tasks.Extensions" Version="4.6.3" />
<PackageVersion Include="System.Net.Security" Version="4.3.2" />
<!-- OpenTelemetry -->
@@ -72,12 +73,12 @@
<PackageVersion Include="Microsoft.AspNetCore.OpenApi" Version="10.0.0" />
<PackageVersion Include="Swashbuckle.AspNetCore.SwaggerUI" Version="10.0.0" />
<!-- Microsoft.Extensions.* -->
<PackageVersion Include="Microsoft.Extensions.AI" Version="10.5.1" />
<PackageVersion Include="Microsoft.Extensions.AI.Abstractions" Version="10.5.1" />
<PackageVersion Include="Microsoft.Extensions.AI.Evaluation" Version="10.4.0" />
<PackageVersion Include="Microsoft.Extensions.AI.Evaluation.Quality" Version="10.4.0" />
<PackageVersion Include="Microsoft.Extensions.AI.Evaluation.Safety" Version="10.3.0-preview.1.26109.11" />
<PackageVersion Include="Microsoft.Extensions.AI.OpenAI" Version="10.5.1" />
<PackageVersion Include="Microsoft.Extensions.AI" Version="10.6.0" />
<PackageVersion Include="Microsoft.Extensions.AI.Abstractions" Version="10.6.0" />
<PackageVersion Include="Microsoft.Extensions.AI.Evaluation" Version="10.6.0" />
<PackageVersion Include="Microsoft.Extensions.AI.Evaluation.Quality" Version="10.6.0" />
<PackageVersion Include="Microsoft.Extensions.AI.Evaluation.Safety" Version="10.6.0" />
<PackageVersion Include="Microsoft.Extensions.AI.OpenAI" Version="10.6.0" />
<PackageVersion Include="Microsoft.Extensions.Caching.Memory" Version="10.0.0" />
<PackageVersion Include="Microsoft.Extensions.Compliance.Abstractions" Version="10.5.0" />
<PackageVersion Include="Microsoft.Extensions.Configuration" Version="10.0.1" />
@@ -86,12 +87,12 @@
<PackageVersion Include="Microsoft.Extensions.Configuration.Json" Version="10.0.1" />
<PackageVersion Include="Microsoft.Extensions.Configuration.UserSecrets" Version="10.0.1" />
<PackageVersion Include="Microsoft.Extensions.DependencyInjection" Version="10.0.1" />
<PackageVersion Include="Microsoft.Extensions.DependencyInjection.Abstractions" Version="10.0.6" />
<PackageVersion Include="Microsoft.Extensions.DependencyInjection.Abstractions" Version="10.0.8" />
<PackageVersion Include="Microsoft.Extensions.FileSystemGlobbing" Version="10.0.6" />
<PackageVersion Include="Microsoft.Extensions.Hosting" Version="10.0.1" />
<PackageVersion Include="Microsoft.Extensions.Http.Resilience" Version="10.0.0" />
<PackageVersion Include="Microsoft.Extensions.Logging" Version="10.0.1" />
<PackageVersion Include="Microsoft.Extensions.Logging.Abstractions" Version="10.0.6" />
<PackageVersion Include="Microsoft.Extensions.Logging.Abstractions" Version="10.0.8" />
<PackageVersion Include="Microsoft.Extensions.Logging.Console" Version="10.0.1" />
<PackageVersion Include="Microsoft.Extensions.ServiceDiscovery" Version="10.0.0" />
<PackageVersion Include="Microsoft.Extensions.VectorData.Abstractions" Version="9.7.0" />
@@ -99,7 +100,7 @@
<PackageVersion Include="Microsoft.SemanticKernel.Connectors.InMemory" Version="1.67.0-preview" />
<PackageVersion Include="Microsoft.SemanticKernel.Connectors.Qdrant" Version="1.67.0-preview" />
<!-- Agent SDKs -->
<PackageVersion Include="GitHub.Copilot.SDK" Version="1.0.0-beta.2" />
<PackageVersion Include="GitHub.Copilot.SDK" Version="1.0.0" />
<PackageVersion Include="Microsoft.Agents.CopilotStudio.Client" Version="1.3.171-beta" />
<!-- M365 Agents SDK -->
<PackageVersion Include="AdaptiveCards" Version="3.1.0" />
@@ -138,10 +139,15 @@
<PackageVersion Include="Microsoft.Azure.Functions.Worker.Extensions.Http.AspNetCore" Version="2.1.0" />
<PackageVersion Include="Microsoft.Azure.Functions.Worker.Extensions.Mcp" Version="1.0.0" />
<PackageVersion Include="Microsoft.Azure.Functions.Worker.Sdk" Version="2.0.7" />
<!-- Valkey -->
<!-- Redis -->
<PackageVersion Include="StackExchange.Redis" Version="2.10.1" />
<!-- Valkey -->
<PackageVersion Include="Valkey.Glide" Version="1.1.0" />
<!-- Console UX -->
<PackageVersion Include="Spectre.Console" Version="0.49.1" />
<!-- AWS -->
<PackageVersion Include="AWSSDK.Extensions.Bedrock.MEAI" Version="4.0.6.10" />
<!-- Test -->
<PackageVersion Include="FluentAssertions" Version="8.8.0" />
<PackageVersion Include="Microsoft.AspNetCore.TestHost" Condition="'$(TargetFramework)' == 'net8.0'" Version="8.0.22" />
+8 -1
View File
@@ -24,7 +24,6 @@
<File Path="samples/02-agents/AgentProviders/README.md" />
<Project Path="samples/02-agents/AgentProviders/Agent_With_A2A/Agent_With_A2A.csproj" />
<Project Path="samples/02-agents/AgentProviders/Agent_With_Anthropic/Agent_With_Anthropic.csproj" />
<Project Path="samples/02-agents/AgentProviders/Agent_With_AzureAIAgentsPersistent/Agent_With_AzureAIAgentsPersistent.csproj" />
<Project Path="samples/02-agents/AgentProviders/Agent_With_AzureAIProject/Agent_With_AzureAIProject.csproj" />
<Project Path="samples/02-agents/AgentProviders/Agent_With_AzureFoundryModel/Agent_With_AzureFoundryModel.csproj" />
<Project Path="samples/02-agents/AgentProviders/Agent_With_AzureOpenAIChatCompletion/Agent_With_AzureOpenAIChatCompletion.csproj" />
@@ -129,6 +128,7 @@
<Project Path="samples/02-agents/Harness/Harness_Step02_Research_WithBackgroundAgents/Harness_Step02_Research_WithBackgroundAgents.csproj" />
<Project Path="samples/02-agents/Harness/Harness_Step03_DataProcessing/Harness_Step03_DataProcessing.csproj" />
<Project Path="samples/02-agents/Harness/Harness_Step04_CodeExecution/Harness_Step04_CodeExecution.csproj" />
<Project Path="samples/02-agents/Harness/Harness_Step05_Loop/Harness_Step05_Loop.csproj" />
</Folder>
<Folder Name="/Samples/02-agents/AGUI/Step05_StateManagement/">
<Project Path="samples/02-agents/AGUI/Step05_StateManagement/Client/Client.csproj" />
@@ -194,6 +194,8 @@
<Project Path="samples/02-agents/AgentWithMemory/AgentWithMemory_Step02_MemoryUsingMem0/AgentWithMemory_Step02_MemoryUsingMem0.csproj" />
<Project Path="samples/02-agents/AgentWithMemory/AgentWithMemory_Step04_MemoryUsingFoundry/AgentWithMemory_Step04_MemoryUsingFoundry.csproj" />
<Project Path="samples/02-agents/AgentWithMemory/AgentWithMemory_Step05_BoundedChatHistory/AgentWithMemory_Step05_BoundedChatHistory.csproj" />
<Project Path="samples/02-agents/AgentWithMemory/AgentWithMemory_Step03_MemoryUsingValkey/AgentWithMemory_Step03_MemoryUsingValkey.csproj" />
<Project Path="samples/02-agents/AgentWithMemory/AgentWithMemory_Step03_MemoryUsingValkey_Bedrock/AgentWithMemory_Step03_MemoryUsingValkey_Bedrock.csproj" />
</Folder>
<Folder Name="/Samples/02-agents/AgentWithOpenAI/">
<File Path="samples/02-agents/AgentWithOpenAI/README.md" />
@@ -344,6 +346,9 @@
<Folder Name="/Samples/04-hosting/FoundryHostedAgents/responses/Hosted-Toolbox/">
<Project Path="samples/04-hosting/FoundryHostedAgents/responses/Hosted-Toolbox/HostedToolbox.csproj" />
</Folder>
<Folder Name="/Samples/04-hosting/FoundryHostedAgents/responses/Hosted-Toolbox-AuthPaths/">
<Project Path="samples/04-hosting/FoundryHostedAgents/responses/Hosted-Toolbox-AuthPaths/Hosted-Toolbox-AuthPaths.csproj" />
</Folder>
<Folder Name="/Samples/04-hosting/FoundryHostedAgents/responses/Hosted-ToolboxMcpSkills/">
<Project Path="samples/04-hosting/FoundryHostedAgents/responses/Hosted-ToolboxMcpSkills/HostedToolboxMcpSkills.csproj" />
</Folder>
@@ -622,6 +627,7 @@
<Project Path="src/Microsoft.Agents.AI.Workflows.Generators/Microsoft.Agents.AI.Workflows.Generators.csproj" />
<Project Path="src/Microsoft.Agents.AI.Workflows/Microsoft.Agents.AI.Workflows.csproj" />
<Project Path="src/Microsoft.Agents.AI/Microsoft.Agents.AI.csproj" />
<Project Path="src/Microsoft.Agents.AI.Valkey/Microsoft.Agents.AI.Valkey.csproj" />
</Folder>
<Folder Name="/Tests/" />
<Folder Name="/Tests/IntegrationTests/">
@@ -675,5 +681,6 @@
<Project Path="tests/Microsoft.Agents.AI.Workflows.Declarative.UnitTests/Microsoft.Agents.AI.Workflows.Declarative.UnitTests.csproj" />
<Project Path="tests/Microsoft.Agents.AI.Workflows.Generators.UnitTests/Microsoft.Agents.AI.Workflows.Generators.UnitTests.csproj" />
<Project Path="tests/Microsoft.Agents.AI.Workflows.UnitTests/Microsoft.Agents.AI.Workflows.UnitTests.csproj" />
<Project Path="tests/Microsoft.Agents.AI.Valkey.UnitTests/Microsoft.Agents.AI.Valkey.UnitTests.csproj" />
</Folder>
</Solution>
@@ -50,19 +50,6 @@ internal static class AgentsSamples
],
},
new SampleDefinition
{
Name = "Agent_With_AzureAIAgentsPersistent",
ProjectPath = "samples/02-agents/AgentProviders/Agent_With_AzureAIAgentsPersistent",
RequiredEnvironmentVariables = ["AZURE_AI_PROJECT_ENDPOINT"],
OptionalEnvironmentVariables = ["AZURE_AI_MODEL_DEPLOYMENT_NAME"],
ExpectedOutputDescription =
[
"The output should contain a joke about a pirate.",
"The output should not contain error messages or stack traces.",
],
},
new SampleDefinition
{
Name = "Agent_With_AzureAIProject",
+3 -3
View File
@@ -1,14 +1,14 @@
<Project>
<PropertyGroup>
<!-- Central version prefix - applies to all nuget packages. -->
<VersionPrefix>1.9.0</VersionPrefix>
<VersionPrefix>1.10.0</VersionPrefix>
<RCNumber>1</RCNumber>
<DateSuffix>260603</DateSuffix>
<DateSuffix>260610</DateSuffix>
<PackageVersion Condition="'$(IsReleaseCandidate)' == 'true'">$(VersionPrefix)-rc$(RCNumber)</PackageVersion>
<PackageVersion Condition="'$(IsReleaseCandidate)' != 'true' AND '$(VersionSuffix)' != ''">$(VersionPrefix)-$(VersionSuffix).$(DateSuffix).1</PackageVersion>
<PackageVersion Condition="'$(IsReleaseCandidate)' != 'true' AND '$(VersionSuffix)' == ''">$(VersionPrefix)-preview.$(DateSuffix).1</PackageVersion>
<PackageVersion Condition="'$(IsReleased)' == 'true'">$(VersionPrefix)</PackageVersion>
<GitTag>1.9.0</GitTag>
<GitTag>1.10.0</GitTag>
<Configurations>Debug;Release;Publish</Configurations>
<IsPackable>true</IsPackable>
@@ -1,44 +0,0 @@
// Copyright (c) Microsoft. All rights reserved.
#pragma warning disable CS0618 // Type or member is obsolete - sample uses deprecated PersistentAgentsClientExtensions
// This sample shows how to create and use a simple AI agent with Microsoft Foundry Agents as the backend.
using Azure.AI.Agents.Persistent;
using Azure.Identity;
using Microsoft.Agents.AI;
var endpoint = Environment.GetEnvironmentVariable("AZURE_AI_PROJECT_ENDPOINT") ?? throw new InvalidOperationException("AZURE_AI_PROJECT_ENDPOINT is not set.");
var deploymentName = Environment.GetEnvironmentVariable("AZURE_AI_MODEL_DEPLOYMENT_NAME") ?? "gpt-5.4-mini";
const string JokerName = "Joker";
const string JokerInstructions = "You are good at telling jokes.";
// Get a client to create/retrieve server side agents with.
// WARNING: DefaultAzureCredential is convenient for development but requires careful consideration in production.
// In production, consider using a specific credential (e.g., ManagedIdentityCredential) to avoid
// latency issues, unintended credential probing, and potential security risks from fallback mechanisms.
var persistentAgentsClient = new PersistentAgentsClient(endpoint, new DefaultAzureCredential());
// You can create a server side persistent agent with the Azure.AI.Agents.Persistent SDK.
var agentMetadata = await persistentAgentsClient.Administration.CreateAgentAsync(
model: deploymentName,
name: JokerName,
instructions: JokerInstructions);
// You can retrieve an already created server side persistent agent as an AIAgent.
AIAgent agent1 = await persistentAgentsClient.GetAIAgentAsync(agentMetadata.Value.Id);
// You can also create a server side persistent agent and return it as an AIAgent directly.
AIAgent agent2 = await persistentAgentsClient.CreateAIAgentAsync(
model: deploymentName,
name: JokerName,
instructions: JokerInstructions);
// You can then invoke the agent like any other AIAgent.
AgentSession session = await agent1.CreateSessionAsync();
Console.WriteLine(await agent1.RunAsync("Tell me a joke about a pirate.", session));
// Cleanup for sample purposes.
await persistentAgentsClient.Administration.DeleteAgentAsync(agent1.Id);
await persistentAgentsClient.Administration.DeleteAgentAsync(agent2.Id);
@@ -1,26 +0,0 @@
# Classic Foundry Agents
This sample demonstrates how to create an agent using the classic Foundry Agents experience.
# Classic vs New Foundry Agents
Below is a comparison between the classic and new Foundry Agents approaches:
[Migration Guide](https://learn.microsoft.com/en-us/azure/ai-foundry/agents/how-to/migrate?view=foundry)
# Prerequisites
Before you begin, ensure you have the following prerequisites:
- .NET 10 SDK or later
- Microsoft Foundry service endpoint and deployment configured
- Azure CLI installed and authenticated (for Azure credential authentication)
**Note**: This demo uses Azure CLI credentials for authentication. Make sure you're logged in with `az login` and have access to the Microsoft Foundry resource. For more information, see the [Azure CLI documentation](https://learn.microsoft.com/cli/azure/authenticate-azure-cli-interactively).
Set the following environment variables:
```powershell
$env:AZURE_AI_PROJECT_ENDPOINT="https://your-foundry-service.services.ai.azure.com/api/projects/your-foundry-project" # Replace with your Microsoft Foundry resource endpoint
$env:AZURE_AI_MODEL_DEPLOYMENT_NAME="gpt-5.4-mini" # Optional, defaults to gpt-5.4-mini
```
@@ -8,8 +8,8 @@ using Azure.Identity;
using Microsoft.Agents.AI;
using Microsoft.Agents.AI.Foundry;
var endpoint = Environment.GetEnvironmentVariable("AZURE_AI_PROJECT_ENDPOINT") ?? throw new InvalidOperationException("AZURE_AI_PROJECT_ENDPOINT is not set.");
var deploymentName = Environment.GetEnvironmentVariable("AZURE_AI_MODEL_DEPLOYMENT_NAME") ?? "gpt-5.4-mini";
var endpoint = Environment.GetEnvironmentVariable("FOUNDRY_PROJECT_ENDPOINT") ?? throw new InvalidOperationException("FOUNDRY_PROJECT_ENDPOINT is not set.");
var deploymentName = Environment.GetEnvironmentVariable("FOUNDRY_MODEL") ?? "gpt-5.4-mini";
const string JokerName = "JokerAgent";
@@ -1,4 +1,4 @@
# New Foundry Agents
# New Foundry Agents
This sample demonstrates how to create an agent using the new Foundry Agents experience.
@@ -21,6 +21,6 @@ Before you begin, ensure you have the following prerequisites:
Set the following environment variables:
```powershell
$env:AZURE_AI_PROJECT_ENDPOINT="https://your-foundry-service.services.ai.azure.com/api/projects/your-foundry-project" # Replace with your Microsoft Foundry resource endpoint
$env:AZURE_AI_MODEL_DEPLOYMENT_NAME="gpt-5.4-mini" # Optional, defaults to gpt-5.4-mini
$env:FOUNDRY_PROJECT_ENDPOINT="https://your-foundry-service.services.ai.azure.com/api/projects/your-foundry-project" # Replace with your Microsoft Foundry resource endpoint
$env:FOUNDRY_MODEL="gpt-5.4-mini" # Optional, defaults to gpt-5.4-mini
```
@@ -13,7 +13,7 @@ using OpenAI.Chat;
var endpoint = Environment.GetEnvironmentVariable("AZURE_OPENAI_ENDPOINT") ?? throw new InvalidOperationException("AZURE_OPENAI_ENDPOINT is not set.");
var apiKey = Environment.GetEnvironmentVariable("AZURE_OPENAI_API_KEY");
var model = Environment.GetEnvironmentVariable("AZURE_AI_MODEL_DEPLOYMENT_NAME") ?? "Phi-4-mini-instruct";
var model = Environment.GetEnvironmentVariable("FOUNDRY_MODEL") ?? "Phi-4-mini-instruct";
// Since we are using the OpenAI Client SDK, we need to override the default endpoint to point to Microsoft Foundry.
var clientOptions = new OpenAIClientOptions() { Endpoint = new Uri(endpoint) };
@@ -1,4 +1,4 @@
## Overview
## Overview
This sample shows how to use the OpenAI SDK to create and use a simple AI agent with any model hosted in Microsoft Foundry.
@@ -13,7 +13,7 @@ Before you begin, ensure you have the following prerequisites:
- .NET 10 SDK or later
- Microsoft Foundry resource
- A model deployment in your Microsoft Foundry resource. This example defaults to using the `Phi-4-mini-instruct` model,
so if you want to use a different model, ensure that you set your `AZURE_AI_MODEL_DEPLOYMENT_NAME` environment
so if you want to use a different model, ensure that you set your `FOUNDRY_MODEL` environment
variable to the name of your deployed model.
- An API key or role based authentication to access the Microsoft Foundry resource
@@ -30,5 +30,5 @@ $env:AZURE_OPENAI_ENDPOINT="https://ai-foundry-<myresourcename>.services.ai.azur
$env:AZURE_OPENAI_API_KEY="************"
# Optional, defaults to Phi-4-mini-instruct
$env:AZURE_AI_MODEL_DEPLOYMENT_NAME="Phi-4-mini-instruct"
$env:FOUNDRY_MODEL="Phi-4-mini-instruct"
```
@@ -6,6 +6,7 @@
<Nullable>enable</Nullable>
<ImplicitUsings>enable</ImplicitUsings>
<NoWarn>$(NoWarn);GHCP001</NoWarn>
</PropertyGroup>
<ItemGroup>
@@ -2,21 +2,22 @@
// This sample shows how to create a GitHub Copilot agent with shell command permissions.
using GitHub.Copilot.SDK;
using GitHub.Copilot;
using GitHub.Copilot.Rpc;
using Microsoft.Agents.AI;
// Permission handler that prompts the user for approval
static Task<PermissionRequestResult> PromptPermission(PermissionRequest request, PermissionInvocation invocation)
static Task<PermissionDecision> PromptPermission(PermissionRequest request, PermissionInvocation invocation)
{
Console.WriteLine($"\n[Permission Request: {request.Kind}]");
Console.Write("Approve? (y/n): ");
string? input = Console.ReadLine()?.Trim().ToUpperInvariant();
PermissionRequestResultKind kind = input is "Y" or "YES"
? PermissionRequestResultKind.Approved
: PermissionRequestResultKind.Rejected;
PermissionDecision decision = input is "Y" or "YES"
? PermissionDecision.ApproveOnce()
: PermissionDecision.Reject();
return Task.FromResult(new PermissionRequestResult { Kind = kind });
return Task.FromResult(decision);
}
// Create and start a Copilot client
@@ -36,7 +36,7 @@ dotnet run
You can customize the agent by providing additional configuration:
```csharp
using GitHub.Copilot.SDK;
using GitHub.Copilot;
using Microsoft.Agents.AI;
// Create and start a Copilot client
@@ -16,7 +16,6 @@ See the README.md for each sample for the prerequisites for that sample.
|---|---|
|[Creating an AIAgent with A2A](./Agent_With_A2A/)|This sample demonstrates how to create AIAgent for an existing A2A agent.|
|[Creating an AIAgent with Anthropic](./Agent_With_Anthropic/)|This sample demonstrates how to create an AIAgent using Anthropic Claude models as the underlying inference service|
|[Creating an AIAgent with Foundry Agents using Azure.AI.Agents.Persistent](./Agent_With_AzureAIAgentsPersistent/)|This sample demonstrates how to create a Foundry Persistent agent and expose it as an AIAgent using the Azure.AI.Agents.Persistent SDK|
|[Creating an AIAgent with Foundry Agents using Azure.AI.Project](./Agent_With_AzureAIProject/)|This sample demonstrates how to create an Foundry Project agent and expose it as an AIAgent using the Azure.AI.Project SDK|
|[Creating an AIAgent with Foundry Model](./Agent_With_AzureFoundryModel/)|This sample demonstrates how to use any model deployed to Microsoft Foundry to create an AIAgent|
|[Creating an AIAgent with Azure OpenAI ChatCompletion](./Agent_With_AzureOpenAIChatCompletion/)|This sample demonstrates how to create an AIAgent using Azure OpenAI ChatCompletion as the underlying inference service|
@@ -26,6 +26,9 @@ var skillsProvider = new AgentSkillsProvider(
SubprocessScriptRunner.RunAsync);
// --- Agent Setup ---
// WARNING: DefaultAzureCredential is convenient for development but requires careful consideration in production.
// In production, consider using a specific credential (e.g., ManagedIdentityCredential) to avoid
// latency issues, unintended credential probing, and potential security risks from fallback mechanisms.
AIAgent agent = new AzureOpenAIClient(new Uri(endpoint), new DefaultAzureCredential())
.GetResponsesClient()
.AsAIAgent(new ChatClientAgentOptions
@@ -67,6 +67,9 @@ var unitConverterSkill = new AgentInlineSkill(
var skillsProvider = new AgentSkillsProvider(unitConverterSkill);
// --- Agent Setup ---
// WARNING: DefaultAzureCredential is convenient for development but requires careful consideration in production.
// In production, consider using a specific credential (e.g., ManagedIdentityCredential) to avoid
// latency issues, unintended credential probing, and potential security risks from fallback mechanisms.
AIAgent agent = new AzureOpenAIClient(new Uri(endpoint), new DefaultAzureCredential())
.GetResponsesClient()
.AsAIAgent(new ChatClientAgentOptions
@@ -22,6 +22,9 @@ var unitConverter = new UnitConverterSkill();
var skillsProvider = new AgentSkillsProvider(unitConverter);
// --- Agent Setup ---
// WARNING: DefaultAzureCredential is convenient for development but requires careful consideration in production.
// In production, consider using a specific credential (e.g., ManagedIdentityCredential) to avoid
// latency issues, unintended credential probing, and potential security risks from fallback mechanisms.
AIAgent agent = new AzureOpenAIClient(new Uri(endpoint), new DefaultAzureCredential())
.GetResponsesClient()
.AsAIAgent(new ChatClientAgentOptions
@@ -64,6 +64,9 @@ var skillsProvider = new AgentSkillsProviderBuilder()
.Build();
// --- Agent Setup ---
// WARNING: DefaultAzureCredential is convenient for development but requires careful consideration in production.
// In production, consider using a specific credential (e.g., ManagedIdentityCredential) to avoid
// latency issues, unintended credential probing, and potential security risks from fallback mechanisms.
AIAgent agent = new AzureOpenAIClient(new Uri(endpoint), new DefaultAzureCredential())
.GetResponsesClient()
.AsAIAgent(new ChatClientAgentOptions
@@ -80,6 +80,9 @@ var weightSkill = new WeightConverterSkill();
var skillsProvider = new AgentSkillsProvider(distanceSkill, weightSkill);
// --- Agent Setup ---
// WARNING: DefaultAzureCredential is convenient for development but requires careful consideration in production.
// In production, consider using a specific credential (e.g., ManagedIdentityCredential) to avoid
// latency issues, unintended credential probing, and potential security risks from fallback mechanisms.
AIAgent agent = new AzureOpenAIClient(new Uri(endpoint), new DefaultAzureCredential())
.GetResponsesClient()
.AsAIAgent(
@@ -16,6 +16,9 @@ var guestPath = Environment.GetEnvironmentVariable("HYPERLIGHT_PYTHON_GUEST_PATH
using var codeAct = new HyperlightCodeActProvider(HyperlightCodeActProviderOptions.CreateForWasm(guestPath));
// WARNING: DefaultAzureCredential is convenient for development but requires careful consideration in production.
// In production, consider using a specific credential (e.g., ManagedIdentityCredential) to avoid
// latency issues, unintended credential probing, and potential security risks from fallback mechanisms.
AIAgent agent = new AzureOpenAIClient(
new Uri(endpoint),
new DefaultAzureCredential())
@@ -39,6 +39,9 @@ options.Tools = [fetchDocs, queryData, sendEmail];
using var codeAct = new HyperlightCodeActProvider(options);
// WARNING: DefaultAzureCredential is convenient for development but requires careful consideration in production.
// In production, consider using a specific credential (e.g., ManagedIdentityCredential) to avoid
// latency issues, unintended credential probing, and potential security risks from fallback mechanisms.
AIAgent agent = new AzureOpenAIClient(
new Uri(endpoint),
new DefaultAzureCredential())
@@ -31,6 +31,9 @@ var instructions =
+ "and calling `execute_code` instead of computing values yourself.\n\n"
+ executeCode.BuildInstructions(toolsVisibleToModel: false);
// WARNING: DefaultAzureCredential is convenient for development but requires careful consideration in production.
// In production, consider using a specific credential (e.g., ManagedIdentityCredential) to avoid
// latency issues, unintended credential probing, and potential security risks from fallback mechanisms.
AIAgent agent = new AzureOpenAIClient(
new Uri(endpoint),
new DefaultAzureCredential())
@@ -0,0 +1,22 @@
<Project Sdk="Microsoft.NET.Sdk">
<PropertyGroup>
<OutputType>Exe</OutputType>
<TargetFrameworks>net10.0</TargetFrameworks>
<Nullable>enable</Nullable>
<ImplicitUsings>enable</ImplicitUsings>
</PropertyGroup>
<ItemGroup>
<PackageReference Include="Azure.AI.OpenAI" />
<PackageReference Include="Azure.Identity" />
<PackageReference Include="Microsoft.Extensions.AI.OpenAI" />
</ItemGroup>
<ItemGroup>
<ProjectReference Include="..\..\..\..\src\Microsoft.Agents.AI.OpenAI\Microsoft.Agents.AI.OpenAI.csproj" />
<ProjectReference Include="..\..\..\..\src\Microsoft.Agents.AI.Valkey\Microsoft.Agents.AI.Valkey.csproj" />
</ItemGroup>
</Project>
@@ -0,0 +1,55 @@
// Copyright (c) Microsoft. All rights reserved.
// This sample demonstrates using Valkey for persistent chat history with the Agent Framework.
// ValkeyChatHistoryProvider persists conversation history across sessions using Valkey lists.
//
// Prerequisites:
// - A running Valkey server (any version):
// docker run -d --name valkey -p 6379:6379 valkey/valkey:latest
// - Azure OpenAI endpoint and deployment configured via environment variables
using Azure.AI.OpenAI;
using Azure.Identity;
using Microsoft.Agents.AI;
using Microsoft.Agents.AI.Valkey;
using Microsoft.Extensions.AI;
using OpenAI.Chat;
using Valkey.Glide;
var endpoint = Environment.GetEnvironmentVariable("AZURE_OPENAI_ENDPOINT") ?? throw new InvalidOperationException("AZURE_OPENAI_ENDPOINT is not set.");
var deploymentName = Environment.GetEnvironmentVariable("AZURE_OPENAI_DEPLOYMENT_NAME") ?? "gpt-5.4-mini";
var valkeyConnection = Environment.GetEnvironmentVariable("VALKEY_CONNECTION") ?? "localhost:6379";
var connection = await ConnectionMultiplexer.ConnectAsync(valkeyConnection);
Console.WriteLine("=== ValkeyChatHistoryProvider — Persistent Chat History ===\n");
var historyProvider = new ValkeyChatHistoryProvider(
connection,
_ => new ValkeyChatHistoryProvider.State($"sample-{Guid.NewGuid():N}"),
new ValkeyChatHistoryProviderOptions
{
KeyPrefix = "sample_chat",
MaxMessages = 20
});
AIAgent historyAgent = new AzureOpenAIClient(new Uri(endpoint), new DefaultAzureCredential())
.GetChatClient(deploymentName)
.AsAIAgent(new ChatClientAgentOptions()
{
ChatOptions = new() { Instructions = "You are a helpful assistant that remembers our conversation." },
ChatHistoryProvider = historyProvider
});
AgentSession session1 = await historyAgent.CreateSessionAsync();
Console.WriteLine(await historyAgent.RunAsync("Hello! My name is Alex and I'm a software engineer.", session1));
Console.WriteLine(await historyAgent.RunAsync("I'm working on a project using Valkey for caching.", session1));
Console.WriteLine(await historyAgent.RunAsync("What do you remember about me?", session1));
var messageCount = await historyProvider.GetMessageCountAsync(session1);
Console.WriteLine($"\n Stored {messageCount} messages in Valkey.\n");
// Clean up
connection.Dispose();
Console.WriteLine("Done!");
@@ -0,0 +1,30 @@
# Agent with Memory Using Valkey
This sample demonstrates using Valkey for persistent chat history with the Agent Framework.
## Components
- **ValkeyChatHistoryProvider** — Persists conversation history across sessions using Valkey lists. Works with any Valkey or Redis OSS server (no search module required).
## Prerequisites
- Azure OpenAI endpoint and deployment
- A running Valkey server (any version):
```bash
docker run -d --name valkey -p 6379:6379 valkey/valkey:latest
```
## Environment Variables
| Variable | Description | Default |
|---|---|---|
| `AZURE_OPENAI_ENDPOINT` | Azure OpenAI endpoint URL | (required) |
| `AZURE_OPENAI_DEPLOYMENT_NAME` | Model deployment name | `gpt-5.4-mini` |
| `VALKEY_CONNECTION` | Valkey connection string | `localhost:6379` |
## Running
```bash
dotnet run
```
@@ -0,0 +1,20 @@
<Project Sdk="Microsoft.NET.Sdk">
<PropertyGroup>
<OutputType>Exe</OutputType>
<TargetFrameworks>net10.0</TargetFrameworks>
<Nullable>enable</Nullable>
<ImplicitUsings>enable</ImplicitUsings>
</PropertyGroup>
<ItemGroup>
<PackageReference Include="AWSSDK.Extensions.Bedrock.MEAI" />
</ItemGroup>
<ItemGroup>
<ProjectReference Include="..\..\..\..\src\Microsoft.Agents.AI\Microsoft.Agents.AI.csproj" />
<ProjectReference Include="..\..\..\..\src\Microsoft.Agents.AI.Valkey\Microsoft.Agents.AI.Valkey.csproj" />
</ItemGroup>
</Project>
@@ -0,0 +1,57 @@
// Copyright (c) Microsoft. All rights reserved.
// This sample demonstrates using Valkey for persistent chat history with the Agent Framework,
// powered by Amazon Bedrock.
//
// Prerequisites:
// - A running Valkey server (any version):
// docker run -d --name valkey -p 6379:6379 valkey/valkey:latest
// - AWS credentials configured (environment variables, AWS profile, or IAM role)
// - Access to an Amazon Bedrock model (e.g., Anthropic Claude)
using Amazon;
using Amazon.BedrockRuntime;
using Microsoft.Agents.AI;
using Microsoft.Agents.AI.Valkey;
using Microsoft.Extensions.AI;
using Valkey.Glide;
var awsRegion = Environment.GetEnvironmentVariable("AWS_REGION") ?? "us-east-1";
var modelId = Environment.GetEnvironmentVariable("BEDROCK_MODEL_ID") ?? "anthropic.claude-3-5-sonnet-20241022-v2:0";
var valkeyConnection = Environment.GetEnvironmentVariable("VALKEY_CONNECTION") ?? "localhost:6379";
// Create the Bedrock runtime client.
var bedrockRuntime = new AmazonBedrockRuntimeClient(RegionEndpoint.GetBySystemName(awsRegion));
IChatClient chatClient = bedrockRuntime.AsIChatClient(modelId);
var connection = await ConnectionMultiplexer.ConnectAsync(valkeyConnection);
Console.WriteLine("=== ValkeyChatHistoryProvider — Persistent Chat History (Bedrock) ===\n");
var historyProvider = new ValkeyChatHistoryProvider(
connection,
_ => new ValkeyChatHistoryProvider.State($"bedrock-sample-{Guid.NewGuid():N}"),
new ValkeyChatHistoryProviderOptions
{
KeyPrefix = "bedrock_chat",
MaxMessages = 20
});
AIAgent historyAgent = chatClient.AsAIAgent(new ChatClientAgentOptions()
{
ChatOptions = new() { Instructions = "You are a helpful assistant that remembers our conversation." },
ChatHistoryProvider = historyProvider
});
AgentSession session1 = await historyAgent.CreateSessionAsync();
Console.WriteLine(await historyAgent.RunAsync("Hello! My name is Alex and I'm a software engineer.", session1));
Console.WriteLine(await historyAgent.RunAsync("I'm working on a project using Valkey for caching.", session1));
Console.WriteLine(await historyAgent.RunAsync("What do you remember about me?", session1));
var messageCount = await historyProvider.GetMessageCountAsync(session1);
Console.WriteLine($"\n Stored {messageCount} messages in Valkey.\n");
// Clean up
connection.Dispose();
Console.WriteLine("Done!");
@@ -0,0 +1,41 @@
# Agent with Memory Using Valkey + Amazon Bedrock
This sample demonstrates using Valkey for persistent chat history with the Agent Framework, powered by Amazon Bedrock via the `AWSSDK.Extensions.Bedrock.MEAI` adapter.
## Components
- **ValkeyChatHistoryProvider** — Persists conversation history across sessions using Valkey lists. Works with any Valkey or Redis OSS server (no search module required).
- **Amazon Bedrock** — Provides the LLM via `AWSSDK.Extensions.Bedrock.MEAI`, which implements `IChatClient` from `Microsoft.Extensions.AI`.
## Prerequisites
- AWS credentials configured (environment variables, AWS CLI profile, or IAM role)
- Access to an Amazon Bedrock model (e.g., Anthropic Claude 3.5 Sonnet)
- A running Valkey server (any version):
```bash
docker run -d --name valkey -p 6379:6379 valkey/valkey:latest
```
## Environment Variables
| Variable | Description | Default |
|---|---|---|
| `AWS_REGION` | AWS region for Bedrock | `us-east-1` |
| `BEDROCK_MODEL_ID` | Bedrock model identifier | `anthropic.claude-3-5-sonnet-20241022-v2:0` |
| `VALKEY_CONNECTION` | Valkey connection string | `localhost:6379` |
| `AWS_ACCESS_KEY_ID` | AWS access key (if not using profile/role) | — |
| `AWS_SECRET_ACCESS_KEY` | AWS secret key (if not using profile/role) | — |
## Running
```bash
# Using default AWS credential chain (profile, env vars, or IAM role)
dotnet run
# Or with explicit credentials
export AWS_ACCESS_KEY_ID="your-access-key"
export AWS_SECRET_ACCESS_KEY="your-secret-key"
export AWS_REGION="us-east-1"
dotnet run
```
@@ -13,9 +13,9 @@ using Azure.Identity;
using Microsoft.Agents.AI;
using Microsoft.Agents.AI.Foundry;
string foundryEndpoint = Environment.GetEnvironmentVariable("AZURE_AI_PROJECT_ENDPOINT") ?? throw new InvalidOperationException("AZURE_AI_PROJECT_ENDPOINT is not set.");
string foundryEndpoint = Environment.GetEnvironmentVariable("FOUNDRY_PROJECT_ENDPOINT") ?? throw new InvalidOperationException("FOUNDRY_PROJECT_ENDPOINT is not set.");
string memoryStoreName = Environment.GetEnvironmentVariable("AZURE_AI_MEMORY_STORE_ID") ?? "memory-store-sample";
string deploymentName = Environment.GetEnvironmentVariable("AZURE_AI_MODEL_DEPLOYMENT_NAME") ?? "gpt-5.4-mini";
string deploymentName = Environment.GetEnvironmentVariable("FOUNDRY_MODEL") ?? "gpt-5.4-mini";
string embeddingModelName = Environment.GetEnvironmentVariable("AZURE_AI_EMBEDDING_DEPLOYMENT_NAME") ?? "text-embedding-ada-002";
// Create an AIProjectClient for Foundry with Azure Identity authentication.
@@ -1,4 +1,4 @@
# Agent with Memory Using Microsoft Foundry
# Agent with Memory Using Microsoft Foundry
This sample demonstrates how to create and run an agent that uses Microsoft Foundry's managed memory service to extract and retrieve individual memories across sessions.
@@ -22,11 +22,11 @@ This sample demonstrates how to create and run an agent that uses Microsoft Foun
```bash
# Microsoft Foundry project endpoint and memory store name
export AZURE_AI_PROJECT_ENDPOINT="https://your-account.services.ai.azure.com/api/projects/your-project"
export FOUNDRY_PROJECT_ENDPOINT="https://your-account.services.ai.azure.com/api/projects/your-project"
export AZURE_AI_MEMORY_STORE_ID="my_memory_store"
# Model deployment names (models deployed in your Foundry project)
export AZURE_AI_MODEL_DEPLOYMENT_NAME="gpt-5.4-mini"
export FOUNDRY_MODEL="gpt-5.4-mini"
export AZURE_AI_EMBEDDING_DEPLOYMENT_NAME="text-embedding-ada-002"
```
@@ -13,8 +13,8 @@ using OpenAI.Files;
using OpenAI.Responses;
using OpenAI.VectorStores;
var endpoint = Environment.GetEnvironmentVariable("AZURE_AI_PROJECT_ENDPOINT") ?? throw new InvalidOperationException("AZURE_AI_PROJECT_ENDPOINT is not set.");
var deploymentName = Environment.GetEnvironmentVariable("AZURE_AI_MODEL_DEPLOYMENT_NAME") ?? "gpt-5.4-mini";
var endpoint = Environment.GetEnvironmentVariable("FOUNDRY_PROJECT_ENDPOINT") ?? throw new InvalidOperationException("FOUNDRY_PROJECT_ENDPOINT is not set.");
var deploymentName = Environment.GetEnvironmentVariable("FOUNDRY_MODEL") ?? "gpt-5.4-mini";
// Create an AI Project client and get an OpenAI client that works with the foundry service.
// WARNING: DefaultAzureCredential is convenient for development but requires careful consideration in production.
@@ -23,7 +23,7 @@
<PackageReference Include="Azure.AI.OpenAI" Version="2.9.0-beta.1" />
<PackageReference Include="Azure.Identity" Version="1.19.0" />
<PackageReference Include="Microsoft.Agents.AI.OpenAI" Version="1.0.0-rc4" />
<PackageReference Include="Microsoft.Extensions.AI.OpenAI" Version="10.4.0" />
<PackageReference Include="Microsoft.Extensions.AI.OpenAI" Version="10.6.0" />
<PackageReference Include="Neo4j.AgentFramework.GraphRAG" Version="0.1.0-preview.2" />
<PackageReference Include="Neo4j.Driver" Version="5.28.0" />
</ItemGroup>
@@ -10,8 +10,8 @@ using Microsoft.Extensions.DependencyInjection;
using Microsoft.Extensions.Hosting;
using ModelContextProtocol.Server;
var endpoint = Environment.GetEnvironmentVariable("AZURE_AI_PROJECT_ENDPOINT") ?? throw new InvalidOperationException("AZURE_AI_PROJECT_ENDPOINT is not set.");
var deploymentName = Environment.GetEnvironmentVariable("AZURE_AI_MODEL_DEPLOYMENT_NAME") ?? "gpt-5.4-mini";
var endpoint = Environment.GetEnvironmentVariable("FOUNDRY_PROJECT_ENDPOINT") ?? throw new InvalidOperationException("FOUNDRY_PROJECT_ENDPOINT is not set.");
var deploymentName = Environment.GetEnvironmentVariable("FOUNDRY_MODEL") ?? "gpt-5.4-mini";
// WARNING: DefaultAzureCredential is convenient for development but requires careful consideration in production.
// In production, consider using a specific credential (e.g., ManagedIdentityCredential) to avoid
@@ -1,4 +1,4 @@
This sample demonstrates how to expose an existing AI agent as an MCP tool.
This sample demonstrates how to expose an existing AI agent as an MCP tool.
## Run the sample
@@ -21,9 +21,9 @@ To use the [MCP Inspector](https://modelcontextprotocol.io/docs/tools/inspector)
```
1. Open a web browser and navigate to the URL displayed in the terminal. If not opened automatically, this will open the MCP Inspector interface.
1. In the MCP Inspector interface, add the following environment variables to allow your MCP server to access Microsoft Foundry Project to create and run the agent:
- AZURE_AI_PROJECT_ENDPOINT = https://your-resource.openai.azure.com/ # Replace with your Microsoft Foundry Project endpoint
- AZURE_AI_MODEL_DEPLOYMENT_NAME = gpt-5.4-mini # Replace with your model deployment name
- FOUNDRY_PROJECT_ENDPOINT = https://your-resource.openai.azure.com/ # Replace with your Microsoft Foundry Project endpoint
- FOUNDRY_MODEL = gpt-5.4-mini # Replace with your model deployment name
1. Find and click the `Connect` button in the MCP Inspector interface to connect to the MCP server.
1. As soon as the connection is established, open the `Tools` tab in the MCP Inspector interface and select the `Joker` tool from the list.
1. Specify your prompt as a value for the `query` argument, for example: `Tell me a joke about a pirate` and click the `Run Tool` button to run the tool.
1. The agent will process the request and return a response in accordance with the provided instructions that instruct it to always start each joke with 'Aye aye, captain!'.
1. The agent will process the request and return a response in accordance with the provided instructions that instruct it to always start each joke with 'Aye aye, captain!'.
@@ -8,9 +8,9 @@ using Azure.AI.Agents.Persistent;
using Azure.Identity;
using Microsoft.Agents.AI;
var endpoint = Environment.GetEnvironmentVariable("AZURE_AI_PROJECT_ENDPOINT") ?? throw new InvalidOperationException("AZURE_AI_PROJECT_ENDPOINT is not set.");
var endpoint = Environment.GetEnvironmentVariable("FOUNDRY_PROJECT_ENDPOINT") ?? throw new InvalidOperationException("FOUNDRY_PROJECT_ENDPOINT is not set.");
var deepResearchDeploymentName = Environment.GetEnvironmentVariable("AZURE_AI_REASONING_DEPLOYMENT_NAME") ?? "o3-deep-research";
var modelDeploymentName = Environment.GetEnvironmentVariable("AZURE_AI_MODEL_DEPLOYMENT_NAME") ?? "gpt-5.4-mini";
var modelDeploymentName = Environment.GetEnvironmentVariable("FOUNDRY_MODEL") ?? "gpt-5.4-mini";
var bingConnectionId = Environment.GetEnvironmentVariable("AZURE_AI_BING_CONNECTION_ID") ?? throw new InvalidOperationException("AZURE_AI_BING_CONNECTION_ID is not set.");
// Configure extended network timeout for long-running Deep Research tasks.
@@ -1,4 +1,4 @@
# What this sample demonstrates
# What this sample demonstrates
This sample demonstrates how to create an Azure AI Agent with the Deep Research Tool, which leverages the o3-deep-research reasoning model to perform comprehensive research on complex topics.
@@ -37,7 +37,7 @@ Set the following environment variables:
```powershell
# Replace with your Microsoft Foundry project endpoint
$env:AZURE_AI_PROJECT_ENDPOINT="https://your-project.services.ai.azure.com/"
$env:FOUNDRY_PROJECT_ENDPOINT="https://your-project.services.ai.azure.com/"
# Replace with your Bing Grounding connection ID (full ARM resource URI)
$env:AZURE_AI_BING_CONNECTION_ID="/subscriptions/<sub-id>/resourceGroups/<rg>/providers/Microsoft.CognitiveServices/accounts/<account>/projects/<project>/connections/<connection-name>"
@@ -46,4 +46,4 @@ $env:AZURE_AI_BING_CONNECTION_ID="/subscriptions/<sub-id>/resourceGroups/<rg>/pr
$env:AZURE_AI_REASONING_DEPLOYMENT_NAME="o3-deep-research"
# Optional, defaults to gpt-5.4-mini
$env:AZURE_AI_MODEL_DEPLOYMENT_NAME="gpt-5.4-mini"
$env:FOUNDRY_MODEL="gpt-5.4-mini"
@@ -40,6 +40,9 @@ using OpenAI.Chat;
var endpoint = Environment.GetEnvironmentVariable("AZURE_OPENAI_ENDPOINT") ?? throw new InvalidOperationException("AZURE_OPENAI_ENDPOINT is not set.");
var deploymentName = Environment.GetEnvironmentVariable("AZURE_OPENAI_DEPLOYMENT_NAME") ?? "gpt-5.4-mini";
// WARNING: DefaultAzureCredential is convenient for development but requires careful consideration in production.
// In production, consider using a specific credential (e.g., ManagedIdentityCredential) to avoid
// latency issues, unintended credential probing, and potential security risks from fallback mechanisms.
var chatClient = new AzureOpenAIClient(new Uri(endpoint), new DefaultAzureCredential())
.GetChatClient(deploymentName);
@@ -9,13 +9,16 @@ using Azure.AI.Projects.Agents;
using Azure.Identity;
using Microsoft.Agents.AI.Foundry;
string endpoint = Environment.GetEnvironmentVariable("AZURE_AI_PROJECT_ENDPOINT") ?? throw new InvalidOperationException("AZURE_AI_PROJECT_ENDPOINT is not set.");
string deploymentName = Environment.GetEnvironmentVariable("AZURE_AI_MODEL_DEPLOYMENT_NAME") ?? "gpt-5.4-mini";
string endpoint = Environment.GetEnvironmentVariable("FOUNDRY_PROJECT_ENDPOINT") ?? throw new InvalidOperationException("FOUNDRY_PROJECT_ENDPOINT is not set.");
string deploymentName = Environment.GetEnvironmentVariable("FOUNDRY_MODEL") ?? "gpt-5.4-mini";
const string JokerName = "JokerAgent";
// Create the AIProjectClient to manage server-side agents.
AIProjectClient aiProjectClient = new(new Uri(endpoint), new AzureCliCredential());
// WARNING: DefaultAzureCredential is convenient for development but requires careful consideration in production.
// In production, consider using a specific credential (e.g., ManagedIdentityCredential) to avoid
// latency issues, unintended credential probing, and potential security risks from fallback mechanisms.
AIProjectClient aiProjectClient = new(new Uri(endpoint), new DefaultAzureCredential());
// Create a server-side agent version using the native SDK.
ProjectsAgentVersion agentVersion = await aiProjectClient.AgentAdministrationClient.CreateAgentVersionAsync(
@@ -1,4 +1,4 @@
# Agent Step 00 - FoundryAgent Lifecycle
# Agent Step 00 - FoundryAgent Lifecycle
This sample demonstrates the full lifecycle of a `FoundryAgent` backed by a server-side versioned agent in Microsoft Foundry: create → run → delete.
@@ -6,14 +6,14 @@ This sample demonstrates the full lifecycle of a `FoundryAgent` backed by a serv
- A Microsoft Foundry project endpoint
- A model deployment name (defaults to `gpt-5.4-mini`)
- Azure CLI installed and authenticated
- An authenticated Azure identity (for example, sign in with `az login`)
## Environment Variables
| Variable | Description | Required |
| --- | --- | --- |
| `AZURE_AI_PROJECT_ENDPOINT` | Microsoft Foundry project endpoint | Yes |
| `AZURE_AI_MODEL_DEPLOYMENT_NAME` | Model deployment name | No (defaults to `gpt-5.4-mini`) |
| `FOUNDRY_PROJECT_ENDPOINT` | Microsoft Foundry project endpoint | Yes |
| `FOUNDRY_MODEL` | Model deployment name | No (defaults to `gpt-5.4-mini`) |
## Running the sample
@@ -6,8 +6,8 @@ using Azure.AI.Projects;
using Azure.Identity;
using Microsoft.Agents.AI;
string endpoint = Environment.GetEnvironmentVariable("AZURE_AI_PROJECT_ENDPOINT") ?? throw new InvalidOperationException("AZURE_AI_PROJECT_ENDPOINT is not set.");
string deploymentName = Environment.GetEnvironmentVariable("AZURE_AI_MODEL_DEPLOYMENT_NAME") ?? "gpt-5.4-mini";
string endpoint = Environment.GetEnvironmentVariable("FOUNDRY_PROJECT_ENDPOINT") ?? throw new InvalidOperationException("FOUNDRY_PROJECT_ENDPOINT is not set.");
string deploymentName = Environment.GetEnvironmentVariable("FOUNDRY_MODEL") ?? "gpt-5.4-mini";
// WARNING: DefaultAzureCredential is convenient for development but requires careful consideration in production.
// In production, consider using a specific credential (e.g., ManagedIdentityCredential) to avoid
@@ -14,15 +14,15 @@ Before you begin, ensure you have the following prerequisites:
- .NET 10 SDK or later
- Microsoft Foundry service endpoint and deployment configured
- Azure CLI installed and authenticated (for Azure credential authentication)
- An authenticated Azure identity (for example, sign in with `az login`)
**Note**: This demo uses Azure CLI credentials for authentication. Make sure you're logged in with `az login` and have access to the Microsoft Foundry resource. For more information, see the [Azure CLI documentation](https://learn.microsoft.com/cli/azure/authenticate-azure-cli-interactively).
**Note**: This sample uses `DefaultAzureCredential`. `az login` is the easiest local development path, but Visual Studio, VS Code, and managed identity credentials also work when available.
Set the following environment variables:
```powershell
$env:AZURE_AI_PROJECT_ENDPOINT="https://your-foundry-service.services.ai.azure.com/api/projects/your-foundry-project"
$env:AZURE_AI_MODEL_DEPLOYMENT_NAME="gpt-5.4-mini"
$env:FOUNDRY_PROJECT_ENDPOINT="https://your-foundry-service.services.ai.azure.com/api/projects/your-foundry-project"
$env:FOUNDRY_MODEL="gpt-5.4-mini"
```
## Run the sample
@@ -7,8 +7,8 @@ using Azure.AI.Projects;
using Azure.Identity;
using Microsoft.Agents.AI;
string endpoint = Environment.GetEnvironmentVariable("AZURE_AI_PROJECT_ENDPOINT") ?? throw new InvalidOperationException("AZURE_AI_PROJECT_ENDPOINT is not set.");
string deploymentName = Environment.GetEnvironmentVariable("AZURE_AI_MODEL_DEPLOYMENT_NAME") ?? "gpt-5.4-mini";
string endpoint = Environment.GetEnvironmentVariable("FOUNDRY_PROJECT_ENDPOINT") ?? throw new InvalidOperationException("FOUNDRY_PROJECT_ENDPOINT is not set.");
string deploymentName = Environment.GetEnvironmentVariable("FOUNDRY_MODEL") ?? "gpt-5.4-mini";
// WARNING: DefaultAzureCredential is convenient for development but requires careful consideration in production.
// In production, consider using a specific credential (e.g., ManagedIdentityCredential) to avoid
@@ -15,15 +15,15 @@ Before you begin, ensure you have the following prerequisites:
- .NET 10 SDK or later
- Microsoft Foundry service endpoint and deployment configured
- Azure CLI installed and authenticated (for Azure credential authentication)
- An authenticated Azure identity (for example, sign in with `az login`)
**Note**: This demo uses Azure CLI credentials for authentication. Make sure you're logged in with `az login` and have access to the Microsoft Foundry resource. For more information, see the [Azure CLI documentation](https://learn.microsoft.com/cli/azure/authenticate-azure-cli-interactively).
**Note**: This sample uses `DefaultAzureCredential`. `az login` is the easiest local development path, but Visual Studio, VS Code, and managed identity credentials also work when available.
Set the following environment variables:
```powershell
$env:AZURE_AI_PROJECT_ENDPOINT="https://your-foundry-service.services.ai.azure.com/api/projects/your-foundry-project"
$env:AZURE_AI_MODEL_DEPLOYMENT_NAME="gpt-5.4-mini"
$env:FOUNDRY_PROJECT_ENDPOINT="https://your-foundry-service.services.ai.azure.com/api/projects/your-foundry-project"
$env:FOUNDRY_MODEL="gpt-5.4-mini"
```
## Run the sample
@@ -9,8 +9,8 @@ using Azure.AI.Projects;
using Azure.Identity;
using Microsoft.Agents.AI;
string endpoint = Environment.GetEnvironmentVariable("AZURE_AI_PROJECT_ENDPOINT") ?? throw new InvalidOperationException("AZURE_AI_PROJECT_ENDPOINT is not set.");
string deploymentName = Environment.GetEnvironmentVariable("AZURE_AI_MODEL_DEPLOYMENT_NAME") ?? "gpt-5.4-mini";
string endpoint = Environment.GetEnvironmentVariable("FOUNDRY_PROJECT_ENDPOINT") ?? throw new InvalidOperationException("FOUNDRY_PROJECT_ENDPOINT is not set.");
string deploymentName = Environment.GetEnvironmentVariable("FOUNDRY_MODEL") ?? "gpt-5.4-mini";
// WARNING: DefaultAzureCredential is convenient for development but requires careful consideration in production.
// In production, consider using a specific credential (e.g., ManagedIdentityCredential) to avoid
@@ -15,15 +15,15 @@ Before you begin, ensure you have the following prerequisites:
- .NET 10 SDK or later
- Microsoft Foundry service endpoint and deployment configured
- Azure CLI installed and authenticated (for Azure credential authentication)
- An authenticated Azure identity (for example, sign in with `az login`)
**Note**: This demo uses Azure CLI credentials for authentication. Make sure you're logged in with `az login` and have access to the Microsoft Foundry resource. For more information, see the [Azure CLI documentation](https://learn.microsoft.com/cli/azure/authenticate-azure-cli-interactively).
**Note**: This sample uses `DefaultAzureCredential`. `az login` is the easiest local development path, but Visual Studio, VS Code, and managed identity credentials also work when available.
Set the following environment variables:
```powershell
$env:AZURE_AI_PROJECT_ENDPOINT="https://your-foundry-service.services.ai.azure.com/api/projects/your-foundry-project"
$env:AZURE_AI_MODEL_DEPLOYMENT_NAME="gpt-5.4-mini"
$env:FOUNDRY_PROJECT_ENDPOINT="https://your-foundry-service.services.ai.azure.com/api/projects/your-foundry-project"
$env:FOUNDRY_MODEL="gpt-5.4-mini"
```
## Run the sample
@@ -15,8 +15,8 @@ static string GetWeather([Description("The location to get the weather for.")] s
// Define the function tool.
AITool tool = AIFunctionFactory.Create(GetWeather);
string endpoint = Environment.GetEnvironmentVariable("AZURE_AI_PROJECT_ENDPOINT") ?? throw new InvalidOperationException("AZURE_AI_PROJECT_ENDPOINT is not set.");
string deploymentName = Environment.GetEnvironmentVariable("AZURE_AI_MODEL_DEPLOYMENT_NAME") ?? "gpt-5.4-mini";
string endpoint = Environment.GetEnvironmentVariable("FOUNDRY_PROJECT_ENDPOINT") ?? throw new InvalidOperationException("FOUNDRY_PROJECT_ENDPOINT is not set.");
string deploymentName = Environment.GetEnvironmentVariable("FOUNDRY_MODEL") ?? "gpt-5.4-mini";
// WARNING: DefaultAzureCredential is convenient for development but requires careful consideration in production.
// In production, consider using a specific credential (e.g., ManagedIdentityCredential) to avoid
@@ -16,15 +16,15 @@ Before you begin, ensure you have the following prerequisites:
- .NET 10 SDK or later
- Microsoft Foundry service endpoint and deployment configured
- Azure CLI installed and authenticated (for Azure credential authentication)
- An authenticated Azure identity (for example, sign in with `az login`)
**Note**: This demo uses Azure CLI credentials for authentication. Make sure you're logged in with `az login` and have access to the Microsoft Foundry resource. For more information, see the [Azure CLI documentation](https://learn.microsoft.com/cli/azure/authenticate-azure-cli-interactively).
**Note**: This sample uses `DefaultAzureCredential`. `az login` is the easiest local development path, but Visual Studio, VS Code, and managed identity credentials also work when available.
Set the following environment variables:
```powershell
$env:AZURE_AI_PROJECT_ENDPOINT="https://your-foundry-service.services.ai.azure.com/api/projects/your-foundry-project"
$env:AZURE_AI_MODEL_DEPLOYMENT_NAME="gpt-5.4-mini"
$env:FOUNDRY_PROJECT_ENDPOINT="https://your-foundry-service.services.ai.azure.com/api/projects/your-foundry-project"
$env:FOUNDRY_MODEL="gpt-5.4-mini"
```
## Run the sample
@@ -12,8 +12,8 @@ using Microsoft.Extensions.AI;
static string GetWeather([Description("The location to get the weather for.")] string location)
=> $"The weather in {location} is cloudy with a high of 15°C.";
string endpoint = Environment.GetEnvironmentVariable("AZURE_AI_PROJECT_ENDPOINT") ?? throw new InvalidOperationException("AZURE_AI_PROJECT_ENDPOINT is not set.");
string deploymentName = Environment.GetEnvironmentVariable("AZURE_AI_MODEL_DEPLOYMENT_NAME") ?? "gpt-5.4-mini";
string endpoint = Environment.GetEnvironmentVariable("FOUNDRY_PROJECT_ENDPOINT") ?? throw new InvalidOperationException("FOUNDRY_PROJECT_ENDPOINT is not set.");
string deploymentName = Environment.GetEnvironmentVariable("FOUNDRY_MODEL") ?? "gpt-5.4-mini";
// WARNING: DefaultAzureCredential is convenient for development but requires careful consideration in production.
// In production, consider using a specific credential (e.g., ManagedIdentityCredential) to avoid
@@ -13,13 +13,13 @@ This sample demonstrates how to use function tools that require human-in-the-loo
- .NET 10 SDK or later
- Microsoft Foundry service endpoint and deployment configured
- Azure CLI installed and authenticated (`az login`)
- An authenticated Azure identity (for example, sign in with `az login`)
Set the following environment variables:
```powershell
$env:AZURE_AI_PROJECT_ENDPOINT="https://your-foundry-service.services.ai.azure.com/api/projects/your-foundry-project"
$env:AZURE_AI_MODEL_DEPLOYMENT_NAME="gpt-5.4-mini"
$env:FOUNDRY_PROJECT_ENDPOINT="https://your-foundry-service.services.ai.azure.com/api/projects/your-foundry-project"
$env:FOUNDRY_MODEL="gpt-5.4-mini"
```
## Run the sample
@@ -12,8 +12,8 @@ using SampleApp;
#pragma warning disable CA5399
string endpoint = Environment.GetEnvironmentVariable("AZURE_AI_PROJECT_ENDPOINT") ?? throw new InvalidOperationException("AZURE_AI_PROJECT_ENDPOINT is not set.");
string deploymentName = Environment.GetEnvironmentVariable("AZURE_AI_MODEL_DEPLOYMENT_NAME") ?? "gpt-5.4-mini";
string endpoint = Environment.GetEnvironmentVariable("FOUNDRY_PROJECT_ENDPOINT") ?? throw new InvalidOperationException("FOUNDRY_PROJECT_ENDPOINT is not set.");
string deploymentName = Environment.GetEnvironmentVariable("FOUNDRY_MODEL") ?? "gpt-5.4-mini";
// WARNING: DefaultAzureCredential is convenient for development but requires careful consideration in production.
// In production, consider using a specific credential (e.g., ManagedIdentityCredential) to avoid
@@ -12,13 +12,13 @@ This sample demonstrates how to configure an agent to produce structured output
- .NET 10 SDK or later
- Microsoft Foundry service endpoint and deployment configured
- Azure CLI installed and authenticated (`az login`)
- An authenticated Azure identity (for example, sign in with `az login`)
Set the following environment variables:
```powershell
$env:AZURE_AI_PROJECT_ENDPOINT="https://your-foundry-service.services.ai.azure.com/api/projects/your-foundry-project"
$env:AZURE_AI_MODEL_DEPLOYMENT_NAME="gpt-5.4-mini"
$env:FOUNDRY_PROJECT_ENDPOINT="https://your-foundry-service.services.ai.azure.com/api/projects/your-foundry-project"
$env:FOUNDRY_MODEL="gpt-5.4-mini"
```
## Run the sample
@@ -7,8 +7,8 @@ using Azure.AI.Projects;
using Azure.Identity;
using Microsoft.Agents.AI;
string endpoint = Environment.GetEnvironmentVariable("AZURE_AI_PROJECT_ENDPOINT") ?? throw new InvalidOperationException("AZURE_AI_PROJECT_ENDPOINT is not set.");
string deploymentName = Environment.GetEnvironmentVariable("AZURE_AI_MODEL_DEPLOYMENT_NAME") ?? "gpt-5.4-mini";
string endpoint = Environment.GetEnvironmentVariable("FOUNDRY_PROJECT_ENDPOINT") ?? throw new InvalidOperationException("FOUNDRY_PROJECT_ENDPOINT is not set.");
string deploymentName = Environment.GetEnvironmentVariable("FOUNDRY_MODEL") ?? "gpt-5.4-mini";
// WARNING: DefaultAzureCredential is convenient for development but requires careful consideration in production.
// In production, consider using a specific credential (e.g., ManagedIdentityCredential) to avoid
@@ -13,13 +13,13 @@ This sample demonstrates how to persist and resume agent conversations using ses
- .NET 10 SDK or later
- Microsoft Foundry service endpoint and deployment configured
- Azure CLI installed and authenticated (`az login`)
- An authenticated Azure identity (for example, sign in with `az login`)
Set the following environment variables:
```powershell
$env:AZURE_AI_PROJECT_ENDPOINT="https://your-foundry-service.services.ai.azure.com/api/projects/your-foundry-project"
$env:AZURE_AI_MODEL_DEPLOYMENT_NAME="gpt-5.4-mini"
$env:FOUNDRY_PROJECT_ENDPOINT="https://your-foundry-service.services.ai.azure.com/api/projects/your-foundry-project"
$env:FOUNDRY_MODEL="gpt-5.4-mini"
```
## Run the sample
@@ -10,8 +10,8 @@ using OpenTelemetry;
using OpenTelemetry.Trace;
string? applicationInsightsConnectionString = Environment.GetEnvironmentVariable("APPLICATIONINSIGHTS_CONNECTION_STRING");
string endpoint = Environment.GetEnvironmentVariable("AZURE_AI_PROJECT_ENDPOINT") ?? throw new InvalidOperationException("AZURE_AI_PROJECT_ENDPOINT is not set.");
string deploymentName = Environment.GetEnvironmentVariable("AZURE_AI_MODEL_DEPLOYMENT_NAME") ?? "gpt-5.4-mini";
string endpoint = Environment.GetEnvironmentVariable("FOUNDRY_PROJECT_ENDPOINT") ?? throw new InvalidOperationException("FOUNDRY_PROJECT_ENDPOINT is not set.");
string deploymentName = Environment.GetEnvironmentVariable("FOUNDRY_MODEL") ?? "gpt-5.4-mini";
// Create TracerProvider with console exporter.
string sourceName = Guid.NewGuid().ToString("N");
@@ -13,13 +13,13 @@ This sample demonstrates how to add OpenTelemetry observability to an agent usin
- .NET 10 SDK or later
- Microsoft Foundry service endpoint and deployment configured
- Azure CLI installed and authenticated (`az login`)
- An authenticated Azure identity (for example, sign in with `az login`)
Set the following environment variables:
```powershell
$env:AZURE_AI_PROJECT_ENDPOINT="https://your-foundry-service.services.ai.azure.com/api/projects/your-foundry-project"
$env:AZURE_AI_MODEL_DEPLOYMENT_NAME="gpt-5.4-mini"
$env:FOUNDRY_PROJECT_ENDPOINT="https://your-foundry-service.services.ai.azure.com/api/projects/your-foundry-project"
$env:FOUNDRY_MODEL="gpt-5.4-mini"
$env:APPLICATIONINSIGHTS_CONNECTION_STRING="..." # Optional
```
@@ -9,8 +9,8 @@ using Microsoft.Extensions.DependencyInjection;
using Microsoft.Extensions.Hosting;
using SampleApp;
string endpoint = Environment.GetEnvironmentVariable("AZURE_AI_PROJECT_ENDPOINT") ?? throw new InvalidOperationException("AZURE_AI_PROJECT_ENDPOINT is not set.");
string deploymentName = Environment.GetEnvironmentVariable("AZURE_AI_MODEL_DEPLOYMENT_NAME") ?? "gpt-5.4-mini";
string endpoint = Environment.GetEnvironmentVariable("FOUNDRY_PROJECT_ENDPOINT") ?? throw new InvalidOperationException("FOUNDRY_PROJECT_ENDPOINT is not set.");
string deploymentName = Environment.GetEnvironmentVariable("FOUNDRY_MODEL") ?? "gpt-5.4-mini";
// WARNING: DefaultAzureCredential is convenient for development but requires careful consideration in production.
// In production, consider using a specific credential (e.g., ManagedIdentityCredential) to avoid
@@ -13,13 +13,13 @@ This sample demonstrates how to register a `ChatClientAgent` in a dependency inj
- .NET 10 SDK or later
- Microsoft Foundry service endpoint and deployment configured
- Azure CLI installed and authenticated (`az login`)
- An authenticated Azure identity (for example, sign in with `az login`)
Set the following environment variables:
```powershell
$env:AZURE_AI_PROJECT_ENDPOINT="https://your-foundry-service.services.ai.azure.com/api/projects/your-foundry-project"
$env:AZURE_AI_MODEL_DEPLOYMENT_NAME="gpt-5.4-mini"
$env:FOUNDRY_PROJECT_ENDPOINT="https://your-foundry-service.services.ai.azure.com/api/projects/your-foundry-project"
$env:FOUNDRY_MODEL="gpt-5.4-mini"
```
## Run the sample
@@ -9,8 +9,8 @@ using Microsoft.Agents.AI;
using Microsoft.Extensions.AI;
using ModelContextProtocol.Client;
string endpoint = Environment.GetEnvironmentVariable("AZURE_AI_PROJECT_ENDPOINT") ?? throw new InvalidOperationException("AZURE_AI_PROJECT_ENDPOINT is not set.");
string deploymentName = Environment.GetEnvironmentVariable("AZURE_AI_MODEL_DEPLOYMENT_NAME") ?? "gpt-5.4-mini";
string endpoint = Environment.GetEnvironmentVariable("FOUNDRY_PROJECT_ENDPOINT") ?? throw new InvalidOperationException("FOUNDRY_PROJECT_ENDPOINT is not set.");
string deploymentName = Environment.GetEnvironmentVariable("FOUNDRY_MODEL") ?? "gpt-5.4-mini";
// Connect to the Microsoft Learn MCP server via HTTP (Streamable HTTP transport).
Console.WriteLine("Connecting to MCP server at https://learn.microsoft.com/api/mcp ...");
@@ -12,14 +12,14 @@ This sample shows how to use MCP (Model Context Protocol) client tools with a `C
- .NET 10 SDK or later
- Microsoft Foundry service endpoint and deployment configured
- Azure CLI installed and authenticated (`az login`)
- An authenticated Azure identity (for example, sign in with `az login`)
- Node.js installed (for npx/MCP server)
Set the following environment variables:
```powershell
$env:AZURE_AI_PROJECT_ENDPOINT="https://your-foundry-service.services.ai.azure.com/api/projects/your-foundry-project"
$env:AZURE_AI_MODEL_DEPLOYMENT_NAME="gpt-5.4-mini"
$env:FOUNDRY_PROJECT_ENDPOINT="https://your-foundry-service.services.ai.azure.com/api/projects/your-foundry-project"
$env:FOUNDRY_MODEL="gpt-5.4-mini"
```
## Run the sample
@@ -7,8 +7,8 @@ using Azure.Identity;
using Microsoft.Agents.AI;
using Microsoft.Extensions.AI;
string endpoint = Environment.GetEnvironmentVariable("AZURE_AI_PROJECT_ENDPOINT") ?? throw new InvalidOperationException("AZURE_AI_PROJECT_ENDPOINT is not set.");
string deploymentName = Environment.GetEnvironmentVariable("AZURE_AI_MODEL_DEPLOYMENT_NAME") ?? "gpt-5.4-mini";
string endpoint = Environment.GetEnvironmentVariable("FOUNDRY_PROJECT_ENDPOINT") ?? throw new InvalidOperationException("FOUNDRY_PROJECT_ENDPOINT is not set.");
string deploymentName = Environment.GetEnvironmentVariable("FOUNDRY_MODEL") ?? "gpt-5.4-mini";
// WARNING: DefaultAzureCredential is convenient for development but requires careful consideration in production.
// In production, consider using a specific credential (e.g., ManagedIdentityCredential) to avoid
@@ -13,13 +13,13 @@ This sample demonstrates how to use image multi-modality with an agent.
- .NET 10 SDK or later
- Microsoft Foundry service endpoint and a vision-capable model deployment (e.g., `gpt-5.4-mini`)
- Azure CLI installed and authenticated (`az login`)
- An authenticated Azure identity (for example, sign in with `az login`)
Set the following environment variables:
```powershell
$env:AZURE_AI_PROJECT_ENDPOINT="https://your-foundry-service.services.ai.azure.com/api/projects/your-foundry-project"
$env:AZURE_AI_MODEL_DEPLOYMENT_NAME="gpt-5.4-mini"
$env:FOUNDRY_PROJECT_ENDPOINT="https://your-foundry-service.services.ai.azure.com/api/projects/your-foundry-project"
$env:FOUNDRY_MODEL="gpt-5.4-mini"
```
## Run the sample
@@ -12,8 +12,8 @@ using Microsoft.Extensions.AI;
static string GetWeather([Description("The location to get the weather for.")] string location)
=> $"The weather in {location} is cloudy with a high of 15°C.";
string endpoint = Environment.GetEnvironmentVariable("AZURE_AI_PROJECT_ENDPOINT") ?? throw new InvalidOperationException("AZURE_AI_PROJECT_ENDPOINT is not set.");
string deploymentName = Environment.GetEnvironmentVariable("AZURE_AI_MODEL_DEPLOYMENT_NAME") ?? "gpt-5.4-mini";
string endpoint = Environment.GetEnvironmentVariable("FOUNDRY_PROJECT_ENDPOINT") ?? throw new InvalidOperationException("FOUNDRY_PROJECT_ENDPOINT is not set.");
string deploymentName = Environment.GetEnvironmentVariable("FOUNDRY_MODEL") ?? "gpt-5.4-mini";
// WARNING: DefaultAzureCredential is convenient for development but requires careful consideration in production.
// In production, consider using a specific credential (e.g., ManagedIdentityCredential) to avoid
@@ -13,13 +13,13 @@ This sample demonstrates how to use one agent as a function tool for another age
- .NET 10 SDK or later
- Microsoft Foundry service endpoint and deployment configured
- Azure CLI installed and authenticated (`az login`)
- An authenticated Azure identity (for example, sign in with `az login`)
Set the following environment variables:
```powershell
$env:AZURE_AI_PROJECT_ENDPOINT="https://your-foundry-service.services.ai.azure.com/api/projects/your-foundry-project"
$env:AZURE_AI_MODEL_DEPLOYMENT_NAME="gpt-5.4-mini"
$env:FOUNDRY_PROJECT_ENDPOINT="https://your-foundry-service.services.ai.azure.com/api/projects/your-foundry-project"
$env:FOUNDRY_MODEL="gpt-5.4-mini"
```
## Run the sample
@@ -20,8 +20,8 @@ static string GetWeather([Description("The location to get the weather for.")] s
static string GetDateTime()
=> DateTimeOffset.Now.ToString();
string endpoint = Environment.GetEnvironmentVariable("AZURE_AI_PROJECT_ENDPOINT") ?? throw new InvalidOperationException("AZURE_AI_PROJECT_ENDPOINT is not set.");
string deploymentName = Environment.GetEnvironmentVariable("AZURE_AI_MODEL_DEPLOYMENT_NAME") ?? "gpt-5.4-mini";
string endpoint = Environment.GetEnvironmentVariable("FOUNDRY_PROJECT_ENDPOINT") ?? throw new InvalidOperationException("FOUNDRY_PROJECT_ENDPOINT is not set.");
string deploymentName = Environment.GetEnvironmentVariable("FOUNDRY_MODEL") ?? "gpt-5.4-mini";
// WARNING: DefaultAzureCredential is convenient for development but requires careful consideration in production.
// In production, consider using a specific credential (e.g., ManagedIdentityCredential) to avoid
@@ -14,13 +14,13 @@ This sample demonstrates multiple middleware layers working together: PII filter
- .NET 10 SDK or later
- Microsoft Foundry service endpoint and deployment configured
- Azure CLI installed and authenticated (`az login`)
- An authenticated Azure identity (for example, sign in with `az login`)
Set the following environment variables:
```powershell
$env:AZURE_AI_PROJECT_ENDPOINT="https://your-foundry-service.services.ai.azure.com/api/projects/your-foundry-project"
$env:AZURE_AI_MODEL_DEPLOYMENT_NAME="gpt-5.4-mini"
$env:FOUNDRY_PROJECT_ENDPOINT="https://your-foundry-service.services.ai.azure.com/api/projects/your-foundry-project"
$env:FOUNDRY_MODEL="gpt-5.4-mini"
```
## Run the sample
@@ -16,8 +16,8 @@ using Microsoft.Extensions.AI;
using Microsoft.Extensions.DependencyInjection;
using SampleApp;
string endpoint = Environment.GetEnvironmentVariable("AZURE_AI_PROJECT_ENDPOINT") ?? throw new InvalidOperationException("AZURE_AI_PROJECT_ENDPOINT is not set.");
string deploymentName = Environment.GetEnvironmentVariable("AZURE_AI_MODEL_DEPLOYMENT_NAME") ?? "gpt-5.4-mini";
string endpoint = Environment.GetEnvironmentVariable("FOUNDRY_PROJECT_ENDPOINT") ?? throw new InvalidOperationException("FOUNDRY_PROJECT_ENDPOINT is not set.");
string deploymentName = Environment.GetEnvironmentVariable("FOUNDRY_MODEL") ?? "gpt-5.4-mini";
const string AssistantInstructions = "You are a helpful assistant that helps people find information.";
const string AssistantName = "PluginAssistant";
@@ -13,13 +13,13 @@ This sample shows how to use plugins with a `ChatClientAgent` using the Response
- .NET 10 SDK or later
- Microsoft Foundry service endpoint and deployment configured
- Azure CLI installed and authenticated (`az login`)
- An authenticated Azure identity (for example, sign in with `az login`)
Set the following environment variables:
```powershell
$env:AZURE_AI_PROJECT_ENDPOINT="https://your-foundry-service.services.ai.azure.com/api/projects/your-foundry-project"
$env:AZURE_AI_MODEL_DEPLOYMENT_NAME="gpt-5.4-mini"
$env:FOUNDRY_PROJECT_ENDPOINT="https://your-foundry-service.services.ai.azure.com/api/projects/your-foundry-project"
$env:FOUNDRY_MODEL="gpt-5.4-mini"
```
## Run the sample
@@ -12,8 +12,8 @@ using OpenAI.Assistants;
const string AgentInstructions = "You are a personal math tutor. When asked a math question, write and run code using the python tool to answer the question.";
const string AgentName = "CoderAgent-RAPI";
string endpoint = Environment.GetEnvironmentVariable("AZURE_AI_PROJECT_ENDPOINT") ?? throw new InvalidOperationException("AZURE_AI_PROJECT_ENDPOINT is not set.");
string deploymentName = Environment.GetEnvironmentVariable("AZURE_AI_MODEL_DEPLOYMENT_NAME") ?? "gpt-5.4-mini";
string endpoint = Environment.GetEnvironmentVariable("FOUNDRY_PROJECT_ENDPOINT") ?? throw new InvalidOperationException("FOUNDRY_PROJECT_ENDPOINT is not set.");
string deploymentName = Environment.GetEnvironmentVariable("FOUNDRY_MODEL") ?? "gpt-5.4-mini";
// WARNING: DefaultAzureCredential is convenient for development but requires careful consideration in production.
// In production, consider using a specific credential (e.g., ManagedIdentityCredential) to avoid
@@ -12,13 +12,13 @@ This sample shows how to use the Code Interpreter tool with a `ChatClientAgent`
- .NET 10 SDK or later
- Microsoft Foundry service endpoint and deployment configured
- Azure CLI installed and authenticated (`az login`)
- An authenticated Azure identity (for example, sign in with `az login`)
Set the following environment variables:
```powershell
$env:AZURE_AI_PROJECT_ENDPOINT="https://your-foundry-service.services.ai.azure.com/api/projects/your-foundry-project"
$env:AZURE_AI_MODEL_DEPLOYMENT_NAME="gpt-5.4-mini"
$env:FOUNDRY_PROJECT_ENDPOINT="https://your-foundry-service.services.ai.azure.com/api/projects/your-foundry-project"
$env:FOUNDRY_MODEL="gpt-5.4-mini"
```
## Run the sample
@@ -10,9 +10,12 @@ using Microsoft.Agents.AI.Foundry;
using Microsoft.Extensions.AI;
using OpenAI.Responses;
string endpoint = Environment.GetEnvironmentVariable("AZURE_AI_PROJECT_ENDPOINT") ?? throw new InvalidOperationException("AZURE_AI_PROJECT_ENDPOINT is not set.");
string endpoint = Environment.GetEnvironmentVariable("FOUNDRY_PROJECT_ENDPOINT") ?? throw new InvalidOperationException("FOUNDRY_PROJECT_ENDPOINT is not set.");
string deploymentName = Environment.GetEnvironmentVariable("AZURE_AI_COMPUTER_USE_DEPLOYMENT_NAME") ?? "computer-use-preview";
// WARNING: DefaultAzureCredential is convenient for development but requires careful consideration in production.
// In production, consider using a specific credential (e.g., ManagedIdentityCredential) to avoid
// latency issues, unintended credential probing, and potential security risks from fallback mechanisms.
AIProjectClient projectClient = new(new Uri(endpoint), new DefaultAzureCredential());
using IHostedFileClient fileClient = projectClient.GetProjectOpenAIClient().AsIHostedFileClient();
@@ -1,4 +1,4 @@
# Computer Use with the Responses API
# Computer Use with the Responses API
This sample shows how to use the Computer Use tool with `AIProjectClient.AsAIAgent(...)`.
@@ -39,12 +39,12 @@ The model receives a screenshot as input, analyzes it, and responds with a compu
- .NET 10 SDK or later
- Microsoft Foundry service endpoint and deployment configured
- Azure CLI installed and authenticated (`az login`)
- An authenticated Azure identity (for example, sign in with `az login`)
Set the following environment variables:
```powershell
$env:AZURE_AI_PROJECT_ENDPOINT="https://your-foundry-service.services.ai.azure.com/api/projects/your-foundry-project"
$env:FOUNDRY_PROJECT_ENDPOINT="https://your-foundry-service.services.ai.azure.com/api/projects/your-foundry-project"
$env:AZURE_AI_COMPUTER_USE_DEPLOYMENT_NAME="computer-use-preview"
```

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