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Handwritten Bangla Word Recognition Using HOG Descriptor

机译:手写的bangla word识别使用猪描述符

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The holistic approaches for handwritten word recognition treat the words as single, indivisible entity and attempt to recognize words from their overall shape. In the present work, a novel technique to recognize handwritten Bangla word is proposed. Histograms of Oriented Gradients (HOG) are used as the feature set to represent each word sample at the feature space and a neural network based classifier is applied to classify the word images. On the basis of the HOG feature set, the performance achieved by the technique on a small dataset is quite satisfactory.
机译:手写字识别的整体方法将单词视为单一,不可分割的实体,并尝试识别它们整体形状的单词。在目前的工作中,提出了一种识别手写孟加拉词的新技术。取向梯度(HOG)的直方图用作特征集,以表示特征空间处的每个单词样本,并且应用基于神经网络的分类器来分类字图像。在猪功能集的基础上,通过小型数据集的技术实现的性能非常令人满意。

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