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FISST Based Method for Multi-Target Tracking in the Image Plane of Optical Sensors

机译:基于FISST的光学传感器图像平面多目标跟踪方法

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A finite set statistics (FISST)-based method is proposed for multi-target tracking in the image plane of optical sensors. The method involves using signal amplitude information in probability hypothesis density (PHD) filter which is derived from FISST to improve multi-target tracking performance. The amplitude of signals generated by the optical sensor is modeled first, from which the amplitude likelihood ratio between target and clutter is derived. An alternative approach is adopted for the situations where the signal noise ratio (SNR) of target is unknown. Then the PHD recursion equations incorporated with signal information are derived and the Gaussian mixture (GM) implementation of this filter is given. Simulation results demonstrate that the proposed method achieves significantly better performance than the generic PHD filter. Moreover, our method has much lower computational complexity in the scenario with high SNR and dense clutter.
机译:提出了一种基于有限集统计(FISST)的光学传感器图像平面多目标跟踪方法。该方法涉及在源自FISST的概率假设密度(PHD)滤波器中使用信号幅度信息,以改善多目标跟踪性能。首先对由光学传感器生成的信号的幅度进行建模,然后得出目标与杂波之间的幅度似然比。对于目标的信号噪声比(SNR)未知的情况,可以采用另一种方法。然后推导结合了信号信息的PHD递推方程,并给出了该滤波器的高斯混合(GM)实现。仿真结果表明,所提出的方法比通用PHD滤波器具有更好的性能。此外,在具有高SNR和密集杂波的情况下,我们的方法的计算复杂度要低得多。

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