Multiple-cue data fusion with particle filters for vehicle detection in night view automotive applications

R. Schweiger, Heiko Neumann, Werner Ritter
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引用次数: 22

Abstract

In this contribution we present a sensor data fusing concept utilizing particle filters. The investigation aims at the development of a robust and easy to extend approach, capable of combining the information of different sensors. We use the particle filters characteristics and introduce weighting functions that are multiplied during the measurement update stage of the particle filter implementation. The concept is demonstrated in a vehicle detection system that conjoins symmetry detection, tail lamp detection and radar measurements in night vision applications.
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多线索数据融合与粒子过滤器车辆检测在夜视汽车应用
在这篇贡献中,我们提出了一种利用粒子滤波器的传感器数据融合概念。该研究旨在开发一种强大且易于扩展的方法,能够结合不同传感器的信息。我们利用粒子滤波器的特性,并引入在粒子滤波器实现的测量更新阶段相乘的加权函数。该概念在车辆检测系统中进行了演示,该系统结合了对称检测、尾灯检测和夜视应用中的雷达测量。
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