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Hybrid approach on LIDAR signal processing with information fusion of multiple detectors

机译:具有多个检测器信息融合的激光雷达信号处理的混合方法

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In this article, an approach on the LIDAR signal processing to detect low SNR target for the intelligent vehicle is presented. It focuses on the raw data processing of the intensity observations and aims to produce the improved point measurements. The algorithm employs two types of elemental detectors, which are respectively based on the CFAR coherent integration and the Bayesian Track-Before-Detect technique. The raw level information of the detectors before applying the thresholding are delivered to the fusion center, where the joint likelihood ratio hypothesis test is applied to make the final decision on the existence or non-existence of the target. The fundamental experimental results have shown that the proposed fusion approach achieves significant improvement on low SNR target detection and enables to produce further point measurements in comparison to both the conventional detector with constant thresholding and its elemental detectors.
机译:在本文中,提出了一种关于LIDAR信号处理来检测智能车辆的低SNR目标的方法。它侧重于强度观测的原始数据处理,并旨在产生改进的点测量。该算法采用两种类型的元素检测器,分别基于CFAR相干集成和贝叶斯轨道前检测技术。在施加阈值之前,探测器的原始水平信息被传送到融合中心,其中施加关节似然比假设试验以对目标存在或不存在的最终决定进行施加。基本实验结果表明,所提出的融合方法对低SNR目标检测实现显着改善,并且能够与恒定阈值和其元素检测器的传统检测器相比,产生进一步的点测量。

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