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Spatio-Temporal Gaussian Process Models for Extended and Group Object Tracking With Irregular Shapes

机译:具有不规则形状的扩展和组对象跟踪的时空高斯过程模型

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Extended object tracking has become an integral part of many autonomous systems during the last two decades. For the first time, this paper presents a generic spatio-temporal Gaussian process (STGP) for tracking an irregular and non-rigid extended object. The complex shape is represented by key points and their parameters are estimated both in space and time. This is achieved by a factorization of the power spectral density function of the STGP covariance function. A new form of the temporal covariance kernel is derived with the theoretical expression of the filter likelihood function. Solutions to both the filtering and the smoothing problems are presented. A thorough evaluation of the performance in a simulated environment shows that the proposed STGP approach outperforms the state-of-the-art GP extended Kalman filter approach [N. Wahlstrom and E. Ozkan, "Extended target tracking using Gaussian processes, IEEE Transactions on Signal Processing,"vol. 63, no. 16, pp. 4165-4178, Aug. 2015] with up to 90% improvement in the accuracy in position, 95% in velocity and 7% in the shape, while tracking a simulated asymmetric non-rigid object. The tracking performance improvement for a non-rigid irregular real object is up to 43% in position, 68% in velocity, 10% in the recall, and 115% in the precision measures.
机译:在过去的二十年中,扩展的对象跟踪已成为许多自治系统不可或缺的一部分。本文首次提出了一种通用的时空高斯过程(STGP),用于跟踪不规则和非刚性的扩展对象。复杂的形状由关键点表示,并且它们的参数在空间和时间上都可以估算。这可以通过将STGP协方差函数的功率谱密度函数分解来实现。利用滤波器​​似然函数的理论表达式推导了一种新形式的时间协方差核。提出了滤波和平滑问题的解决方案。在模拟环境中对性能进行的全面评估表明,所提出的STGP方法优于最新的GP扩展卡尔曼滤波器方法[N。 Wahlstrom和E. Ozkan,“使用高斯过程的扩展目标跟踪,IEEE信号处理事务”,第1卷。 63号16,pp。4165-4178,2015年8月],在跟踪模拟的非对称非刚性对象的同时,位置精度,速度精度和曲面形状的精度分别提高了90%,95%和7%。对于非刚性不规则真实物体,跟踪性能的提高高达43%的位置,68%的速度,10%的召回率和115%的精度。

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