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- W2937291275 abstract "Abstract We propose a data-driven method to extract dissimilarity between materials, with respect to a given target physical property. The technique is based on an ensemble method with Kernel ridge regression as the predicting model; multiple random subset sampling of the materials is done to generate prediction models and the corresponding contributions of the reference training materials in detail. The distribution of the predicted values for each material can be approximated by a Gaussian mixture models. The reference training materials contributed to the prediction model that accurately predicts the physical property value of a specific material, are considered to be similar to that material, or vice versa. Evaluations using synthesized data demonstrate that the proposed method can effectively measure the dissimilarity between data instances. An application of the analysis method on the data of Curie temperature ( <?CDATA ${T}_{{rm{C}}}$?> <mml:math xmlns:mml=http://www.w3.org/1998/Math/MathML overflow=scroll> <mml:msub> <mml:mrow> <mml:mi>T</mml:mi> </mml:mrow> <mml:mrow> <mml:mi mathvariant=normal>C</mml:mi> </mml:mrow> </mml:msub> </mml:math> ) of binary 3 d transition metal- 4 f rare-earth binary alloys also reveals meaningful results on the relations between the materials. The proposed method can be considered as a potential tool for obtaining a deeper understanding of the structure of data, with respect to a target property, in particular." @default.
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- W2937291275 date "2019-06-24" @default.
- W2937291275 modified "2023-09-27" @default.
- W2937291275 title "Ensemble learning reveals dissimilarity between rare-earth transition-metal binary alloys with respect to the Curie temperature" @default.
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- W2937291275 doi "https://doi.org/10.1088/2515-7639/ab1738" @default.
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