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Titlebook: Geometry of Deep Learning; A Signal Processing Jong Chul Ye Textbook 2022 The Editor(s) (if applicable) and The Author(s), under exclusive

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41#
發(fā)表于 2025-3-28 15:38:01 | 只看該作者
Geometry of Deep Neural Networks neural network learn? How does a deep neural network, especially a CNN, accomplish these goals? The full answer to these basic questions is still a long way off. Here are some of the insights we’ve obtained while traveling towards that destination. In particular, we explain why the classic approach
42#
發(fā)表于 2025-3-28 20:00:28 | 只看該作者
Deep Learning Optimizationally gradient-based local update schemes. However, the biggest obstacle recognized by the entire community is that the loss surfaces of deep neural networks are extremely non-convex and not even smooth. This non-convexity and non-smoothness make the optimization unaffordable to analyze, and the main
43#
發(fā)表于 2025-3-28 22:54:33 | 只看該作者
44#
發(fā)表于 2025-3-29 03:53:22 | 只看該作者
Summary and Outlookrevolution”. Despite the great successes of deep learning in various areas, there is a tremendous lack of rigorous mathematical foundations which enable us to understand why deep learning methods perform well.
45#
發(fā)表于 2025-3-29 08:27:54 | 只看該作者
46#
發(fā)表于 2025-3-29 13:42:43 | 只看該作者
47#
發(fā)表于 2025-3-29 17:59:58 | 只看該作者
tworks are extremely non-convex and not even smooth. This non-convexity and non-smoothness make the optimization unaffordable to analyze, and the main concern was whether popular gradient-based approaches might fall into local minimizers.
48#
發(fā)表于 2025-3-29 23:09:37 | 只看該作者
49#
發(fā)表于 2025-3-30 00:04:54 | 只看該作者
50#
發(fā)表于 2025-3-30 05:14:25 | 只看該作者
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