2023
DOI: 10.3390/fractalfract7070500
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Fractional Gradient Optimizers for PyTorch: Enhancing GAN and BERT

Oscar Herrera-Alcántara,
Josué R. Castelán-Aguilar

Abstract: Machine learning is a branch of artificial intelligence that dates back more than 50 years. It is currently experiencing a boom in research and technological development. With the rise of machine learning, the need to propose improved optimizers has become more acute, leading to the search for new gradient-based optimizers. In this paper, the ancient concept of fractional derivatives has been applied to some optimizers available in PyTorch. A comparative study is presented to show how the fractional versions o… Show more

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Cited by 5 publications
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