A Measurement Correlation Approach for Multitarget Tracking in a Noisy Environment

A. Aziz, Shawki A. Saad, M. Mostafa, Ahmed S. Shalaby
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Abstract

In multitarget tracking, measurement correlation uncertainty occurs when remote sensors, such as radars, yield measurements whose origin is uncertain. Using incorrect measurements in multitarget tracking systems leads to tracks loss. In such cases, efficient measurement correlation methods are needed to select measurements from many to be used to update the target tracks of interest in the tracking systems. This paper proposes a measurement correlation approach for multitarget tracking in a noisy environment. In this approach, measurements-to-targets correlation is computed across all targets and measurements based on minimization of weighted total squared errors. For a given track, the measurement that has the maximum correlation is used for updating the target track. The proposed correlation approach is applied to a scenario of multitarget tracking system and performance comparison with other correlation approaches is also presented. The results showed that performance improvement in terms of correct measurements correlation is achieved.
噪声环境下多目标跟踪的测量相关方法
在多目标跟踪中,当雷达等遥感器产生不确定源的测量结果时,会产生测量相关不确定性。在多目标跟踪系统中使用不正确的测量会导致航迹丢失。在这种情况下,需要有效的测量相关方法从许多测量中选择用于更新跟踪系统中感兴趣的目标轨迹。提出了一种噪声环境下多目标跟踪的测量相关方法。在该方法中,基于加权总平方误差的最小化,计算所有目标和测量之间的测量与目标的相关性。对于给定的航迹,使用具有最大相关性的测量来更新目标航迹。将该方法应用于多目标跟踪系统,并与其他相关方法进行了性能比较。结果表明,在正确的测量相关性方面,性能得到了提高。
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