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Contour Based Shape Matching for Object Recognition

机译:基于轮廓的形状匹配用于目标识别

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To improve computational efficiency and solve the problem of low accuracy caused by geometric transformations and nonlinear deformations in the shape-based object recognition, a novel contour signature is proposed. This signature includes five types of invariants in different scales to obtain representative local and semi-global shape features. Then the Dynamic Programming algorithm is applied to shape matching to find the best correspondence between two shape contours. The experimental results validate that our methods is robust to rotation, scaling, occlusion, intra-class variations and articulated variations. Moreover, the superior shape matching and retrieval accuracy on benchmark datasets verifies the effectiveness of our method.
机译:为了提高计算效率,解决基于形状的目标识别中由于几何变换和非线性变形引起的精度低的问题,提出了一种新颖的轮廓签名方法。该签名包括五种不同尺度的不变量,以获得代表性的局部和半全局形状特征。然后将动态规划算法应用于形状匹配,以找到两个形状轮廓之间的最佳对应关系。实验结果验证了我们的方法对旋转,缩放,遮挡,类内变异和关节变异具有鲁棒性。此外,基准数据集上出色的形状匹配和检索精度证明了我们方法的有效性。

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