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- Switch all per-cell tests from @pytest.mark.parametrize("model", ...)
(3 sequential invocations) to a single test that fans out to all 3
Claude tiers via run_claude_models_parallel. Per-cell wall time is now
bounded by the slowest model rather than the sum.
- Add 5 new v0 feature dirs (5 providers each, 25 new test files):
web_search, pdf_input, prompt_caching_1h,
tool_use_streaming, thinking_with_tool_use
Manifest expanded to match.
- Add cross-process token-bucket rate limiter (rate_limiter.py + tests)
so xdist workers stay under per-provider req/s limits during full-grid
runs. New env knobs: LITELLM_COMPAT_RATE_{ANTHROPIC,AZURE,VERTEX_AI,
BEDROCK_CONVERSE,BEDROCK_INVOKE}.
- conftest.py: write per-worker shards under <artifact>.shards/, merge
in the controller; preserve the "don't write empty artifact" guard so
unit-test runs don't clobber a real compat-results.json.
- Vertex test_config.yaml: route project/location through env so the
cron VM can target a different GCP project than the upstream default.
- Add run_compat.sh wrapper for binary-searching ideal req/s per
provider against compat-rate-limit-summary.json output.
122 lines
3.8 KiB
Python
122 lines
3.8 KiB
Python
"""tool_use_streaming x Microsoft Foundry (Azure).
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Drive the real `claude` CLI in headless `--output-format stream-json`
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mode against a running LiteLLM proxy that routes Claude requests to
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Microsoft Foundry's Anthropic deployments on Azure, ask Claude to
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invoke a built-in tool (`Bash`), and assert that the upstream (a)
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emitted a `tool_use` content block and (b) actually streamed events
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incrementally.
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The (feature, provider) for this cell is inferred from the file path by
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`tests/claude_code/conftest.py`:
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tests/claude_code/tool_use_streaming/test_azure.py
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^^^^^^^^^^^^^^^^^^ ^^^^^
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feature_id provider
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"""
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from __future__ import annotations
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import os
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from typing import Any, Mapping, Sequence
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import pytest
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from tests.claude_code.cli_driver import (
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ClaudeCLIError,
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failure_diagnostic,
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run_claude_models_parallel,
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)
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PROXY_BASE_URL_ENV = "LITELLM_PROXY_BASE_URL"
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PROXY_API_KEY_ENV = "LITELLM_PROXY_API_KEY"
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AZURE_MODELS = [
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"claude-haiku-4-5-azure",
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"claude-sonnet-4-6-azure",
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"claude-opus-4-7-azure",
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]
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TOOL_USE_PROMPT = (
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"Use the Bash tool to run the command `echo pong` and report what it printed."
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)
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TOOL_USE_ARGS = ["--allowed-tools", "Bash"]
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MIN_STREAM_EVENTS = 4
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def _has_tool_use_event(events: Sequence[Mapping[str, Any]]) -> bool:
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for event in events:
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if event.get("type") != "assistant":
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continue
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message = event.get("message") or {}
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content = message.get("content")
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if not isinstance(content, list):
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continue
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for block in content:
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if isinstance(block, dict) and block.get("type") == "tool_use":
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return True
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return False
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def test_tool_use_streaming_azure(compat_result):
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base_url = os.environ.get(PROXY_BASE_URL_ENV)
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api_key = os.environ.get(PROXY_API_KEY_ENV)
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if not base_url or not api_key:
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compat_result.set(
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{
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"status": "fail",
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"error": (
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f"missing required env: set {PROXY_BASE_URL_ENV} and "
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f"{PROXY_API_KEY_ENV} to point at a running LiteLLM proxy"
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),
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}
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)
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pytest.fail(
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f"{PROXY_BASE_URL_ENV} / {PROXY_API_KEY_ENV} not configured", pytrace=False
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)
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outcomes = run_claude_models_parallel(
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models=AZURE_MODELS,
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prompt=TOOL_USE_PROMPT,
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base_url=base_url,
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api_key=api_key,
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extra_args=TOOL_USE_ARGS,
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)
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failures = []
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for model in AZURE_MODELS:
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outcome = outcomes[model]
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if isinstance(outcome, ClaudeCLIError):
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error = f"[{model}] {outcome}"
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compat_result.add({"status": "fail", "error": error})
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failures.append(error)
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continue
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if outcome.exit_code != 0:
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error = f"[{model}] claude CLI failed: {failure_diagnostic(outcome)}"
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compat_result.add({"status": "fail", "error": error})
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failures.append(error)
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continue
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if not _has_tool_use_event(outcome.events):
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error = (
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f"[{model}] no tool_use content block observed in stream-json events"
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)
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compat_result.add({"status": "fail", "error": error})
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failures.append(error)
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continue
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if len(outcome.events) < MIN_STREAM_EVENTS:
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error = (
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f"[{model}] only {len(outcome.events)} stream-json events observed "
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f"(< {MIN_STREAM_EVENTS}); proxy likely buffered the response"
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)
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compat_result.add({"status": "fail", "error": error})
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failures.append(error)
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continue
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compat_result.add({"status": "pass"})
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if failures:
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pytest.fail("; ".join(failures), pytrace=False)
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