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A new representation of shape and its use for high performance in online Arabic character recognition by an associative memory

机译:形状记忆的一种新表示形式及其在联想记忆在线阿拉伯字符识别中的高性能应用

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The purpose of this study is to investigate a new representation of shape and its use in handwritten online character recognition by a Kohonen associative memory. This representation is based on the empirical distribution of features such as tangents and tangent differences at regularly spaced points along the character signal. Recognition is carried out by a Kohonen neural network trained using the representation. In addition to the Euclidean distance traditionally used in the Kohonen training algorithm to measure the similarities among feature vectors, we also investigate the Kullback-Leibler divergence and the Hellinger distance, functions that measure distance between distributions. Furthermore, we perform operations (pruning and filtering) on the trained memory to improve its classification potency. We report on extensive experiments using a database of online Arabic characters produced without constraints by a large number of writers. Comparative results show the pertinence of the representation and the superior performance of the scheme.
机译:这项研究的目的是研究一种新的形状表示形式,并将其用于Kohonen联想记忆的手写在线字符识别中。此表示基于沿字符信号的规则间隔点处的特征(如切线和切线差)的经验分布。识别是通过使用表示训练的Kohonen神经网络进行的。除了在Kohonen训练算法中传统上用于测量特征向量之间相似度的欧几里得距离之外,我们还研究了测量分布之间距离的Kullback-Leibler散度和Hellinger距离。此外,我们对受过训练的内存执行操作(修剪和过滤)以提高其分类效能。我们报告了使用大量阿拉伯作家不受限制的在线阿拉伯字符数据库进行的广泛实验。比较结果表明了该方案的针对性和优越的性能。

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