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Recursive filtering for target tracking in multi-frame track-before-detect

机译:检测前多帧跟踪中的目标跟踪的递归过滤

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This paper addresses the tracking problem with respect to dynamic programming (DP) based track-before-detect (DP-TBD). Basically, DP-TBD is a grid-based method performing search in the discretized state space, therefore the accuracy of its estimation suffers at least half a grid loss. Moreover, different from the conventional detection procedure which provides isolate point plots to a tracker, DP-TBD is a batch processor whose detection outputs are short state sequences in time series. Essentially, these short tracks are neither filtered target trajectories nor conventional point detections. Meantime the false alarms and missing reports of these short tracks also exist especially when target signal-to-noise ratio (SNR) is low. Thus, a tracker which can associate, smooth and finally combine these short tracks into continuous target trajectories is needed. In this work, we propose a two-stage, i.e., prediction and updating stages, recursive filtering algorithm for DP-TBD. The key idea is using the outputted short tracks after every DP-TBD batch processing as the input measurements for the updating stage of filtering. Simulation results show that the proposed algorithm can correctly estimate target trajectories and significantly enhance the tracking accuracy compared with the method without our filtering algorithm.
机译:本文针对基于动态编程(DP)的先检测后跟踪(DP-TBD)解决了跟踪问题。基本上,DP-TBD是在离散状态空间中执行搜索的基于网格的方法,因此,其估计的准确性至少遭受一半的网格损失。而且,与传统的为跟踪器提供隔离点图的检测程序不同,DP-TBD是一个批处理处理器,其检测输出是时间序列上的短状态序列。本质上,这些短轨道既不是经过滤波的目标轨迹,也不是常规的点检测。同时,特别是当目标信噪比(SNR)低时,也会出现这些短轨道的错误警报和丢失报告。因此,需要一种能够将这些短轨道关联,平滑并最终组合成连续目标轨迹的跟踪器。在这项工作中,我们提出了两个阶段,即预测和更新阶段,用于DP-TBD的递归过滤算法。关键思想是在每次DP-TBD批处理之后将输出的短轨道用作过滤更新阶段的输入度量。仿真结果表明,与不采用滤波算法的方法相比,该算法能够正确估计目标轨迹,并显着提高跟踪精度。

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