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Feature extraction using distribution representation for colorimetric sensor arrays used as explosives detectors

机译:使用分布表示法对用作爆炸物检测器的比色传感器阵列进行特征提取

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We present a colorimetric sensor array which is able to detect explosives such as DNT, TNT, HMX, RDX and TATP and identifying volatile organic compounds in the presence of water vapor in air. To analyze colorimetric sensors with statistical methods, a suitable representation of sensory readings is required. We present a new approach of extracting features from a colorimetric sensor array based on a color distribution representation. For each sensor in the array, we construct a K-nearest neighbor classifier based on the Hellinger distances between color distribution of a test compound and the color distribution of all the training compounds. The performance of this set of classifiers are benchmarked against a set of K-nearest neighbor classifiers that is based on traditional feature representation (e.g., mean or global mode). The suggested approach of using the entire distribution outperforms the traditional approaches which use a single feature.
机译:我们提出了一种比色传感器阵列,该阵列能够检测爆炸物,例如DNT,TNT,HMX,RDX和TATP,并在空气中存在水蒸气的情况下识别挥发性有机化合物。为了用统计方法分析比色传感器,需要适当地表示感官读数。我们提出了一种基于颜色分布表示从比色传感器阵列中提取特征的新方法。对于阵列中的每个传感器,我们根据测试化合物的颜色分布与所有训练化合物的颜色分布之间的Hellinger距离构造一个K最近邻分类器。将这组分类器的性能与基于传统特征表示(例如均值或全局模式)的一组K最近邻分类器进行基准测试。建议的使用整个发行版的方法优于使用单个功能的传统方法。

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