"test/srt/test_torch_native_attention_backend.py" did not exist on "158e8f1e2d499e225add6ed0554896c94fd5a891"
__main__.py 10 KB
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import argparse
import json
import logging
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import os
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import re
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import sys
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from pathlib import Path
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from typing import Union
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import numpy as np

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from lm_eval import evaluator, utils
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from lm_eval.api.registry import ALL_TASKS
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from lm_eval.tasks import include_path, initialize_tasks
from lm_eval.utils import make_table
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def _handle_non_serializable(o):
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    if isinstance(o, np.int64) or isinstance(o, np.int32):
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        return int(o)
    elif isinstance(o, set):
        return list(o)
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    else:
        return str(o)
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def parse_eval_args() -> argparse.Namespace:
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    parser = argparse.ArgumentParser(formatter_class=argparse.RawTextHelpFormatter)
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    parser.add_argument("--model", "-m", default="hf", help="Name of model e.g. `hf`")
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    parser.add_argument(
        "--tasks",
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        "-t",
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        default=None,
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        metavar="task1,task2",
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        help="To get full list of tasks, use the command lm-eval --tasks list",
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    )
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    parser.add_argument(
        "--model_args",
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        "-a",
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        default="",
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        help="Comma separated string arguments for model, e.g. `pretrained=EleutherAI/pythia-160m,dtype=float32`",
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    )
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    parser.add_argument(
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        "--num_fewshot",
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        "-f",
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        type=int,
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        default=None,
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        metavar="N",
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        help="Number of examples in few-shot context",
    )
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    parser.add_argument(
        "--batch_size",
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        "-b",
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        type=str,
        default=1,
        metavar="auto|auto:N|N",
        help="Acceptable values are 'auto', 'auto:N' or N, where N is an integer. Default 1.",
    )
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    parser.add_argument(
        "--max_batch_size",
        type=int,
        default=None,
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        metavar="N",
        help="Maximal batch size to try with --batch_size auto.",
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    )
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    parser.add_argument(
        "--device",
        type=str,
        default=None,
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        help="Device to use (e.g. cuda, cuda:0, cpu).",
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    )
    parser.add_argument(
        "--output_path",
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        "-o",
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        default=None,
        type=str,
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        metavar="DIR|DIR/file.json",
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        help="The path to the output file where the result metrics will be saved. If the path is a directory and log_samples is true, the results will be saved in the directory. Else the parent directory will be used.",
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    )
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    parser.add_argument(
        "--limit",
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        "-L",
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        type=float,
        default=None,
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        metavar="N|0<N<1",
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        help="Limit the number of examples per task. "
        "If <1, limit is a percentage of the total number of examples.",
    )
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    parser.add_argument(
        "--use_cache",
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        "-c",
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        type=str,
        default=None,
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        metavar="DIR",
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        help="A path to a sqlite db file for caching model responses. `None` if not caching.",
    )
    parser.add_argument("--decontamination_ngrams_path", default=None)  # TODO: not used
    parser.add_argument(
        "--check_integrity",
        action="store_true",
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        help="Whether to run the relevant part of the test suite for the tasks.",
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    )
    parser.add_argument(
        "--write_out",
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        "-w",
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        action="store_true",
        default=False,
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        help="Prints the prompt for the first few documents.",
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    )
    parser.add_argument(
        "--log_samples",
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        "-s",
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        action="store_true",
        default=False,
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        help="If True, write out all model outputs and documents for per-sample measurement and post-hoc analysis. Use with --output_path.",
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    )
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    parser.add_argument(
        "--show_config",
        action="store_true",
        default=False,
        help="If True, shows the the full config of all tasks at the end of the evaluation.",
    )
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    parser.add_argument(
        "--include_path",
        type=str,
        default=None,
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        metavar="DIR",
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        help="Additional path to include if there are external tasks to include.",
    )
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    parser.add_argument(
        "--gen_kwargs",
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        default=None,
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        help=(
            "String arguments for model generation on greedy_until tasks,"
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            " e.g. `temperature=0,top_k=0,top_p=0`."
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        ),
    )
    parser.add_argument(
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        "--verbosity",
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        "-v",
        type=str.upper,
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        default="INFO",
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        metavar="CRITICAL|ERROR|WARNING|INFO|DEBUG",
        help="Controls the reported logging error level. Set to DEBUG when testing + adding new task configurations for comprehensive log output.",
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    )
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    parser.add_argument(
        "--predict_only",
        "-x",
        action="store_true",
        default=False,
        help="Use with --log_samples. Only model outputs will be saved and metrics will not be evaluated.",
    )
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    return parser.parse_args()

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def cli_evaluate(args: Union[argparse.Namespace, None] = None) -> None:
    if not args:
        # we allow for args to be passed externally, else we parse them ourselves
        args = parse_eval_args()

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    eval_logger = utils.eval_logger
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    eval_logger.setLevel(getattr(logging, f"{args.verbosity}"))
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    eval_logger.info(f"Verbosity set to {args.verbosity}")
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    os.environ["TOKENIZERS_PARALLELISM"] = "false"
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    if args.predict_only:
        args.log_samples = True
    if (args.log_samples or args.predict_only) and not args.output_path:
        assert args.output_path, "Specify --output_path"

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    initialize_tasks(args.verbosity)
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    if args.limit:
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        eval_logger.warning(
            " --limit SHOULD ONLY BE USED FOR TESTING."
            "REAL METRICS SHOULD NOT BE COMPUTED USING LIMIT."
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        )
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    if args.include_path is not None:
        eval_logger.info(f"Including path: {args.include_path}")
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        include_path(args.include_path)
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    if args.tasks is None:
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        task_names = ALL_TASKS
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    elif args.tasks == "list":
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        eval_logger.info(
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            f"Available Tasks:\n - {(os.linesep + ' - ').join(sorted(ALL_TASKS))}"
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        )
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        sys.exit()
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    else:
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        if os.path.isdir(args.tasks):
            import glob
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            task_names = []
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            yaml_path = os.path.join(args.tasks, "*.yaml")
            for yaml_file in glob.glob(yaml_path):
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                config = utils.load_yaml_config(yaml_file)
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                task_names.append(config)
        else:
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            tasks_list = args.tasks.split(",")
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            task_names = utils.pattern_match(tasks_list, ALL_TASKS)
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            for task in [task for task in tasks_list if task not in task_names]:
                if os.path.isfile(task):
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                    config = utils.load_yaml_config(task)
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                    task_names.append(config)
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            task_missing = [
                task
                for task in tasks_list
                if task not in task_names and "*" not in task
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            ]  # we don't want errors if a wildcard ("*") task name was used
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            if task_missing:
                missing = ", ".join(task_missing)
                eval_logger.error(
                    f"Tasks were not found: {missing}\n"
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                    f"{utils.SPACING}Try `lm-eval --tasks list` for list of available tasks",
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                )
                raise ValueError(
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                    f"Tasks not found: {missing}. Try `lm-eval --tasks list` for list of available tasks, or '--verbosity DEBUG' to troubleshoot task registration issues."
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                )
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    if args.output_path:
        path = Path(args.output_path)
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        # check if file or 'dir/results.json' exists
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        if path.is_file() or Path(args.output_path).joinpath("results.json").is_file():
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            eval_logger.warning(
                f"File already exists at {path}. Results will be overwritten."
            )
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            output_path_file = path.joinpath("results.json")
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            assert not path.is_file(), "File already exists"
        # if path json then get parent dir
        elif path.suffix in (".json", ".jsonl"):
            output_path_file = path
            path.parent.mkdir(parents=True, exist_ok=True)
            path = path.parent
        else:
            path.mkdir(parents=True, exist_ok=True)
            output_path_file = path.joinpath("results.json")

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    eval_logger.info(f"Selected Tasks: {task_names}")
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    results = evaluator.simple_evaluate(
        model=args.model,
        model_args=args.model_args,
        tasks=task_names,
        num_fewshot=args.num_fewshot,
        batch_size=args.batch_size,
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        max_batch_size=args.max_batch_size,
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        device=args.device,
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        use_cache=args.use_cache,
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        limit=args.limit,
        decontamination_ngrams_path=args.decontamination_ngrams_path,
        check_integrity=args.check_integrity,
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        write_out=args.write_out,
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        log_samples=args.log_samples,
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        gen_kwargs=args.gen_kwargs,
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        predict_only=args.predict_only,
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    )
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    if results is not None:
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        if args.log_samples:
            samples = results.pop("samples")
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        dumped = json.dumps(
            results, indent=2, default=_handle_non_serializable, ensure_ascii=False
        )
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        if args.show_config:
            print(dumped)
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        batch_sizes = ",".join(map(str, results["config"]["batch_sizes"]))

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        if args.output_path:
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            output_path_file.open("w", encoding="utf-8").write(dumped)
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            if args.log_samples:
                for task_name, config in results["configs"].items():
                    output_name = "{}_{}".format(
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                        re.sub("/|=", "__", args.model_args), task_name
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                    )
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                    filename = path.joinpath(f"{output_name}.jsonl")
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                    samples_dumped = json.dumps(
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                        samples[task_name],
                        indent=2,
                        default=_handle_non_serializable,
                        ensure_ascii=False,
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                    )
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                    filename.write_text(samples_dumped, encoding="utf-8")
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        print(
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            f"{args.model} ({args.model_args}), gen_kwargs: ({args.gen_kwargs}), limit: {args.limit}, num_fewshot: {args.num_fewshot}, "
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            f"batch_size: {args.batch_size}{f' ({batch_sizes})' if batch_sizes else ''}"
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        )
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        print(make_table(results))
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        if "groups" in results:
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            print(make_table(results, "groups"))
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if __name__ == "__main__":
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    cli_evaluate()