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卷积神经网络在手写字符识别中的应用
引用本文:丁 蒙,戴曙光,于 恒.卷积神经网络在手写字符识别中的应用[J].教育技术导刊,2020,19(1):275-279.
作者姓名:丁 蒙  戴曙光  于 恒
作者单位:上海理工大学 光电信息与计算机工程学院,上海 20093
摘    要:随着人工智能的发展,计算机对于输入的手写字符识别需求越来越大,采用改进的卷积神经网络对手写字符进行识别分类。用VGGNet16模型构造卷积神经网络模型,每一层都加上批标准化,通过平均值池化对卷积层进行下采样,利用PRELU激活函数代替ReLU激活函数,最后通过Softmax分类器对手写字符图像进行分类。在MNIST手写数字数据集和EMNIST-bymerge手写字母及数字数据集下进行实验,改进的卷积神经网络模型在MNIST数据集中识别准确率提升到99.65%,在EMNIST数据集中识别准确率为90.37%。因此,改进模型识别准确率较高,适用于手写字符识别。

关 键 词:人工智能  卷积神经网络  手写字符识别  全局平均池化  
收稿时间:2019-04-15

Application of Improved Deep Convolutional Neural Network in Handwritten Character Recognition
DING Meng,DAI Shu-guang,YU Heng.Application of Improved Deep Convolutional Neural Network in Handwritten Character Recognition[J].Introduction of Educational Technology,2020,19(1):275-279.
Authors:DING Meng  DAI Shu-guang  YU Heng
Institution:School of Optical-Electrical and Computer Engineering,University of ShangHai for Science and Technology,Shanghai 20093,China
Abstract:With the development of artificial intelligence, the demand for handwritten character recognition by computer is increasing. This paper uses the improved convolutional neural network to identify and classify handwritten characters. Firstly, the convolutional neural network model is constructed by VGGNet16 model. Each layer is batch-normalized, we use average pooling to downsample the convolutional layer, and the PRELU activation function is used to replace the ReLU activation function. Finally, the handwritten character image is classified by Softmax classifier. Experiments were carried out under the MNIST handwritten digital dataset and the EMNIST-bymerge handwritten character and digital dataset dataset. The improved convolutional neural network model improved the recognition accuracy in the MNIST dataset to 99.65%, and the recognition accuracy in the EMNIST dataset reached 90.37%. Therefore, the improved model has a higher recognition accuracy and is suitable for handwritten character recognition.
Keywords:artificial intelligence  convolutional neural network  handwritten character recognition  global average pooling  
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