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Target Tracking With Particle Filters Under Signal Propagation Delays

机译:在信号传播延迟下使用粒子滤波器进行目标跟踪

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摘要

Signal propagation delays are hardly a problem for target tracking with standard sensors such as radar and vision due to the fact that the speed of light is much higher than the speed of the target. This contribution studies the case where the ratio of the target and the propagation speed is not negligible, as in the case of sensor networks with microphones, geophones or sonars for instance, where the signal speed in air, ground and water causes a state dependent and stochastic delay of the observations. The proposed approach utilizes an augmentation of the state vector with the propagation delay in a particle filtering framework to compensate for the negative effects of the delays. The model of the physics rules governing the propagation delays is used in interaction with the target motion model to yield an iterative prediction update step in the particle filter which is called the propagation delayed measurement particle filter (PDM-PF). The performance of PDM-PF is illustrated in a challenging target tracking scenario by making comparisons to alternative particle filters that can be used in similar cases.
机译:由于光速远高于目标速度,因此对于使用诸如雷达和视觉等标准传感器进行目标跟踪而言,信号传播延迟几乎不是问题。该贡献研究了目标与传播速度之比不可忽略的情况,例如带有麦克风,地震检波器或声纳的传感器网络,其中空气,地面和水中的信号速度引起状态依赖,并且观察结果的随机延迟。所提出的方法利用粒子滤波框架中传播延迟的状态向量的增加来补偿延迟的负面影响。控制传播延迟的物理规则模型与目标运动模型一起使用,以在粒子滤波器中产生迭代预测更新步骤,称为传播延迟测量粒子滤波器(PDM-PF)。通过与可在类似情况下使用的替代颗粒过滤器进行比较,在具有挑战性的目标跟踪方案中说明了PDM-PF的性能。

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