A fast nonlinear filtering algorithm for tracking a target in clutter using the wavelet transform

Jonghoon Chun, J. Chun, T. Johnson
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Abstract

We present a fast nonlinear filtering algorithm that can track a single target in multiple clutter points. The proposed algorithm propagates the entire conditional probability density functions recursively, but in a computationally efficient manner using either the fast Fourier transform or the fast discrete wavelet-based convolution. Our algorithm does not need the explicit data association step which is in most multiple target tracking filters, and therefore appears to be more natural and robust.
基于小波变换的杂波环境下目标跟踪的快速非线性滤波算法
提出了一种能在多个杂波点中跟踪单个目标的快速非线性滤波算法。该算法递归地传播整个条件概率密度函数,但以计算效率的方式使用快速傅立叶变换或基于小波的快速离散卷积。该算法不需要大多数多目标跟踪滤波器中存在的显式数据关联步骤,因此显得更加自然和鲁棒。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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