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Extraction of affine invariant features for shape recognition based on ant colony optimization

机译:基于蚁群优化的仿射不变特征提取用于形状识别

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摘要

A new approach to extraction of affine invariant features of contour image and matching strategy is proposed for shape recognition. Firstly, the centroid distance and azimuth angle of each boundary point are computed. Then, with a prior-defined angle interval, all the points in the neighbor region of the sample point are considered to calculate the average distance for eliminating noise. After that, the centroid distance ratios (CDRs) of any two opposite contour points to the barycenter are achieved as the representation of the shape, which will be invariant to affine transformation. Since the angles of contour points will change non-linearly among affine related images, the CDRs should be re-sampled and combined sequentially to build one-by-one matching pairs of the corresponding points. The core issue is how to determine the angle positions for sampling, which can be regarded as an optimization problem of path planning. An ant colony optimization (ACO)-based path planning model with some constraints is presented to address this problem. Finally, the Euclidean distance is adopted to evaluate the similarity of shape features in different images. The experimental results demonstrate the efficiency of the proposed method in shape recognition with translation, scaling, rotation and distortion.
机译:提出了一种轮廓图像仿射不变性特征提取和匹配策略的新方法。首先,计算每个边界点的质心距离和方位角。然后,以预先定义的角度间隔,考虑采样点相邻区域中的所有点,以计算平均距离以消除噪声。之后,获得任意两个相对轮廓点到重心的质心距离比(CDR)作为形状的表示,这对于仿射变换将是不变的。由于轮廓点的角度将在仿射相关图像之间发生非线性变化,因此应该对CDR重新采样并顺序组合以建立一对一的对应点匹配对。核心问题是如何确定采样角度位置,可以将其视为路径规划的优化问题。提出了一种基于蚁群优化(ACO)的路径规划模型,该模型具有一些约束条件来解决此问题。最后,采用欧氏距离来评估不同图像中形状特征的相似度。实验结果证明了该方法在平移,缩放,旋转和变形的形状识别中的有效性。

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