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局部感受野的宽度学习算法及其应用

Guoqiang LI, Lizhuang XU

Computer Engineering and Applications(2020)

Cited 1|Views5
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Abstract
为了更快且更准确地对图像进行识别,提出了基于局部感受野的宽度学习算法(Local Receptive Field based Broad Learning System,BLS-LRF),该方法以宽度学习网(Broad Learning System,BLS)为基础模型,与局部感受野(LRF)的思想相结合,从局部特征和全局特征两方面对图像进行特征提取.采用两种图像数据集对网络进行研究,将研究结果和许多传统神经网络进行对比,结果表明BLS-LRF网络的测试精度不仅超过了传统网络的测试精度,而且训练过程所需要的时间有了很大程度的缩短.
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