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An Improved Handwritten Word Recognition Rate of South Indian Kannada Words Using Better Feature Extraction Approach

机译:利用更好的特征提取方法改进了南印度坎卡达词的手写词识别率

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Ever since the evolution of communication in human day to day activities, hand writing has gained its own impact and popularity. Therefore, Handwritten Word Recognition (HWR) is quite challenging due to heavy variations of writing style, different size and shape of the character by various writers. Accuracy and efficiency are the major parameters in the field of handwritten character recognition. However, with the progress in technology, human computer interactions have become a mandatory process to carry on the fast and dynamic demanding activities of the everyday cycle. This paper thus throws light on an effective recognition process for the handwritten word recognition. The HWR is carried out in 3 stages. In the first stage, preprocessing removes the unwanted data like noise and the second stage extracts the best features such as the sharp corners, curves and loops and finally the third stage of the process classifies the image under the correct matching class using the Euclidean distance based classifier. This process is implemented and the results indicate an improved accuracy and efficient recognition rate.
机译:自从人类日到日活动中的沟通演变以来,手写已经获得了自己的影响和普及。因此,由于书写风格,特征的不同尺寸和形状由各种作家的繁重变化,手写字识别(HWR)非常具有挑战性。准确性和效率是手写字符识别领域的主要参数。然而,随着技术的进展,人机互动已成为携带日常周期快速和动态苛刻活动的强制性过程。因此,本文对手写字识别的有效识别过程抛出了光。 HWR在3个阶段进行。在第一阶段,预处理消除了噪声的不需要的数据,第二阶段提取诸如尖角,曲线和循环的最佳特征,并且最后使用基于欧几里德距离在正确的匹配类下分类图像的第三阶段分类器。实现该过程,结果表明了提高的准确性和高效识别率。

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