层析成像分析工具:一种基于无监督机器学习的图像分析应用

T. Bagni, H. Haldi, D. Mauro, C. Senatore
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引用次数: 3

摘要

我们开发了一个图形用户界面(GUI)来分析为下一代加速器磁体设计的超导Nb3Sn线的层析图像。断层扫描分析工具(TAT)依赖于k-means算法,这是一种无监督机器学习技术,广泛用于将图像划分为分离的簇。GUI兼容Linux和Windows操作系统。通过对k-means算法得到的聚类图像叠加层析图像进行光学检测,验证了软件的可靠性。结果表明,TAT可以以单像素精度正确分割Nb3Sn超导线的各个部件。最后,该软件可以成为一个有用的工具,为科学界分割和分析快速和可复制的层析成像图像。
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Tomography analysis tool: an application for image analysis based on unsupervised machine learning
We developed a graphical user interface (GUI) to analyse tomographic images of superconducting Nb3Sn wires designed for the next generation accelerator magnets. The Tomography Analysis Tool (TAT) relies on the k-means algorithm, an unsupervised machine learning technique which is widely used to partition images into separated clusters. The GUI is compatible with both Linux and Windows operating systems. The software reliability was tested by optical inspecting the tomographic images superimposed on the clustered image obtained by the k-means algorithm. TAT was proven to correctly segment the various components of the Nb3Sn superconducting wires with single pixel precision. Finally, this software can be a useful tool for the scientific community to segment and analyse quickly and reproducibly tomographic images.
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