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A Comparative Analysis on Online Handwritten Strokes Classification Using Online Learning

机译:基于在线学习的在线手写笔划分类的比较分析

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The online handwriting recognition is recognition of handwritten data through the machine using a digital pen. The online learning includes training of the classifier with test data and the test data becomes part of a training model for next test data. We have done a novel study first in this direction to experiment online learning with online handwritten strokes. The experimentation carried out with benchmarked datasets as unipen and online handwritten Gurmukhi script strokes including 12,477 and 26,572 samples, respectively. The tool used in experimentation is Libol which includes all the state of art algorithms for online learning. The results indicate that online learning could be a suitable choice for online handwriting recognition. The online learning is popular today for its use with large data and less computation time. The present study could be benefited for online handwriting recognition like applications in online learning environments.
机译:在线手写识别是使用数字笔通过机器识别手写数据。在线学习包括使用测试数据对分类器进行训练,并且测试数据成为下一个测试数据的训练模型的一部分。我们首先在这个方向上进行了一项新颖的研究,以尝试使用在线手写笔画进行在线学习。实验使用基准数据集(如Unipen和在线手写的Gurmukhi笔画)进行,分别包含12,477和26,572个样本。实验中使用的工具是Libol,其中包括用于在线学习的所有最新算法。结果表明,在线学习可能是在线手写识别的合适选择。如今,在线学习以其大数据量和更少的计算时间而广受欢迎。本研究可能有益于在线手写识别,例如在在线学习环境中的应用。

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