WI-TMLEGA: Weight Initialization and Training Method Based on Entropy Gain and Learning Rate Adjustment

Author:

Tang Hongchuan1,Li Zhongguo1,Wang Qi12,Fan Wenbin3

Affiliation:

1. School of Mechanical Engineering, Jiangsu University of Science and Technology, Zhenjiang 212100, China

2. School of Automotive Engineering, Nantong Institute of Technology, Nantong 226001, China

3. Jiangsu JBPV Intelligent Equipment Co., Ltd., Zhangjiagang 215634, China

Abstract

Addressing the issues of prolonged training times and low recognition rates in large model applications, this paper proposes a weight training method based on entropy gain for weight initialization and dynamic adjustment of the learning rate using the multilayer perceptron (MLP) model as an example. Initially, entropy gain was used to replace random initial values for weight initialization. Subsequently, an incremental learning rate strategy was employed for weight updates. The model was trained and validated using the MNIST handwritten digit dataset. The experimental results showed that, compared to random initialization, the proposed initialization method improves training effectiveness by 39.8% and increases the maximum recognition accuracy by 8.9%, demonstrating the feasibility of this method in large model applications.

Funder

Key Research and Development Program of Jiangsu Province

Zhangjiagang Science and Technology Planning Project

Nantong Institute of Technology

Publisher

MDPI AG

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