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How Important is Global Structure for Characters?

机译:全球结构是有多重要的人物?

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This paper studies the importance of the features that represent the global structure of character strokes to character recognition. Most existing character recognition methods based on character stroke features utilize a set or a sequence of local features such as xy-coordinates and local direction of strokes. This is natural from the viewpoint that each stroke is a trajectory and thus can be represented as a sequence of local features. This viewpoint, however, has a clear limitation in that local features cannot deal with global structure directly. For example, the sequence of local features cannot deal with the fact that the two end points of character "0" should be close to each other. In this paper we propose a simple and novel global feature that describes the global structure of the character shape of each class. We prove the importance of the global feature through a feature selection experiment. Specifically, we show that the global features are more often selected than local features to enhance classification accuracy under the AdaBoost-based machine learning framework. Recognition experiments using online numeral data show also that the use of global features improves recognition accuracy.
机译:本文研究了代表字符识别的全球性招步结构的功能的重要性。基于字符笔划特征的大多数现有字符识别方法利用诸如XY坐标和行程的局部方向的集合或一系列本地特征。这是从每个行程是轨迹的观点来源的自然,因此可以表示为局部特征的序列。然而,此观点在本地功能不能直接处理全局结构的情况下具有明显的限制。例如,本地特征的序列无法处理特征“0”的两个端点应该彼此接近。在本文中,我们提出了一种简单而新的全局功能,描述了每个类的字符形状的全局结构。我们通过特征选择实验证明了全局功能的重要性。具体而言,我们表明全局特征比本地特征更常用,以提高基于Adaboost的机器学习框架下的分类准确性。使用在线数字数据的识别实验还显示使用全局功能提高了识别准确性。

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