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Multiple Hidden Markov Model Post Processed with Support Vector Machine to Recognize English Handwritten Numerals

机译:使用支持向量机处理的多个隐藏的马尔可夫模型帖子识别英语手写的数字

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摘要

This paper presents rotation and size invariant English numerals recognition system with, competitive recognition rate. The novelty of this paper is the introduction of two unique methods of feature extraction namely Pixel Moment of Inertia (PMI) and Delta Distance Coding (DDC). The proposed Multiple Hidden Markov Model (MHMM) is a two tier model to neutralize the effect of two very frequent writing styles of numerals '4' and '7' on their recognition rates. The novelty of PMI is that it finds moment of all the pixels of a specified zone about the central pixel and not about geometrical centroid of image area. In this paper, PMI has been observed to have an upper hand over centroidal MI. DDC is a new technique of curvature coding, based on distance from a reference level and is similar to the logic behind Delta modulation scheme in Digital Communications. Thus, the current paper correlates two digital domains namely, Digital Image Processing and Digital Communications. Support Vector Machine differentiates two close output classes obtained from classification with MHMM. The overall recognition accuracy rate of 99.17% has been achieved based on MNIST database.
机译:本文介绍了具有竞争性识别率的旋转和尺寸不变的英语数字识别系统。本文的新颖性是引入了两种独特的特征提取方法,即惯性惯量(PMI)和三角形距离编码(DDC)。所提出的多个隐藏马尔可夫模型(MHMM)是一个两层模型,用于在其识别率上中和两种非常频繁地写入标号的两种非常频繁的写作风格的效果。 PMI的新颖性是它发现了关于中心像素的指定区域的所有像素的时刻,而不是关于图像区域的几何质心。在本文中,已观察到PMI具有上手覆盖质心MI。 DDC是一种新的曲率编码技术,基于与参考水平的距离,并且类似于数字通信中的Delta调制方案后面的逻辑。因此,目前的纸张包括两个数字域,即数字图像处理和数字通信。支持向量机与MHMM分类区分了两个关闭输出类。基于MNIST数据库实现了99.17%的整体识别准确率。

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