Comparación de dos métodos para reconocimiento de dígitos manuscritos fuera de línea

María Cristina Guevara Neri, Osslan O. Vergara Villegas, Vianey Guadalupe Cruz Sánchez, J. H. S. Azuela
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Abstract

In this paper, the results of the comparison between two off-line handwritten digits recognition methods are presented. The first method is a network of perceptrons with which the images were classified after making a comparison by pairs of classes; the second, is a new method that performs a pixel by pixel comparison between the image to be classified, and the reference images. For the tests, a subset of 450 images from the MNIST database was used. Each method was evaluated in two parts: first, with a set of 100 training images, and second, with a set of 350 test images. With the first classifier, an accuracy of 93.86% was obtained, and with the second, an accuracy of 95.14%. After the analysis of the results, it is shown that the second method outperformed the first. The strength of the new method lies mainly in its robustness and execution time.
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两种离线手写数字识别方法的比较
本文给出了两种离线手写体数字识别方法的比较结果。第一种方法是一个感知器网络,通过对类进行比较后对图像进行分类;第二种方法是将待分类图像与参考图像逐像素进行比较。对于测试,使用了来自MNIST数据库的450个图像子集。每种方法分为两部分进行评估:第一部分使用一组100张训练图像,第二部分使用一组350张测试图像。第一种分类器的准确率为93.86%,第二种分类器的准确率为95.14%。分析结果表明,第二种方法优于第一种方法。新方法的优点主要体现在鲁棒性和执行时间上。
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