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Titlebook: Data Science and Emerging Technologies; Proceedings of DaSET Yap Bee Wah,Dhiya Al-Jumeily OBE,Michael W. Berry Conference proceedings 2024

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楼主: endocarditis
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https://doi.org/10.1007/b138337or the KNN classifier which performed poorly getting the macro-average F1-score of 21%. BERT classifier with Ekman taxonomy including neutral emotion had a macro-average precision of 55% and a sensitivity of 68%. This classifier also outperformed the macro-average F1-score by 106 61%. While the RoBE
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Multi-aspect Extraction in Indonesian Reviews Through Multi-label Classification Using Pre-trained Bnships. In the experiment, we conducted the tests with various Indonesian pre-trained BERT models to enhance the performance of multi-aspect extraction on Indonesian hotel reviews. Our findings indicate that . pre-trained model can improve the classifier performance and achieve an impressive F1-scor
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