Tìm kiếm theo: Tác giả Amany M., Sarhan

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  • Tác giả : Mohamed, Reyad; Amany M., Sarhan; M., Arafa;  Người hướng dẫn: -;  Đồng tác giả: - (2023)

    Deep Neural Networks (DNNs) are widely regarded as the most effective learning tool for dealing with large datasets, and they have been successfully used in thousands of applications in a variety of fields. Based on these large datasets, they are trained to learn the relationships between various variables. The adaptive moment estimation (Adam) algorithm, a highly efficient adaptive optimization algorithm, is widely used as a learning algorithm in various fields for training DNN models. However, it needs to improve its generalization performance, especially when training with large-scale datasets. Therefore, in this paper, we propose HN Adam, a modified version of the Adam Algorithm, ...