feat: add live endpoint benchmark runner
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@@ -63,8 +63,9 @@ Result: passed
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## Limitations
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- This slice captures the DGR-001 contract and baseline selection only.
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- It does **not** download or run a real model yet.
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- This slice still uses a deterministic stub backend for the core comparison matrix.
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- It now also includes a live endpoint runner that can fan out one OpenAI-compatible request per lane when the caller provides endpoints.
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- It does **not** download or run a real model from within the repo.
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- Real safetensors vs GGUF execution, TTFT/prefill/decode measurements, RSS/VRAM capture, and output-drift comparison are still to be implemented against the contract.
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## Compatibility notes
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@@ -12,8 +12,11 @@ from __future__ import annotations
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import argparse
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import json
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import time
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import urllib.request
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from dataclasses import dataclass
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from pathlib import Path
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from typing import Mapping
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SCHEMA_VERSION = 1
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CONTRACT_ID = "DGR-001"
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@@ -330,6 +333,100 @@ def run_performance_benchmark(
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}
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def run_real_model_endpoint_benchmark(
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endpoints: Mapping[str, str],
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*,
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model: str,
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contract: PerformanceContract = DEFAULT_CONTRACT,
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timeout: float = 120.0,
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) -> dict:
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"""Run one live OpenAI-compatible request per lane against supplied endpoints.
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The caller provides one URL per benchmark lane. The runner measures the
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request/response round-trip at the client boundary and reuses the same
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contract schema as the deterministic stub.
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"""
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def _sample_for_lane(lane: BenchmarkLane, endpoint: str) -> LaneSample:
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prompt = " ".join(contract.model_target.rationale.split()[:6])
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body = json.dumps(
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{
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"model": model,
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"messages": [{"role": "user", "content": prompt}],
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"max_tokens": len(STUB_OUTPUT_TOKENS),
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"temperature": 0,
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}
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).encode("utf-8")
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request = urllib.request.Request(
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f"{endpoint.rstrip('/')}/v1/chat/completions",
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data=body,
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headers={
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"Content-Type": "application/json",
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"X-Meshnet-Lane": lane.id,
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},
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method="POST",
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)
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started = time.monotonic()
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with urllib.request.urlopen(request, timeout=timeout) as response:
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response_body = response.read()
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session_id = response.headers.get("X-Meshnet-Session", f"{lane.id}-session")
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elapsed_ms = round((time.monotonic() - started) * 1000, 4)
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payload = json.loads(response_body)
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content = payload["choices"][0]["message"]["content"]
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tokens = tuple(content.split())
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token_count = max(1, len(tokens))
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artifact_gb = (
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contract.model_target.gguf_size_gb
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if lane.runtime == "llama.cpp"
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else _SAFETENSORS_BF16_ARTIFACT_GB
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)
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return LaneSample(
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ttft_ms=elapsed_ms,
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prefill_tok_per_sec=round(token_count / max(0.001, elapsed_ms / 1000), 4),
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decode_tok_per_sec=round(token_count / max(0.001, elapsed_ms / 1000), 4),
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rss_bytes=0,
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vram_bytes=0,
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artifact_bytes=_gb(artifact_gb),
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output_tokens=tokens,
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)
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lanes = []
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for lane in contract.benchmark_lanes:
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if lane.id not in endpoints:
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raise KeyError(f"missing endpoint for lane {lane.id}")
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lanes.append((lane, _sample_for_lane(lane, endpoints[lane.id])))
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references = {
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lane.device: sample.output_tokens for lane, sample in lanes if lane.runtime == "transformers"
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}
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lane_reports = []
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for lane, sample in lanes:
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drift = _output_drift(sample.output_tokens, references.get(lane.device, sample.output_tokens))
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lane_reports.append({
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**lane.to_dict(),
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"output_tokens": list(sample.output_tokens),
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"results": [
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{"concurrency": level, "metrics": _metrics_for(sample, level, drift)}
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for level in lane.concurrency_levels
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],
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})
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devices = sorted({lane.device for lane, _ in lanes})
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comparisons = {device: _compare_device(lanes, device) for device in devices}
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gguf_benefit = any(comparison["gguf_benefit"] for comparison in comparisons.values())
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return {
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"schema_version": BENCHMARK_SCHEMA_VERSION,
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"story_id": contract.story_id,
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"source": "real-model-endpoints",
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"model_target": contract.model_target.to_dict(),
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"lanes": lane_reports,
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"comparisons": comparisons,
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"stop_condition": {
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"text": contract.stop_condition,
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"gguf_benefit": gguf_benefit,
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"triggered": not gguf_benefit,
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},
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}
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def main(argv: list[str] | None = None) -> int:
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parser = argparse.ArgumentParser(description="Write the DGR-001 performance contract JSON")
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parser.add_argument("--json-out", type=Path, default=DEFAULT_OUTPUT_PATH, help="output JSON path")
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@@ -3,6 +3,7 @@
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from __future__ import annotations
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import json
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from unittest.mock import MagicMock, patch
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from meshnet_node.performance_contract import (
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BENCHMARK_SCHEMA_VERSION,
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@@ -10,6 +11,7 @@ from meshnet_node.performance_contract import (
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SCHEMA_VERSION,
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main,
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run_performance_benchmark,
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run_real_model_endpoint_benchmark,
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)
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@@ -165,3 +167,37 @@ def test_contract_cli_writes_benchmark_report(tmp_path, capsys):
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output = capsys.readouterr().out
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assert str(contract_out) in output
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assert str(benchmark_out) in output
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def test_real_model_endpoint_benchmark_uses_lane_specific_endpoints_and_shared_schema():
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"""The live client path fans out to one endpoint per CPU/GPU lane.
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Tags: performance, benchmark, live
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"""
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response = MagicMock()
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response.read.return_value = json.dumps({"choices": [{"message": {"content": "mesh activation"}}]}).encode()
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response.headers.get.return_value = "lane-session"
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response.__enter__.return_value = response
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endpoints = {
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"transformers-safetensors-cpu": "http://cpu-safetensors",
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"llama-cpp-gguf-cpu": "http://cpu-gguf",
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"transformers-safetensors-gpu": "http://gpu-safetensors",
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"llama-cpp-gguf-gpu": "http://gpu-gguf",
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}
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with patch("meshnet_node.performance_contract.urllib.request.urlopen", return_value=response) as urlopen:
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report = run_real_model_endpoint_benchmark(endpoints=endpoints, model="deepseek-ai/DeepSeek-V2-Lite-Chat")
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assert report["source"] == "real-model-endpoints"
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assert report["model_target"] == DEFAULT_CONTRACT.model_target.to_dict()
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assert set(report["comparisons"]) == {"cpu", "gpu"}
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assert urlopen.call_count == len(endpoints)
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called_urls = [call.args[0].full_url for call in urlopen.call_args_list]
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assert called_urls == [f"{url}/v1/chat/completions" for url in endpoints.values()]
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for lane in report["lanes"]:
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assert lane["results"][0]["metrics"]["decode_tok_per_sec"] > 0
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assert lane["results"][0]["metrics"]["ttft_ms"] > 0
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assert lane["output_tokens"] == ["mesh", "activation"]
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assert report["comparisons"]["cpu"]["gguf_lane"] == "llama-cpp-gguf-cpu"
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assert report["comparisons"]["gpu"]["gguf_lane"] == "llama-cpp-gguf-gpu"
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