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Application of the Angle Measure Technique as image texture analysis method for the identification of Uranium Ore Concentrate samples: new perspective in nuclear forensics

机译:角度测量技术作为图像纹理分析方法在铀矿精矿样品识别中的应用:核法证学的新视角

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摘要

The identification of interdicted nuclear or radioactive materials requires the application of dedicated techniques. In this work, a new approach for characterizing powder of uranium ore concentrates (UOCs) is presented. It is based on image texture analysis and multivariate data modelling. 26 different UOCs samples were evaluated applying the Angle Measure Technique (AMT) algorithm to extract textural features on samples images acquired at 250x and 1000x magnification by Scanning Electron Microscope (SEM). At both magnifications, this method proved effective to classify the different types of UOC powder based on the surface characteristics that depend on particle size, homogeneity, and graininess and are related to the composition and processes used in the production facilities. Using the outcome data from the application of the AMT algorithm, the total explained variance was higher than 90% with principal component analysis (PCA), while partial least square discriminant analysis (PLS-DA) applied only on the 14 black colour UOCs powder samples, allowed their classification only on the basis of their surface texture features (sensitivity>0.6; specificity>0.6). This preliminary study shows that this method was able to distinguish samples with similar composition, but obtained from different facilities. The mean angle spectral data obtained by the image texture analysis using the AMT algorithm can be considered as a specific fingerprint or signature of UOCs and could be used for nuclear forensic investigation.
机译:识别受阻的核材料或放射性物质需要应用专门的技术。在这项工作中,提出了一种表征铀精矿粉的新方法。它基于图像纹理分析和多元数据建模。应用角度测量技术(AMT)算法对26种不同的UOC样品进行了评估,以通过扫描电子显微镜(SEM)提取在250x和1000x放大倍率下采集的样品图像上的纹理特征。在两种放大倍率下,该方法均被证明可有效地根据表面特性对不同类型的UOC粉末进行分类,该表面特性取决于粒度,均质性和颗粒性,并且与生产设备中使用的成分和工艺有关。使用AMT算法应用的结果数据,主成分分析(PCA)的总解释方差高于90%,而偏最小二乘判别分析(PLS-DA)仅适用于14种黑色UOC粉末样品,仅允许根据其表面纹理特征对其进行分类(敏感性> 0.6;特异性> 0.6)。初步研究表明,该方法能够区分组成相似但从不同设施获得的样品。通过使用AMT算法进行图像纹理分析而获得的平均角度光谱数据可被视为UOC的特定指纹或签名,并可用于核法证研究。

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