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Joint Smoothing and Tracking Based on Continuous-Time Target Trajectory Function Fitting

机译:基于连续时间目标轨迹函数拟合的联合平滑与跟踪

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摘要

This paper presents a joint trajectory smoothing and tracking framework for a specific class of targets with smooth motion. We model the target trajectory by a continuous function of time (FoT), which leads to a curve fitting approach that finds a trajectory FoT fitting the sensor data in a sliding time-window. A simulation study is conducted to demonstrate the effectiveness of our approach in tracking a maneuvering target, in comparison with the conventional filters and smoothers.Note to Practitioners-Estimation, such as automatically tracking and predicting the movement of an aircraft, a train, or a bus, plays a key role in our daily life. In this paper, we provide a new approach for the online estimation of the target trajectory function by means of fitting the time-series observation, which accommodates the lack of quantifiable knowledge about the target motion and of the statistical property of the sensor observation noise. The resulting trajectory function can be used to infer either the past or the present state of the target. Engineering-friendly strategies are provided for computationally efficient implementation. The proposed approach is particularly appealing to a broad range of real-world targets that move in smooth courses, such as passenger aircraft and ships.
机译:本文提出了一种针对具有平滑运动的特定目标的联合轨迹平滑和跟踪框架。我们通过时间的连续函数(FoT)对目标轨迹进行建模,这导致了一种曲线拟合方法,该方法可以找到在滑动时间窗口中拟合传感器数据的轨迹FoT。与传统的过滤器和平滑器相比,进行了仿真研究,以证明我们的方法在跟踪机动目标方面的有效性。练习者的注意事项,例如自动跟踪和预测飞机,火车或飞机的运动。公共汽车在我们的日常生活中起着关键作用。在本文中,我们提供了一种通过拟合时间序列观测值在线估算目标轨迹函数的新方法,这种方法弥补了对目标运动和传感器观测噪声统计特性缺乏可量化的知识。所得的轨迹函数可用于推断目标的过去或当前状态。提供了工程友好型策略,可实现高效计算。拟议的方法特别吸引了可以在平滑航向中移动的各种现实世界目标,例如客机和轮船。

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