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ADI-20: Arabic Dialect Identification dataset and models

About

We present ADI-20, an extension of the previously published ADI-17 Arabic Dialect Identification (ADI) dataset. ADI-20 covers all Arabic-speaking countries' dialects. It comprises 3,556 hours from 19 Arabic dialects in addition to Modern Standard Arabic (MSA). We used this dataset to train and evaluate various state-of-the-art ADI systems. We explored fine-tuning pre-trained ECAPA-TDNN-based models, as well as Whisper encoder blocks coupled with an attention pooling layer and a classification dense layer. We investigated the effect of (i) training data size and (ii) the model's number of parameters on identification performance. Our results show a small decrease in F1 score while using only 30% of the original training data. We open-source our collected data and trained models to enable the reproduction of our work, as well as support further research in ADI.

Haroun Elleuch, Salima Mdhaffar, Yannick Est\`eve, Fethi Bougares• 2025

Related benchmarks

TaskDatasetResultRank
Dialect IdentificationADI 17 (test)
F1 (weighted)95.46
9
Dialect IdentificationCasablanca (test)
F1 (weighted)53.84
8
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