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The effect of translational variance in training and testing images on supervised buried threat detection algorithms for ground penetrating radar

机译:平移方差在训练和测试图像中对探地雷达有监督隐埋威胁检测算法的影响

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A large body of recent research has focused on the development of supervised buried threat detection algorithms for ground penetrating radar (GPR) data. Such algorithms learn to automatically identify landmines in GPR data based on threat data and non-threat data examples. Training data typically consists of small 2-dimensional images that are extracted from a larger image, or volume, of GPR data. Currently, the most popular criterion for choosing training (or testing) patches is high GPR signal energy. In this work, we investigate translational variance in the patches, which occurs when relevant GPR signals (e.g., hyperbolic landmine signals) are not consistently centered, or aligned, in the extracted patches. In this work, we (i) provide evidence suggesting that translational variance is introduced into the data when popular energy based patch extraction methods are employed, and (ii) estimate the classification performance loss in supervised algorithms due to this effect. We present a simple method to help alleviate the translational variance problem. We hypothesize that reducing translational variance prior to supervised learning may facilitate the use, and success, of image features.
机译:最近的大量研究都集中在针对地面穿透雷达(GPR)数据的监督式隐蔽威胁检测算法的开发上。此类算法可以根据威胁数据和非威胁数据示例自动识别GPR数据中的地雷。训练数据通常由较小的二维图像组成,这些图像是从GPR数据的较大图像或较大体积中提取的。当前,选择训练(或测试)补丁的最流行标准是高GPR信号能量。在这项工作中,我们研究了补丁中的翻译差异,当相关的GPR信号(例如双曲线地雷信号)在提取的补丁中不一致或居中时会发生这种情况。在这项工作中,我们(i)提供证据表明当采用流行的基于能量的补丁提取方法时,数据中引入了翻译方差;(ii)由于这种影响,估计了有监督算法中的分类性能损失。我们提出一种简单的方法来帮助减轻平移差异问题。我们假设在监督学习之前减少翻译差异可以促进图像特征的使用和成功。

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