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首页> 外文期刊>International Journal of Artificial Intelligence Tools: Architectures, Languages, Algorithms >Shape Classification Based on Geometric Features of Evolution Points via Sparse Representation
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Shape Classification Based on Geometric Features of Evolution Points via Sparse Representation

机译:基于进化点几何特征的稀疏表示形状分类

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In this paper, a novel shape descriptor for shape recognition is proposed. An evolutionary process is introduced in which a contour is reconstructed from the bounding circle of the shape. In this evolutionary process, circle points always move toward the shape in normal direction until they arrive at the shape contour. Three different descriptors are extracted from this process: the first descriptor is defined as the number of steps that every circle point should pass from circle to shape contour which is called evolution steps (ES). The second descriptor is considered as the boundary distance (BD) of the sample points at the end of the evolution process. The third descriptor is the mean of curvature of the evolution lines that are created by moving points, (MCEL). In matching stage, dynamic programming is employed to best matching between shapes. Finally, normalizing the features makes them to be invariant to scale. Sparse representation as a new framework for classification is applied in the recognition stage. The proposed descriptors are evaluated for task of shape recognition on several data sets. Experimental results demonstrate the advantaged performance of the proposed method in shape recognition.
机译:本文提出了一种用于形状识别的新型形状描述符。引入了一种进化过程,其中从形状的边界圆重建轮廓。在此演化过程中,圆点始终沿法线方向朝形状移动,直到它们到达形状轮廓为止。从此过程中提取了三个不同的描述符:第一个描述符定义为每个圆点从圆到形状轮廓应经过的步数,称为演化步(ES)。第二个描述符被视为演化过程结束时采样点的边界距离(BD)。第三个描述符是由移动点(MCEL)创建的演化线曲率的平均值。在匹配阶段,采用动态编程来最佳地匹配形状。最后,对特征进行归一化会使它们的尺寸不变。识别阶段将稀疏表示作为一种新的分类框架。对提出的描述符进行评估,以实现在多个数据集上进行形状识别的任务。实验结果证明了该方法在形状识别中的优越性能。

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