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Selecting a Discrimination Algorithm for Unexploded Ordnance Remediation

机译:选择一种用于未爆弹药补救的鉴别算法

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We review the algorithms that have been used to discriminate between hazardous unexploded ordnance (UXO) and harmless clutter. Statistical classifiers use model parameters estimated from geophysical data to formulate a decision rule. This rule tries to discriminate between UXO and clutter using the available information. In contrast, library-based discrimination algorithms make decisions using a predefined library of signatures for expected UXO types. Given the variety of algorithms that are available for UXO discrimination, we describe two metrics for evaluating discrimination performance—the area under the receiver operating characteristic and the false-alarm rate. We propose a bootstrapping algorithm for estimating these metrics when limited data are available. Last, we demonstrate this approach on real electromagnetic and magnetic data sets.
机译:我们回顾了用于区分危险未爆弹药(UXO)和无害杂物的算法。统计分类器使用从地球物理数据估计的模型参数来制定决策规则。该规则尝试使用可用信息来区分UXO和混乱。相反,基于库的判别算法使用预定义的签名库为预期的UXO类型做出决策。鉴于可用于UXO判别的算法多种多样,我们描述了两种评估判别性能的指标-接收机工作特性下的面积和误报率。我们提出了一种自举算法,用于在有限数据可用时估算这些指标。最后,我们在实际的电磁数据集上演示了这种方法。

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