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Less is more: Avoiding the LIBS dimensionality curse through judicious feature selection for explosive detection

机译:少即是多:通过明智地选择用于爆炸物检测的特征来避免LIBS维度诅咒

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Despite its intrinsic advantages, translation of laser induced breakdown spectroscopy for material identification has been often impeded by the lack of robustness of developed classification models, often due to the presence of spurious correlations. While a number of classifiers exhibiting high discriminatory power have been reported, efforts in establishing the subset of relevant spectral features that enable a fundamental interpretation of the segmentation capability and avoid the ‘curse of dimensionality’ have been lacking. Using LIBS data acquired from a set of secondary explosives, we investigate judicious feature selection approaches and architect two different chemometrics classifiers –based on feature selection through prerequisite knowledge of the sample composition and genetic algorithm, respectively. While the full spectral input results in classification rate of ca. 92%, selection of only carbon to hydrogen spectral window results in near identical performance. Importantly, the genetic algorithm-derived classifier shows a statistically significant improvement to ca. 94% accuracy for prospective classification, even though the number of features used is an order of magnitude smaller. Our findings demonstrate the impact of rigorous feature selection in LIBS and also hint at the feasibility of using a discrete filter based detector thereby enabling a cheaper and compact system more amenable to field operations.
机译:尽管具有固有优势,但由于归因于虚假相关性的存在,缺乏发达的分类模型的鲁棒性常常阻碍了激光诱导击穿光谱学用于材料识别的转换。尽管已经报道了许多具有高区分能力的分类器,但仍缺乏建立相关光谱特征子集的工作,这些子特征可以对分割能力进行基本的解释并避免“维数的诅咒”。利用从一组二次炸药中获得的LIBS数据,我们研究了明智的特征选择方法,并设计了两种不同的化学计量学分类器-基于分别通过样本成分和遗传算法的先决知识进行的特征选择。而全光谱输入导致分类率约为。 92%的结果表明,仅选择碳与氢的光谱窗口可实现几乎相同的性能。重要的是,遗传算法衍生的分类器显示出对ca的统计显着改善。即使使用的特征数量小了一个数量级,预期分类的准确性也达到94%。我们的发现证明了LIBS中严格的特征选择的影响,也暗示了使用基于离散滤波器的检测器的可行性,从而使更便宜,更紧凑的系统更适合现场操作。

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