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首页> 外文期刊>Spectrochimica Acta, Part B. Atomic Spectroscopy >Fast identification of biominerals by means of stand-off laser-induced breakdown spectroscopy using linear discriminant analysis and artificial neural networks
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Fast identification of biominerals by means of stand-off laser-induced breakdown spectroscopy using linear discriminant analysis and artificial neural networks

机译:利用线性判别分析和人工神经网络,通过对位激光诱导的击穿光谱技术快速鉴定生物矿物

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摘要

The goal of this paper is to compare two selected statistical techniques used for identification of archeological materials merely on the base of their spectra obtained by stand-off laser-induced breakdown spectroscopy (stand-off LIBS). Data processing using linear discriminant analysis (LDA) and artificial neural networks (ANN) were applied on spectra of 18 different samples, some of them archeological and some recent, containing 7 types of material (i.e. shells, mortar, bricks, soil pellets, ceramic, teeth and bones). As the input data PCA scores were taken. The intended aim of this work is to create a database for simple and fast identification of archeological or paleontological materials in situ. This approach can speed up and simplify the sampling process during archeological excavations that nowadays tend to be quite damaging and time-consuming.
机译:本文的目的是仅根据固定式激光诱导击穿光谱仪(固定式LIBS)获得的光谱,比较两种用于鉴定考古材料的统计技术。使用线性判别分析(LDA)和人工神经网络(ANN)进行的数据处理应用于18种不同样品的光谱,其中有些是考古的,有些是最近的,包含7种类型的材料(即壳,砂浆,砖,土壤颗粒,陶瓷,牙齿和骨头)。作为输入数据,采用PCA分数。这项工作的目的是创建一个数据库,用于在现场简单,快速地识别考古或古生物学材料。这种方法可以加快并简化考古发掘过程中的采样过程,而如今,考古发掘往往是非常有害且耗时的。

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