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首页> 外文期刊>International journal of applied mathematics and computer science >Efficient online handwritten Chinese character recognition system using a two-dimensional functional relationship model
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Efficient online handwritten Chinese character recognition system using a two-dimensional functional relationship model

机译:二维功能关系模型的高效在线手写汉字识别系统

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This paper presents novel feature extraction and classification methods for online handwritten Chinese character recognition (HCCR). The X-graph and Y-graph transformation is proposed for deriving a feature, which shows useful properties such as invariance to different writing styles. Central to the proposed method is the idea of capturing the geometrical and topological information from the trajectory of the handwritten character using the X-graph and the Y-graph. For feature size reduction, the Haar wavelet transformation was applied on the graphs. For classification, the coefficient of determination (R2p) from the two-dimensional unreplicated linear functional relationship model is proposed as a similarity measure. The proposed methods show strong discrimination power when handling problems related to size, position and slant variation, stroke shape deformation, close resemblance of characters, and non-normalization. The proposed recognition system is applied to a database with 3000 frequently used Chinese characters, yielding a high recognition rate of 97.4% with reduced processing time of 75.31%, 73.05%, 58.27% and 40.69% when compared with recognition systems using the city block distance with deviation (CBDD), the minimum distance (MD), the compound Mahalanobis function (CMF) and the modified quadratic discriminant function (MQDF), respectively. High precision rates were also achieved.
机译:本文提出了在线手写汉字识别(HCCR)的新颖特征提取和分类方法。提出了X图和Y图变换来推导特征,该特征显示出有用的属性,例如对不同书写样式的不变性。提出的方法的中心思想是使用X线图和Y线图从手写字符的轨迹中捕获几何和拓扑信息。为了减少特征尺寸,将Haar小波变换应用于图形。为了进行分类,提出了基于二维非复制线性函数关系模型的确定系数(R 2 p )作为相似性度量。当处理与尺寸,位置和倾斜变化,笔画形状变形,字符的相似度以及非归一化有关的问题时,提出的方法显示出强大的辨别力。所提出的识别系统应用于具有3000个常用汉字的数据库,与使用城市街区距离的识别系统相比,识别率高达97.4%,处理时间减少了75.31%,73.05%,58.27%和40.69%。分别具有偏差(CBDD),最小距离(MD),复合马哈拉诺比斯函数(CMF)和改进的二次判别函数(MQDF)。还实现了高精度。

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