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""" LibriVox-Indonesia Dataset""" |
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import csv |
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import os |
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import datasets |
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from datasets.utils.py_utils import size_str |
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from languages import LANGUAGES |
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from release_stats import STATS |
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_CITATION = """\ |
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""" |
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_HOMEPAGE = "https://huggingface.co/indonesian-nlp/librivox-indonesia" |
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_LICENSE = "https://creativecommons.org/publicdomain/zero/1.0/" |
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_AUDIO_URL = "https://huggingface.co/datasets/cahya/librivox-indonesia/resolve/main/librivox-indonesia.tgz" |
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class LibriVoxIndonesiaConfig(datasets.BuilderConfig): |
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"""BuilderConfig for LibriVoxIndonesia.""" |
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def __init__(self, name, version, **kwargs): |
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self.language = kwargs.pop("language", None) |
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self.release_date = kwargs.pop("release_date", None) |
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self.num_clips = kwargs.pop("num_clips", None) |
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self.num_speakers = kwargs.pop("num_speakers", None) |
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self.validated_hr = kwargs.pop("validated_hr", None) |
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self.total_hr = kwargs.pop("total_hr", None) |
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self.size_bytes = kwargs.pop("size_bytes", None) |
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self.size_human = size_str(self.size_bytes) |
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description = ( |
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f"LibriVox-Indonesia speech to text dataset in {self.language} released on {self.release_date}. " |
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f"The dataset comprises {self.validated_hr} hours of transcribed speech data" |
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) |
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super(LibriVoxIndonesiaConfig, self).__init__( |
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name=name, |
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version=datasets.Version(version), |
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description=description, |
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**kwargs, |
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) |
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class LibriVoxIndonesia(datasets.GeneratorBasedBuilder): |
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DEFAULT_CONFIG_NAME = "all" |
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BUILDER_CONFIGS = [ |
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LibriVoxIndonesiaConfig( |
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name=lang, |
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version=STATS["version"], |
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language=LANGUAGES[lang], |
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release_date=STATS["date"], |
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num_clips=lang_stats["clips"], |
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num_speakers=lang_stats["users"], |
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total_hr=float(lang_stats["totalHrs"]) if lang_stats["totalHrs"] else None, |
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size_bytes=int(lang_stats["size"]) if lang_stats["size"] else None, |
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) |
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for lang, lang_stats in STATS["locales"].items() |
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] |
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def _info(self): |
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total_languages = len(STATS["locales"]) |
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total_hours = self.config.total_hr |
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description = ( |
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"LibriVox-Indonesia is a speech dataset generated from LibriVox with only languages from Indonesia." |
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f"The dataset currently consists of {total_hours} hours of speech " |
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f" in {total_languages} languages, but more voices and languages are always added." |
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) |
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features = datasets.Features( |
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{ |
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"path": datasets.Value("string"), |
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"language": datasets.Value("string"), |
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"reader": datasets.Value("string"), |
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"sentence": datasets.Value("string"), |
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"audio": datasets.features.Audio(sampling_rate=48_000) |
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} |
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) |
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return datasets.DatasetInfo( |
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description=description, |
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features=features, |
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supervised_keys=None, |
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homepage=_HOMEPAGE, |
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license=_LICENSE, |
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citation=_CITATION, |
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version=self.config.version, |
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) |
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def _split_generators(self, dl_manager): |
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"""Returns SplitGenerators.""" |
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dl_manager.download_config.ignore_url_params = True |
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archive_path = dl_manager.download(_AUDIO_URL) |
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local_extracted_archive = dl_manager.extract(archive_path) if not dl_manager.is_streaming else None |
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path_to_clips = "audio" |
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return [ |
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datasets.SplitGenerator( |
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name=datasets.Split.TRAIN, |
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gen_kwargs={ |
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"local_extracted_archive": local_extracted_archive, |
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"archive_iterator": dl_manager.iter_archive(archive_path), |
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"metadata_filepath": "audio_transcription.csv", |
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"path_to_clips": path_to_clips, |
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}, |
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), |
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] |
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def _generate_examples( |
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self, |
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local_extracted_archive, |
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archive_iterator, |
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metadata_filepath, |
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path_to_clips, |
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): |
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"""Yields examples.""" |
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data_fields = list(self._info().features.keys()) |
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metadata = {} |
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filepath = local_extracted_archive + "/audio/audio_transcription.csv" |
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with open(filepath, "r") as f: |
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lines = (line for line in f) |
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utterances = csv.DictReader(lines) |
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for row in utterances: |
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if self.config.name == "all" or self.config.name == row["language"]: |
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row["path"] = os.path.join(path_to_clips, row["path"]) |
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for field in data_fields: |
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if field not in row: |
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row[field] = "" |
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metadata[row["path"]] = row |
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for path, f in archive_iterator: |
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if path in metadata: |
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result = dict(metadata[path]) |
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path = os.path.join(local_extracted_archive, path) if local_extracted_archive else path |
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result["audio"] = {"path": path, "bytes": f.read()} |
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result["path"] = path if local_extracted_archive else None |
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yield path, result |
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