Recognition of Kannada characters extracted from scene images

DAR '12 Pub Date : 2012-12-16 DOI:10.1145/2432553.2432557
D. Kumar, A. Ramakrishnan
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引用次数: 10

Abstract

In this paper, we describe a method for feature extraction and classification of characters manually isolated from scene or natural images. Characters in a scene image may be affected by low resolution, uneven illumination or occlusion. We propose a novel method to perform binarization on gray scale images by minimizing energy functional. Discrete Cosine Transform and Angular Radial Transform are used to extract the features from characters after normalization for scale and translation. We have evaluated our method on the complete test set of Chars74k dataset for English and Kannada scripts consisting of handwritten and synthesized characters, as well as characters extracted from camera captured images. We utilize only synthesized and handwritten characters from this dataset as training set. Nearest neighbor classification is used in our experiments.
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从场景图像中提取卡纳达语字符的识别
在本文中,我们描述了一种从场景或自然图像中手动分离的特征提取和分类方法。场景图像中的人物可能受到低分辨率、不均匀光照或遮挡的影响。提出了一种利用最小化能量泛函对灰度图像进行二值化的新方法。分别使用离散余弦变换和角径向变换对归一化后的字符进行特征提取。我们在Chars74k数据集的完整测试集上对我们的方法进行了评估,该测试集包括英语和卡纳达语的手写和合成字符,以及从相机捕获的图像中提取的字符。我们只使用该数据集中的合成字符和手写字符作为训练集。在我们的实验中使用了最近邻分类。
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