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import os |
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from typing import Union |
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import datasets |
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_DESCRIPTION = """\ |
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Dusha is a bi-modal corpus suitable for speech emotion recognition (SER) tasks. |
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The dataset consists of audio recordings with Russian speech and their emotional labels. |
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The corpus contains approximately 350 hours of data. Four basic emotions that usually appear in a dialog with |
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a virtual assistant were selected: Happiness (Positive), Sadness, Anger and Neutral emotion. |
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""" |
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_HOMEPAGE = "https://github.com/salute-developers/golos/tree/master/dusha#dusha-dataset" |
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_DATA_URL = "https://huggingface.co/datasets/KELONMYOSA/dusha_emotion_audio/resolve/main/data.zip" |
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_METADATA_URL = "https://huggingface.co/datasets/KELONMYOSA/dusha_emotion_audio/resolve/main/data.csv" |
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class Dusha(datasets.GeneratorBasedBuilder): |
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DEFAULT_WRITER_BATCH_SIZE = 256 |
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def _info(self): |
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return datasets.DatasetInfo( |
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description=_DESCRIPTION, |
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features=datasets.Features( |
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{ |
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"path": datasets.Value("string"), |
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"audio": datasets.Audio(sampling_rate=16_000), |
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"label": datasets.Value("string"), |
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} |
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), |
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supervised_keys=None, |
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homepage=_HOMEPAGE, |
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) |
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def _split_generators(self, dl_manager): |
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metadata = dl_manager.download(_METADATA_URL) |
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archive = dl_manager.download(_DATA_URL) |
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return [datasets.SplitGenerator( |
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name=datasets.Split.TRAIN, |
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gen_kwargs={ |
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"audio_files": dl_manager.iter_archive(archive), |
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"metadata": metadata}, |
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)] |
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def _generate_examples(self, audio_files: Union[str, os.PathLike], metadata: str): |
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examples = dict() |
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with open(metadata) as f: |
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for row in f: |
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data = row.split(",") |
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audio_path = data[0] |
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label = data[1] |
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res = dict() |
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res["path"] = os.path.join(audio_files, audio_path) |
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res["label"] = label |
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examples[audio_path] = res |
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key = 0 |
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for path, f in audio_files: |
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if path in examples: |
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audio = {"path": path, "bytes": f.read()} |
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yield key, {**examples[path], "audio": audio} |
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key += 1 |
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