2024
DOI: 10.3389/fnins.2024.1362510
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An analytical approach for unsupervised learning rate estimation using rectified linear units

Chaoxiang Chen,
Vladimir Golovko,
Aliaksandr Kroshchanka
et al.

Abstract: Unsupervised learning based on restricted Boltzmann machine or autoencoders has become an important research domain in the area of neural networks. In this paper mathematical expressions to adaptive learning step calculation for RBM with ReLU transfer function are proposed. As a result, we can automatically estimate the step size that minimizes the loss function of the neural network and correspondingly update the learning step in every iteration. We give a theoretical justification for the proposed adaptive l… Show more

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