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The Application of Dempster-Shafer Theory for Landmine Detection

机译:Dempster-Shafer理论在地雷探测中的应用

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This paper explores the concepts of multisensor data fusion based on the Dempster-Shafer (DS) evidential theory in order to achieve a mine versus false-alarm (FA) classification of landmine targets. Initially, a decision-level DS algorithm is proposed to combine the evidence from multiple sensors of the landmine detection system developed by the General Dynamics Canada Limited (GD Canada). Subsequently, a feature-level DS fusion algorithm is employed to operate on a set of features reported by the ground penetrating radar (GPR) sensor of the system. The data used in the present study was acquired from the Aberdeen Proving Grounds (APG) test site in USA as part of the Ground Standoff Mine Detection System (GSTAMIDS) trials. The proposed decision-level DS algorithm yielded a probability of detection (Pd) of 92.53% at a false-alarm rate (FAR) value of 0.0697 FAs/m~2. The Pd and the FAR performance results achieved by using the decision-level DS algorithm are comparable with the results obtained using three other decision-level fusion algorithms that were previously developed by GD Canada based on heuristic, Bayesian inference, and Voting fusion concepts. On the other hand, the feature-level DS fusion, when tested with the information presented by the GPR sensor only, resulted in a higher Pd value of 78.54% as compared to the corresponding result of 61.43% obtained by using the heuristic algorithm. The GPR sensor is one of the three scanning sensors present on the system.
机译:本文探讨了基于Dempster-Shafer(DS)证据理论的多传感器数据融合的概念,以实现地雷目标的防雷与虚警(FA)分类。最初,提出了决策级DS算法,以结合来自加拿大通用动力有限公司(GD Canada)开发的地雷探测系统的多个传感器的证据。随后,采用特征级DS融合算法对系统的探地雷达(GPR)传感器报告的一组特征进行操作。本研究中使用的数据是从美国阿伯丁试验场(APG)试验场获得的,作为地面对峙地雷探测系统(GSTAMIDS)试验的一部分。提出的决策级DS算法在误报率(FAR)值为0.0697 FAs / m〜2时产生检测概率(Pd)为92.53%。通过使用决策级DS算法获得的Pd和FAR性能结果与使用GD加拿大先前基于启发式,贝叶斯推断和投票融合概念开发的其他三个决策级融合算法获得的结果相当。另一方面,当仅使用GPR传感器提供的信息进行测试时,与使用启发式算法获得的对应结果61.43%相比,特征级DS融合导致的Pd值更高,为78.54%。 GPR传感器是系统上存在的三个扫描传感器之一。

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