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A novel Sequential Monte Carlo approach for extended object tracking based on border parameterisation

机译:一种新的基于边界参数化的序列蒙特卡罗扩展对象跟踪方法

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Extended objects are characterised with multiple measurements originated from different locations of the object surface. This paper presents a novel Sequential Monte Carlo (SMC) approach for extended object tracking based on border parametrisation. The problem is formulated for general nonlinear problems. The main contribution of this work is in the derivation of the likelihood function for nonlinear measurement functions, with sets of measurements belonging to a bounded region. Simulation results are presented when the object is surrounded by a circular region. Accurate estimation results are presented both for the object kinematic state and object extent.
机译:扩展对象的特征是源自对象表面不同位置的多次测量。本文提出了一种新颖的基于边界参数化的序列蒙特卡洛(SMC)扩展对象跟踪方法。该问题是针对一般非线性问题制定的。这项工作的主要贡献在于推导了非线性测量函数的似然函数,其中测量集属于有界区域。当对象被圆形区域包围时,将显示仿真结果。给出了物体运动状态和物体范围的准确估计结果。

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