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Data-Driven Hard-Magnetic Material Selection for AC Applications by Multiple Attribute Decision Making

机译:通过多属性决策为交流应用选择数据驱动的硬磁材料

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Hard-magnetic materials are ubiquitous and are used in a myriad of applications, including but not limited to computers, green energy technologies, and defense systems. Over the years, a variety of hard-magnetic materials were developed to cater to the immanent technological demands. In the recent past, materials informatics has been an essential component of materials discovery, design, and development. We present a methodology that combines various multiple attribute decision-making methods, hierarchical clustering, and principal component analysis for data-driven hard-magnetic material selection. Shannon's entropy model evaluated the relative weights of multiple properties followed by the ranking of the hard-magnetic materials by the various multiple attribute decision-making methods. Akin to Ashby charts, two-dimensional plots were developed to provide a visual presentation, based on the decision-making models, clustering, and component analysis followed by the assessment of the predictive capability of the data-driven model.
机译:硬磁材料无处不在,并用于多种应用中,包括但不限于计算机,绿色能源技术和国防系统。多年来,开发了各种硬磁材料来满足迫在眉睫的技术需求。在最近的过去,材料信息学一直是材料发现,设计和开发的重要组成部分。我们提出了一种方法,该方法结合了多种多属性决策方法,层次聚类和用于数据驱动的硬磁材料选择的主成分分析。香农的熵模型评估了多种属性的相对权重,然后通过各种多种属性决策方法对硬磁材料进行了排名。与Ashby图表类似,基于决策模型,聚类和成分分析,然后评估数据驱动模型的预测能力,开发了二维图以提供可视化表示。

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