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A Sequential Two-Stage Track-to-Track Association Method in Asynchronous Bearings-Only Sensor Networks for Aerial Targets Surveillance

机译:空中目标监视的异步纯传感器网络中的一种连续的两阶段航迹关联方法

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摘要

Successful track-to-track association (TTTA) in a multisensor and multitarget scenario is predicated on a reasonable likelihood function to evaluate the similarity of asynchronous mono tracks. To deal with the lack of synchronous data and prior knowledge of the targets in practical applications, this paper investigates a global optimization method with a novel likelihood function constructed by finite asynchronous measurements with joint temporal and spatial constraints (JTSC). For a scenario with more than two independent sensors, a sequential two-stage strategy is proposed to calculate the similarity of multiple asynchronous mono tracks. For the first stage, based on the temporal features of measurements from different sensors, a pairwise fusion model to estimate the position of the target with two mono tracks is established based on the asynchronous crossing location approach. For the other stage, to evaluate the similarity of the outputs, a pairwise similarity model is constructed by searching for the optimal matching points by setting temporal and spatial constraints. Thus, the likelihood of multiple asynchronous tracks is obtained. Simulations are performed to verify that the proposed method can achieve favorable performance without data-synchronization, and also demonstrate the superiority over the methods based on hinge angle differences (HADs) in some scenarios.
机译:多传感器和多目标方案中成功的轨道间关联(TTTA)取决于合理的似然函数,以评估异步单轨道的相似性。为了解决实际应用中缺乏同步数据和目标先验知识的问题,本文研究了一种具有新型似然函数的全局优化方法,该似然函数是通过有限时空联合联合时空约束(JTSC)构建的。对于具有两个以上独立传感器的场景,提出了一种连续两阶段策略来计算多个异步单声道的相似度。对于第一阶段,基于来自不同传感器的测量的时间特征,基于异步穿越定位方法,建立了一个成对融合模型来估计具有两个单声道的目标的位置。在另一阶段,为了评估输出的相似性,通过设置时间和空间约束来搜索最佳匹配点,从而构建成对相似性模型。因此,获得了多个异步轨道的可能性。通过仿真验证了该方法在不进行数据同步的情况下仍具有良好的性能,并且在某些情况下还证明了其优于基于铰链角差(HAD)的方法的优越性。

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