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MultiPL-E / multipl_e.py
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import json
import datasets
from pathlib import Path
logger = datasets.logging.get_logger(__name__)
_CITATION = """\
@misc{multipl-e,
doi = {10.48550/ARXIV.2208.08227},
url = {https://arxiv.org/abs/2208.08227},
author = {Cassano, Federico and Gouwar, John and Nguyen, Daniel and
Nguyen, Sydney and Phipps-Costin, Luna and Pinckney, Donald and
Yee, Ming-Ho and Zi, Yangtian and Anderson, Carolyn Jane and
Feldman, Molly Q and Guha, Arjun and
Greenberg, Michael and Jangda, Abhinav},
title = {A Scalable and Extensible Approach to Benchmarking NL2Code for 18
Programming Languages},
publisher = {arXiv},
year = {2022},
}
"""
_DESCRIPTION = """\
MultiPL-E is a dataset for evaluating large language models for code \
generation that supports 18 programming languages. It takes the OpenAI \
"HumanEval" Python benchmarks and uses little compilers to translate them \
to other languages. It is easy to add support for new languages and benchmarks.
"""
_LANGUAGES = [
"cpp", "cs", "d", "go", "java", "jl", "js", "lua", "php", "pl", "py", "r",
"rb", "rkt", "rs", "scala", "sh", "swift", "ts"
]
_VARIATIONS = [ "keep", "transform", "reworded", "remove" ]
class MultiPLE(datasets.GeneratorBasedBuilder):
BUILDER_CONFIGS = [
datasets.BuilderConfig(
name = language + "-" + variation,
version=datasets.Version("1.0.0"),
description=_DESCRIPTION)
for language in _LANGUAGES for variation in _VARIATIONS
]
DEFAULT_CONFIG_NAME = "cpp-keep"
def _info(self):
return datasets.DatasetInfo(
description=_DESCRIPTION,
license="MIT",
features=datasets.Features({
"name": datasets.Value("string"),
"language": datasets.Value("string"),
"prompt": datasets.Value("string"),
"doctests": datasets.Value("string"),
"original": datasets.Value("string"),
"prompt_terminology": datasets.Value("string"),
"tests": datasets.Value("string"),
"stop_tokens": datasets.features.Sequence(datasets.Value("string")),
}),
supervised_keys=None,
homepage="https://nuprl.github.io/MultiPL-E/",
citation=_CITATION,
task_templates=[]
)
def _split_generators(self, dl_manager: datasets.DownloadManager):
files = dl_manager.download(
f"https://huggingface.co/datasets/nuprl/MultiPL-E/raw/main/data/{self.config.name}.json")
return [
datasets.SplitGenerator(
name=datasets.Split.TEST,
gen_kwargs={
"filepath": files,
}
)
]
def _generate_examples(self, filepath, split):
with open(filepath, encoding="utf-8") as f:
data = json.load(f)
for id_, row in enumerate(data):
yield id_, row