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saltik.py
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import json
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from pathlib import Path
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from typing import Dict, List, Tuple
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import datasets
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import jsonlines
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from seacrowd.utils.configs import SEACrowdConfig
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from seacrowd.utils.constants import Licenses, Tasks
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_CITATION = """\
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@article{,
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author = {Audah, Hanif Arkan and Yuliawati, Arlisa and Alfina, Ika},
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title = {A Comparison Between SymSpell and a Combination of Damerau-Levenshtein Distance With the Trie Data Structure},
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journal = {2023 10th International Conference on Advanced Informatics: Concept, Theory and Application (ICAICTA)},
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volume = {},
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year = {2023},
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url = {https://ieeexplore.ieee.org/stamp/stamp.jsp?arnumber=10390399&casa_token=HtJUCIGGlWYAAAAA:q8ll1RWmpHtSAq2Qp5uQAE1NJETx7tUYFZIvTO1IWoaYy4eqFETSsm9p6C7tJwLZBGq5y8zc3A&tag=1},
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doi = {},
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biburl = {https://github.com/ir-nlp-csui/saltik?tab=readme-ov-file#references},
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bibsource = {https://github.com/ir-nlp-csui/saltik?tab=readme-ov-file#references}
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}
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"""
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_DATASETNAME = "saltik"
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_DESCRIPTION = """\
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Saltik is a dataset for benchmarking non-word error correction method accuracy in evaluating Indonesian words.
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It consists of 58,532 non-word errors generated from 3,000 of the most popular Indonesian words.
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"""
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_HOMEPAGE = "https://github.com/ir-nlp-csui/saltik"
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_LANGUAGES = ["ind"]
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_LICENSE = Licenses.AGPL_3_0.value
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_LOCAL = False
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_URLS = {
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_DATASETNAME: "https://raw.githubusercontent.com/ir-nlp-csui/saltik/main/saltik.json",
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}
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_SUPPORTED_TASKS = []
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_SOURCE_VERSION = "1.0.0"
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_SEACROWD_VERSION = "2024.06.20"
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class Saltik(datasets.GeneratorBasedBuilder):
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"""It consists of 58,532 non-word errors generated from 3,000 of the most popular Indonesian words."""
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SOURCE_VERSION = datasets.Version(_SOURCE_VERSION)
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SEACROWD_VERSION = datasets.Version(_SEACROWD_VERSION)
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BUILDER_CONFIGS = [
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SEACrowdConfig(
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name=f"{_DATASETNAME}_source",
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version=SOURCE_VERSION,
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description=f"{_DATASETNAME} source schema",
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schema="source",
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subset_id=f"{_DATASETNAME}",
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),
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]
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DEFAULT_CONFIG_NAME = f"{_DATASETNAME}_source"
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def _info(self) -> datasets.DatasetInfo:
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if self.config.schema == "source":
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# EX: Arbitrary NER type dataset
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features = datasets.Features(
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{
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"id": datasets.Value("string"),
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"word": datasets.Value("string"),
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"errors": [
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{
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"typo": datasets.Value("string"),
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"error_type": datasets.Value("string"),
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}
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],
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}
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)
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else:
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raise NotImplementedError()
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return datasets.DatasetInfo(
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description=_DESCRIPTION,
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features=features,
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homepage=_HOMEPAGE,
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license=_LICENSE,
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citation=_CITATION,
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)
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def _split_generators(self, dl_manager: datasets.DownloadManager) -> List[datasets.SplitGenerator]:
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"""Returns SplitGenerators."""
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urls = _URLS[_DATASETNAME]
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file_path = dl_manager.download(urls)
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data = self._read_jsonl(file_path)
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all_words = list(data.keys())
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processed_data = []
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id = 0
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for word in all_words:
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processed_data.append({"id": id, "word": word, "errors": data[word]})
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id += 1
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self._write_jsonl(file_path + ".jsonl", processed_data)
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return [
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datasets.SplitGenerator(
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name=datasets.Split.TRAIN,
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# Whatever you put in gen_kwargs will be passed to _generate_examples
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gen_kwargs={
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"filepath": file_path + ".jsonl",
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"split": "train",
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},
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),
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]
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def _generate_examples(self, filepath: Path, split: str) -> Tuple[int, Dict]:
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"""Yields examples as (key, example) tuples."""
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if self.config.schema == "source":
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i = 0
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with jsonlines.open(filepath) as f:
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for each_data in f.iter():
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ex = {
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"id": each_data["id"],
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"word": each_data["word"],
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"errors": each_data["errors"],
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}
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yield i, ex
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i += 1
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def _read_jsonl(self, filepath: Path):
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with open(filepath) as user_file:
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parsed_json = json.load(user_file)
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return parsed_json
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def _write_jsonl(self, filepath, values):
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with jsonlines.open(filepath, "w") as writer:
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for line in values:
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writer.write(line)
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