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Data Analysis on Multivariate Image Set

机译:多元图像集的数据分析

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An image set can include not just the images themselves but also the extracted features, metadata and so on. For example, x-ray images obtained from synchrotron beamlines are large-scale highdynamic-range data depicting a variety of material properties after incorporating scientific analysis results. Previously, we presented a framework MultiSciView as an image set visualization and exploration system for x-ray scattering data. This tool is general enough to deal with any multivariate images. In this work, we aim to complement it with a set of data analysis modules. First, we present feature analysis by proposing a new correlation metric to reduce the data redundancy. Then we encode each image as a high dimensional vector and analyze the patterns hidden in the image set. Finally, we add an auxiliary visualization to plot the average and entropy images of the interested subset. We conducted one case study to show that our system can effectively analyze the image set, identify preferred image patterns, anomalous images and erroneous experimental settings. Eventually a better comprehension of the material nanostructure properties can be achieved.
机译:图像集不仅可以包含图像本身,还可以包含提取的特征,元数据等。例如,从同步加速器光束线获得的X射线图像是大规模的高动态范围数据,描述了结合科学分析结果后的各种材料特性。以前,我们介绍了MultiSciView框架作为X射线散射数据的图像集可视化和探索系统。该工具足够通用,可以处理任何多元图像。在这项工作中,我们旨在通过一组数据分析模块对其进行补充。首先,我们通过提出一种新的相关度量以减少数据冗余来介绍特征分析。然后,我们将每个图像编码为高维向量,并分析图像集中隐藏的模式。最后,我们添加辅助可视化以绘制感兴趣子集的平均图像和熵图像。我们进行了一个案例研究,表明我们的系统可以有效地分析图像集,识别首选图像模式,异常图像和错误的实验设置。最终可以更好地理解材料的纳米结构特性。

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