Datasets:
Commit
•
bf0fd87
1
Parent(s):
66b9f5d
update loading script
Browse files- voxpopuli.py +79 -124
voxpopuli.py
CHANGED
@@ -1,8 +1,7 @@
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from collections import defaultdict
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import os
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import
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import csv
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from tqdm.auto import tqdm
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import datasets
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@@ -39,15 +38,6 @@ _HOMEPAGE = "https://github.com/facebookresearch/voxpopuli"
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_LICENSE = "CC0, also see https://www.europarl.europa.eu/legal-notice/en/"
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_LANGUAGES = sorted(
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[
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"en", "de", "fr", "es", "pl", "it", "ro", "hu", "cs", "nl", "fi", "hr",
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"sk", "sl", "et", "lt", "pt", "bg", "el", "lv", "mt", "sv", "da"
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]
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)
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_LANGUAGES_V2 = [f"{x}_v2" for x in _LANGUAGES]
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_ASR_LANGUAGES = [
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"en", "de", "fr", "es", "pl", "it", "ro", "hu", "cs", "nl", "fi", "hr",
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"sk", "sl", "et", "lt"
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@@ -56,39 +46,16 @@ _ASR_ACCENTED_LANGUAGES = [
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"en_accented"
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]
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# unnecessary
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_CONFIG_TO_LANGS = {
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"400k": _LANGUAGES,
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"100k": _LANGUAGES,
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"10k": _LANGUAGES,
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"asr": _ASR_LANGUAGES, # + _ASR_ACCENTED_LANGUAGES
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}
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_CONFIG_TO_YEARS = {
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"400k": _YEARS + [f"{y}_2" for y in _YEARS],
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"100k": _YEARS,
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"10k": [2019, 2020],
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"asr": _YEARS,
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}
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for lang in _LANGUAGES:
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_CONFIG_TO_YEARS[lang] = _YEARS
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# _CONFIG_TO_YEARS[lang] = [2020]
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for lang in _LANGUAGES_V2:
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_CONFIG_TO_YEARS[lang] = _YEARS + [f"{y}_2" for y in _YEARS]
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_BASE_URL = "https://dl.fbaipublicfiles.com/voxpopuli/"
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class VoxpopuliConfig(datasets.BuilderConfig):
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@@ -101,44 +68,32 @@ class VoxpopuliConfig(datasets.BuilderConfig):
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**kwargs: keyword arguments forwarded to super.
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"""
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super().__init__(name=name, **kwargs)
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self.
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self.years = _CONFIG_TO_YEARS[name]
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class Voxpopuli(datasets.GeneratorBasedBuilder):
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"""The VoxPopuli dataset."""
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VERSION = datasets.Version("1.3.0") #
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BUILDER_CONFIGS = [
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VoxpopuliConfig(
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name=name,
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version=datasets.Version("1.3.0"),
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)
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for name in _LANGUAGES +
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]
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# DEFAULT_CONFIG_NAME = "400k"
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DEFAULT_WRITER_BATCH_SIZE = 256 # SET THIS TO A LOWER VALUE IF IT USES TOO MUCH RAM SPACE
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def _info(self):
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try:
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import torch
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import torchaudio
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except ImportError as e:
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raise ValueError(
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f"{str(e)}.\n" +
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"Loading voxpopuli requires `torchaudio` to be installed."
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"You can install torchaudio with `pip install torchaudio`."
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)
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global torchaudio
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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.ClassLabel(names=_LANGUAGES),
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"
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"audio": datasets.Audio(sampling_rate=16_000),
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"segment_id": datasets.Value("int16"),
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}
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)
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return datasets.DatasetInfo(
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@@ -149,80 +104,80 @@ class Voxpopuli(datasets.GeneratorBasedBuilder):
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citation=_CITATION,
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)
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def _read_metadata_unlabelled(self, metadata_path):
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# from https://github.com/facebookresearch/voxpopuli/blob/main/voxpopuli/get_unlabelled_data.py#L34
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def predicate(id_):
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is_plenary = id_.find("PLENARY") > -1
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if self.config.name == "10k": # in {"10k", "10k_sd"}
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return is_plenary and 20190101 <= int(id_[:8]) < 20200801
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elif self.config.name == "100k":
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return is_plenary
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elif self.config.name in _LANGUAGES:
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return is_plenary and id_.endswith(self.config.name)
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elif self.config.name in _LANGUAGES_V2:
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return id_.endswith(self.config.name.split("_")[0])
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return True
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metadata = defaultdict(list)
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with open(metadata_path, encoding="utf-8") as csv_file:
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csv_reader = csv.reader(csv_file, delimiter="\t")
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for i, row in tqdm(enumerate(csv_reader)):
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if i == 0:
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continue
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event_id, segment_id, start, end = row
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_, lang = event_id.rsplit("_", 1)[-2:]
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if lang in self.config.languages and predicate(event_id):
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metadata[event_id].append((float(start), float(end)))
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return metadata
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def _read_metadata_asr(self, metadata_paths):
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pass
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def _split_generators(self, dl_manager):
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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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"
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}
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),
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]
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def _generate_examples(self,
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for
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yield f"{audio_filename}_{segment_id}", {
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"path": file,
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"language": language,
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"year": year,
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"audio": {
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"array": segment[0], # segment is a 2-dim array
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"sampling_rate": 16_000
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},
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"segment_id": segment_id,
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}
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from collections import defaultdict
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import os
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import json
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import csv
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import datasets
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_LICENSE = "CC0, also see https://www.europarl.europa.eu/legal-notice/en/"
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_ASR_LANGUAGES = [
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"en", "de", "fr", "es", "pl", "it", "ro", "hu", "cs", "nl", "fi", "hr",
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"sk", "sl", "et", "lt"
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"en_accented"
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]
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_LANGUAGES = _ASR_LANGUAGES + _ASR_ACCENTED_LANGUAGES
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_BASE_DATA_DIR = "https://huggingface.co/datasets/polinaeterna/voxpopuli/resolve/main/data/"
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_N_SHARDS_FILE = _BASE_DATA_DIR + "n_files.json"
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_AUDIO_ARCHIVE_PATH = _BASE_DATA_DIR + "{lang}/{split}/{split}_part_{n_shard}.tar.gz"
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_METADATA_PATH = _BASE_DATA_DIR + "{lang}/asr_{split}.tsv"
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class VoxpopuliConfig(datasets.BuilderConfig):
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**kwargs: keyword arguments forwarded to super.
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"""
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super().__init__(name=name, **kwargs)
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self.languages = _LANGUAGES if name == "all" else [name]
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# self.data_root_dis = {lang: _DATA_DIR.format(lang) for lang in self.languages}
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class Voxpopuli(datasets.GeneratorBasedBuilder):
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"""The VoxPopuli dataset."""
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VERSION = datasets.Version("1.3.0") # TODO: version
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BUILDER_CONFIGS = [
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VoxpopuliConfig(
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name=name,
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version=datasets.Version("1.3.0"),
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)
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for name in _LANGUAGES + ["all"]
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]
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DEFAULT_WRITER_BATCH_SIZE = 256 # SET THIS TO A LOWER VALUE IF IT USES TOO MUCH RAM SPACE
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def _info(self):
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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.ClassLabel(names=_LANGUAGES),
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"raw_text": datasets.Value("string"),
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"normalized_text": datasets.Value("string"),
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"audio": datasets.Audio(sampling_rate=16_000),
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# "segment_id": datasets.Value("int16"), # TODO
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}
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)
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return datasets.DatasetInfo(
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citation=_CITATION,
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)
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def _split_generators(self, dl_manager):
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n_shards_path = dl_manager.download_and_extract(_N_SHARDS_FILE)
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with open(n_shards_path) as f:
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n_shards = json.load(f)
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audio_urls = defaultdict(dict)
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for lang in self.config.languages:
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for split in ["train", "test", "dev"]:
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audio_urls[split][lang] = [_AUDIO_ARCHIVE_PATH.format(lang=lang, split=split, n_shard=i) for i in range(n_shards[lang][split])]
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meta_urls = defaultdict(dict)
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for split in ["train", "test", "dev"]:
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meta_urls[split][lang] = _METADATA_PATH.format(lang=lang, split=split)
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# dl_manager.download_config.num_proc = len(urls)
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meta_paths = dl_manager.download_and_extract(meta_urls)
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audio_paths = dl_manager.download(audio_urls)
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local_extracted_audio_paths = (
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dl_manager.extract(audio_paths) if not dl_manager.is_streaming else
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{
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"train": [None] * len(audio_paths["train"]),
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"dev": [None] * len(audio_paths["dev"]),
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"test": [None] * len(audio_paths["test"]),
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}
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)
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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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"audio_archives": {lang: [dl_manager.iter_archive(archive) for archive in lang_archives] for lang, lang_archives
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in audio_paths["train"].items()},
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"local_extracted_audio_archives_paths": local_extracted_audio_paths["train"] if local_extracted_audio_paths else None,
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"metadata_paths": meta_paths["train"],
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}
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),
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datasets.SplitGenerator(
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name=datasets.Split.VALIDATION,
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gen_kwargs={
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"audio_archives": {lang: [dl_manager.iter_archive(archive) for archive in lang_archives] for lang, lang_archives
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in audio_paths["dev"].items()},
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"local_extracted_audio_archives_paths": local_extracted_audio_paths["dev"] if local_extracted_audio_paths else None,
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"metadata_paths": meta_paths["dev"],
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}
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),
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datasets.SplitGenerator(
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name=datasets.Split.TEST,
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gen_kwargs={
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"audio_archives": {lang: [dl_manager.iter_archive(archive) for archive in lang_archives] for lang, lang_archives
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in audio_paths["test"].items()},
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"local_extracted_audio_archives_paths": local_extracted_audio_paths["test"] if local_extracted_audio_paths else None,
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"metadata_paths": meta_paths["test"],
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}
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),
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]
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def _generate_examples(self, audio_archives, local_extracted_audio_archives_paths, metadata_paths):
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assert len(metadata_paths) == len(audio_archives)
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for lang in self.config.languages:
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meta_path = metadata_paths[lang]
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with open(meta_path) as f:
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metadata = {x["id"]: x for x in csv.DictReader(f, delimiter="\t")}
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for audio_archive, local_extracted_audio_archive_path in zip(audio_archives[lang], local_extracted_audio_archives_paths[lang]):
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for audio_filename, audio_file in audio_archive:
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audio_id = audio_filename.split(os.sep)[-1].split(".wav")[0]
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path = os.path.join(local_extracted_audio_archive_path, audio_filename) if local_extracted_audio_archive_path else audio_filename
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yield audio_id, {
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"path": path,
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"language": lang,
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"raw_text": metadata[audio_id]["raw_text"],
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"normalized_text": metadata[audio_id]["normalized_text"],
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"audio": {"path": path, "bytes": audio_file.read()}
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}
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