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chore: import upstream snapshot with attribution
2026-07-13 12:38:16 +08:00

123 lines
4.2 KiB
Python

import json
import os
from sglang.test.run_eval import run_eval_once
from sglang.test.simple_eval_common import (
make_report,
set_ulimit,
)
def run_eval(args):
# Lazy import to avoid circular dependency with test_utils
from sglang.test.test_utils import dump_metric
set_ulimit()
if "OPENAI_API_KEY" not in os.environ:
os.environ["OPENAI_API_KEY"] = "EMPTY"
base_url = (
f"{args.base_url}/v1" if args.base_url else f"http://{args.host}:{args.port}/v1"
)
if args.eval_name == "mmlu":
from sglang.test.ascend.simple_eval_mmlu import MMLUEval
filename = "https://openaipublic.blob.core.windows.net/simple-evals/mmlu.csv"
eval_obj = MMLUEval(
filename, args.num_examples, args.num_threads, getattr(args, "num_shots", 0)
)
else:
raise ValueError(f"Invalid eval name: {args.eval_name}")
if getattr(args, "repeat", 1) == 1:
result, latency, sampler = run_eval_once(args, base_url, eval_obj)
metrics = result.metrics | {"score": result.score}
metrics["latency"] = latency
print(f"Total latency: {latency:.3f} s")
print(f"Score: {metrics['score']:.3f}")
# Compute output throughput from accumulated completion tokens
total_completion_tokens = sum(sampler._completion_tokens)
if total_completion_tokens > 0 and latency > 0:
metrics["output_throughput"] = total_completion_tokens / latency
print(f"Output throughput: {metrics['output_throughput']:.3f} token/s")
# Report metrics to unified collection framework
dump_metric(
f"{args.eval_name}_score",
metrics["score"],
labels={"model": sampler.model, "eval": args.eval_name},
)
dump_metric(
f"{args.eval_name}_latency",
latency,
labels={"model": sampler.model, "eval": args.eval_name},
)
else:
from concurrent.futures import ThreadPoolExecutor
executor = ThreadPoolExecutor(max_workers=args.repeat)
futures = [
executor.submit(run_eval_once, args, base_url, eval_obj)
for _ in range(args.repeat)
]
scores_repeat = []
latencies = []
total_completion_tokens = 0
for f in futures:
result, latency, sampler = f.result()
scores_repeat.append(result.score)
latencies.append(latency)
total_completion_tokens += sum(sampler._completion_tokens)
mean_score = sum(scores_repeat) / len(scores_repeat)
mean_latency = sum(latencies) / len(latencies)
total_latency = sum(latencies)
scores_repeat = [f"{s:.3f}" for s in scores_repeat]
print("=" * 20)
print(f"Repeat: {args.repeat}, mean: {mean_score:.3f}")
print(f"Scores: {scores_repeat}")
print(f"Mean latency: {mean_latency:.3f} s")
print("=" * 20)
metrics = result.metrics | {"scores": scores_repeat}
metrics = metrics | {"mean_score": mean_score}
metrics["latency"] = mean_latency
if total_completion_tokens > 0 and total_latency > 0:
metrics["output_throughput"] = total_completion_tokens / total_latency
print(f"Output throughput: {metrics['output_throughput']:.3f} token/s")
# Report metrics to unified collection framework
dump_metric(
f"{args.eval_name}_mean_score",
mean_score,
labels={
"model": sampler.model,
"eval": args.eval_name,
"repeat": args.repeat,
},
)
executor.shutdown()
# Dump reports
file_stem = f"{args.eval_name}_{sampler.model.replace('/', '_')}"
report_filename = f"/tmp/{file_stem}.html"
print(f"Writing report to {report_filename}")
with open(report_filename, "w") as fh:
fh.write(make_report(result))
print(metrics)
result_filename = f"/tmp/{file_stem}.json"
with open(result_filename, "w") as f:
f.write(json.dumps(metrics, indent=2))
print(f"Writing results to {result_filename}")
if getattr(args, "return_latency", False):
return metrics, latency
return metrics