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Mean shift track initiation algorithm based on Hough transform

机译:基于Hough变换的平均移位轨道启动算法

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To solve the problem of initiating tracks for multi-target in dense clutters environment, a Mean shift track initiation algorithm based on Hough transform is proposed. In the algorithm, firstly, hough transform is applied to transform observation points from input space, referred to as feature space into curves in a special parameter space; then a Mean shift clustering algorithm is executed to cluster the items gained in the parameter space, and the problem of peak seeking is also solved adaptively. Furthermore, a fuzzy influential factor, which is based on the vote number of accumulation matrix and distance between items in the parameter space and clustering center, is defined to design kernel function of Mean shift; thus clutters are removed more effectively. Experimental results show that proposed algorithm has high detection accuracy and can initiate tracks effectively.
机译:为了解决致密杂质环境中的多目标轨道的启动问题,提出了一种基于Hough变换的平均移位轨道启动算法。在算法中,首先,霍夫变换应用于从输入空间转换观察点,称为特征空间,进入特殊参数空间中的曲线;然后执行平均移位聚类算法以聚类参数空间中获得的项目,并且峰值寻求问题也适自动化。此外,基于参数空间和聚类中心的项目之间的累积矩阵和距离的模糊影响因素被定义为设计平均移位的核函数;因此,更有效地除去折叠。实验结果表明,提出的算法具有高检测精度,可以有效启动曲目。

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