The following hyperparameters were used during training:
learning_rate: 2e-05
train_batch_size: 32
eval_batch_size: 32
seed: 42
optimizer: Adam with betas=(0.9,0.999) and epsilon=1e-08
lr_scheduler_type: linear
num_epochs: 3.0
Results
It achieves the following results on the evaluation set:
F1: 0.8477
Precision: 0.7607
Recall: 0.957
Accuracy: 0.828
Loss: 0.6796
Framework versions
Transformers 4.10.3
Pytorch 1.9.0+cu111
Datasets 1.10.2
Tokenizers 0.10.1
Citation
If you use this model in your product or research, please cite as follows:
@article{Fitsum2021TiPLMs,
author={Fitsum Gaim and Wonsuk Yang and Jong C. Park},
title={Monolingual Pre-trained Language Models for Tigrinya},
year=2021,
publisher={WiNLP 2021/EMNLP 2021}
}
References
Tela, A., Woubie, A. and Hautamäki, V. 2020.
Transferring Monolingual Model to Low-Resource Language: The Case of Tigrinya.
ArXiv, abs/2006.07698.
Runs of fgaim tiroberta-sentiment on huggingface.co
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24-hour runs
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3-day runs
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7-day runs
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30-day runs
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