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| | """VCTK dataset.""" |
| |
|
| |
|
| | import os |
| | import re |
| |
|
| | import datasets |
| | from datasets.tasks import AutomaticSpeechRecognition |
| |
|
| |
|
| | _CITATION = """\ |
| | @inproceedings{Veaux2017CSTRVC, |
| | title = {CSTR VCTK Corpus: English Multi-speaker Corpus for CSTR Voice Cloning Toolkit}, |
| | author = {Christophe Veaux and Junichi Yamagishi and Kirsten MacDonald}, |
| | year = 2017 |
| | } |
| | """ |
| |
|
| | _DESCRIPTION = """\ |
| | The CSTR VCTK Corpus includes speech data uttered by 110 English speakers with various accents. |
| | """ |
| |
|
| | _URL = "https://datashare.ed.ac.uk/handle/10283/3443" |
| | _DL_URL = "https://datashare.is.ed.ac.uk/bitstream/handle/10283/3443/VCTK-Corpus-0.92.zip" |
| |
|
| |
|
| | class VCTK(datasets.GeneratorBasedBuilder): |
| | """VCTK dataset.""" |
| |
|
| | VERSION = datasets.Version("0.9.2") |
| |
|
| | BUILDER_CONFIGS = [ |
| | datasets.BuilderConfig(name="main", version=VERSION, |
| | description="VCTK dataset"), |
| | ] |
| |
|
| | def _info(self): |
| | return datasets.DatasetInfo( |
| | description=_DESCRIPTION, |
| | features=datasets.Features( |
| | { |
| | "speaker_id": datasets.Value("string"), |
| | "audio": datasets.features.Audio(sampling_rate=48_000), |
| | "file": datasets.Value("string"), |
| | "text": datasets.Value("string"), |
| | "text_id": datasets.Value("string"), |
| | "age": datasets.Value("string"), |
| | "gender": datasets.Value("string"), |
| | "accent": datasets.Value("string"), |
| | "region": datasets.Value("string"), |
| | "comment": datasets.Value("string"), |
| | } |
| | ), |
| | supervised_keys=("file", "text"), |
| | homepage=_URL, |
| | citation=_CITATION, |
| | task_templates=[AutomaticSpeechRecognition( |
| | audio_column="audio", transcription_column="text")], |
| | ) |
| |
|
| | def _split_generators(self, dl_manager): |
| | if self.config.data_files: |
| | root_path = self.config.data_files |
| | else: |
| | root_path = _DL_URL |
| | root_path = dl_manager.download_and_extract(root_path) |
| |
|
| | if isinstance(root_path,dict): |
| | root_path = root_path['train'][0] |
| |
|
| | return [ |
| | datasets.SplitGenerator(name=datasets.Split.TRAIN, gen_kwargs={ |
| | "root_path": root_path}), |
| | ] |
| |
|
| | def _generate_examples(self, root_path): |
| | """Generate examples from the VCTK corpus root path.""" |
| |
|
| | meta_path = os.path.join(root_path, "speaker-info.txt") |
| | txt_root = os.path.join(root_path, "txt") |
| | wav_root = os.path.join(root_path, "wav48_silence_trimmed") |
| | |
| | fields = ["speaker_id", "age", "gender", "accent", "region"] |
| |
|
| | key = 0 |
| | with open(meta_path, encoding="utf-8") as meta_file: |
| | _ = next(iter(meta_file)) |
| | for line in meta_file: |
| | data = {} |
| | line = line.strip() |
| | search = re.search(r"\(.*\)", line) |
| | if search is None: |
| | data["comment"] = "" |
| | else: |
| | start, _ = search.span() |
| | data["comment"] = line[start:] |
| | line = line[:start] |
| | values = line.split() |
| | for i, field in enumerate(fields): |
| | if field == "region": |
| | data[field] = " ".join(values[i:]) |
| | else: |
| | data[field] = values[i] if i < len(values) else "" |
| | speaker_id = data["speaker_id"] |
| | speaker_txt_path = os.path.join(txt_root, speaker_id) |
| | speaker_wav_path = os.path.join(wav_root, speaker_id) |
| | |
| | if not os.path.exists(speaker_txt_path): |
| | continue |
| | for txt_file in sorted(os.listdir(speaker_txt_path)): |
| | filename, _ = os.path.splitext(txt_file) |
| | _, text_id = filename.split("_") |
| | for i in [1, 2]: |
| | wav_file = os.path.join( |
| | speaker_wav_path, f"{filename}_mic{i}.flac") |
| | |
| | if not os.path.exists(wav_file): |
| | continue |
| | with open(os.path.join(speaker_txt_path, txt_file), encoding="utf-8") as text_file: |
| | text = text_file.readline().strip() |
| | more_data = { |
| | "file": wav_file, |
| | "audio": wav_file, |
| | "text": text, |
| | "text_id": text_id, |
| | } |
| | yield key, {**data, **more_data} |
| | key += 1 |
| |
|