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Detection and Tracking of a Moving Target Using SAR Images with the Particle Filter-Based Track-Before-Detect Algorithm

机译:基于粒子滤波的事前检测算法利用SAR图像对运动目标进行检测与跟踪

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摘要

A novel approach to detecting and tracking a moving target using synthetic aperture radar (SAR) images is proposed in this paper. Achieved with the particle filter (PF) based track-before-detect (TBD) algorithm, the approach is capable of detecting and tracking the low signal-to-noise ratio (SNR) moving target with SAR systems, which the traditional track-after-detect (TAD) approach is inadequate for. By incorporating the signal model of the SAR moving target into the algorithm, the ambiguity in target azimuth position and radial velocity is resolved while tracking, which leads directly to the true estimation. With the sub-area substituted for the whole area to calculate the likelihood ratio and a pertinent choice of the number of particles, the computational efficiency is improved with little loss in the detection and tracking performance. The feasibility of the approach is validated and the performance is evaluated with Monte Carlo trials. It is demonstrated that the proposed approach is capable to detect and track a moving target with SNR as low as 7 dB, and outperforms the traditional TAD approach when the SNR is below 14 dB.
机译:本文提出了一种利用合成孔径雷达(SAR)图像检测和跟踪运动目标的新方法。通过基于粒子滤波(PF)的先检测后跟踪(TBD)算法实现,该方法能够检测和跟踪SAR系统中的低信噪比(SNR)移动目标,这是传统的后跟踪-检测(TAD)方法不足。通过将SAR移动目标的信号模型纳入算法,可以解决跟踪时目标方位角位置和径向速度的歧义,直接导致真实估计。通过用子区域代替整个区域来计算似然比和适当选择粒子数,可以提高计算效率,而检测和跟踪性能的损失很小。通过蒙特卡洛试验验证了该方法的可行性并评估了性能。结果表明,所提出的方法能够检测和跟踪SNR低至7 dB的运动目标,并且在SNR低于14 dB时优于传统的TAD方法。

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