Convolutional neural network architecture for hand gesture recognition

J. Arenas, Paula C. Useche Murillo, Robinson Jimenez Moreno
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引用次数: 8

Abstract

This paper presents the design of a convolutional neural network architecture using the MatConvNet library for MATLAB in order to achieve the recognition of 2 classes of hand gestures: ”open” and ”closed”. Six architectures were implemented to which their hyperparameters and depth were varied to observe their behavior through the validation error in the training and accuracy in the estimation of each one of the set classes, which was evaluated by a matrix of confusion. Given each of these results, the neural network with the best performance was chosen.
用于手势识别的卷积神经网络架构
本文利用MATLAB的MatConvNet库设计了一种卷积神经网络体系结构,以实现对“开放”和“封闭”两类手势的识别。实现了六种结构,通过改变它们的超参数和深度来观察它们的行为,通过训练中的验证误差和每个集类估计的准确性,通过混淆矩阵来评估。根据这些结果,选择性能最好的神经网络。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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