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Fusion of ground-penetrating radar and electromagnetic induction sensors for landmine detection and discrimination

机译:融合探地雷达和电磁感应传感器以进行地雷检测和识别

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Ground penetrating radar (GPR) and electromagnetic induction (EMI) sensors provide complementary capabilities in detecting buried targets such as landmines, suggesting that the fusion of GPR and EMI modalities may provide improved detection performance over that obtained using only a single modality. This paper considers both pre-screening and the discrimination of landmines from non-landmine objects using real landmine data collected from a U.S. government test site as part of the Autonomous Mine Detection System (AMDS) landmine program. GPR and EMI pre-screeners are first reviewed and then a fusion pre-screener is presented that combines the GPR and EMI pre-screeners using a distance-based likelihood ratio test (DLRT) classifier to produce a fused confidence for each pre-screener alarm. The fused pre-screener is demonstrated to provide substantially improved performance over the individual GPR and EMI pre-screeners.rnThe discrimination of landmines from non-landmine objects using feature-based classifiers is also considered. The GPR feature utilized is a pre-processed, spatially filtered normalized energy metric. Features used for the EMI sensor include model-based features generated from the AETC model and a dipole model as well as features from a matched subspace detector. The EMI and GPR features are then fused using a random forest classifier. The fused classifier performance is superior to the performance of classifiers using GPR or EMI features alone, again indicating that performance improvements may be obtained through the fusion of GPR and EMI sensors. The performance improvements obtained both for pre-screening and for discrimination have been verified by blind test results scored by an independent U.S. government contractor.
机译:探地雷达(GPR)和电磁感应(EMI)传感器在探测诸如地雷之类的掩埋目标方面提供了互补的功能,这表明GPR和EMI模式的融合可以提供比仅使用单一模式获得的探测性能更高的探测性能。本文使用从美国政府测试站点收集的真实地雷数据,来进行预筛选和从非地雷物体中识别地雷,这是自主排雷检测系统(AMDS)地雷计划的一部分。首先回顾了GPR和EMI预筛选器,然后提出了融合预筛选器,该融合器使用基于距离的似然比测试(DLRT)分类器将GPR和EMI预筛选器组合在一起,为每个预筛选器警报生成融合置信度。经证明,该融合式预筛选器与单独的GPR和EMI预筛选器相比可提供显着改善的性能。还考虑了使用基于特征的分类器来区分非地​​雷物体中的地雷。使用的GPR功能是经过预处理的,经过空间滤波的归一化能量度量。用于EMI传感器的功能包括从AETC模型和偶极子模型生成的基于模型的功能,以及从匹配的子空间检测器生成的功能。然后使用随机森林分类器融合EMI和GPR功能。融合的分类器性能优于仅使用GPR或EMI功能的分类器性能,再次表明可以通过GPR和EMI传感器的融合获得性能提升。由独立的美国政府承包商进行的盲目测试结果已验证了预筛分和歧视方面的性能改进。

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