text
stringlengths 21
216
| file
stringlengths 30
32
| audio
sequencelengths 71.9k
513k
| sampling_rate
int64 40.1k
40.1k
| duration
float64 1.79
12.8
|
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ูููุซูุฑูููู .ููุฅูููู ุงููููุงุณู | ch_20_arabic_tts_dataset_20.wav | [0.00006103515625,-0.000030517578125,0.00006103515625,-0.000030517578125,-0.000030517578125,0.000061(...TRUNCATED) | 40,100 | 3.32 |
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ู
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ูุฒูุญู ูููู .ุฅููู ุงููู
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Dataset Summary
We present a speech corpus for Classical Arabic Text-to-Speech (ClArTTS) to support the development of end-to-end TTS systems for Arabic. The speech is extracted from a LibriVox audiobook, which is then processed, segmented, and manually transcribed and annotated. The final ClArTTS corpus contains about 12 hours of speech from a single male speaker sampled at 40100 kHz.
Dataset Structure
A typical data point comprises the name of the audio file, called 'file', its transcription, called text
, the audio as an array, called 'audio'. Some additional information; sampling rate and audio duration.
DatasetDict({
train: Dataset({
features: ['text', 'file', 'audio', 'sampling_rate', 'duration'],
num_rows: 9500
})
test: Dataset({
features: ['text', 'file', 'audio', 'sampling_rate', 'duration'],
num_rows: 205
})
})
Citation Information
@inproceedings{kulkarni2023clartts,
author={Ajinkya Kulkarni and Atharva Kulkarni and Sara Abedalmon'em Mohammad Shatnawi and Hanan Aldarmaki},
title={ClArTTS: An Open-Source Classical Arabic Text-to-Speech Corpus},
year={2023},
booktitle={2023 INTERSPEECH },
pages={5511--5515},
doi={10.21437/Interspeech.2023-2224}
}
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