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30 changes: 30 additions & 0 deletions userbenchmark/test_bench/run.py
Original file line number Diff line number Diff line change
Expand Up @@ -111,6 +111,34 @@ def generate_model_configs_from_bisect_yaml(
return result


def generate_model_configs_from_yaml(
yaml_file: str,
) -> List[TorchBenchModelConfig]:
yaml_file_path = os.path.join(yaml_file)
assert os.path.exists(yaml_file_path)

with open(yaml_file_path, "r") as yf:
config_obj = yaml.safe_load(yf)
model_set = set(list_models(internal=False))
device = config_obj["device"]
configs = []
for model in model_set:
cfg = next(filter(lambda c: c["model"] == model, config_obj["models"]), None)
tests = cfg.get("tests", "eval") if cfg is not None else ["eval"]
for test in tests:
config = TorchBenchModelConfig(
name=model,
device=device,
test=test,
batch_size=cfg.get("batch_size", None) if cfg is not None else None,
extra_args=[],
skip=cfg is not None and cfg.get("skip", False),
)
print(config)
configs.append(config)
return configs
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This means that we always list all models and apply configuration on them.



def init_output_dir(
configs: List[TorchBenchModelConfig], output_dir: pathlib.Path
) -> List[TorchBenchModelConfig]:
Expand Down Expand Up @@ -340,6 +368,8 @@ def run(args: List[str]):
args, extra_args = parse_known_args(args)
if args.run_bisect:
configs = generate_model_configs_from_bisect_yaml(args.run_bisect)
elif args.config:
configs = generate_model_configs_from_yaml(args.config)
else:
modelset = set(list_models(internal=(not args.oss)))
timm_set = set(list_extended_models(suite_name="timm"))
Expand Down