2020
DOI: 10.1016/j.actamat.2020.05.024
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Learning the grain boundary manifold: tools for visualizing and fitting grain boundary properties

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Cited by 11 publications
(21 citation statements)
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“…As the mis-orientation and the normal orientation can change during the microstructure evolution due to grain rotation or grain disappearance/appearance, the evolution of the metric could reveal important information about the structure–property relationship. Recent works by Chesser et al and Francis et al have proposed new metrics using octonions [ 70 , 71 ], revealing good predictions of GB energy of the data published by Olmsted in [ 72 ]. To the authors’ knowledge, the effect of the GB normal orientation is not clear, and more experimental, numerical, and theoretical works are needed.…”
Section: Accounting For Mis-orientation and Inclination Dependencementioning
confidence: 99%
“…As the mis-orientation and the normal orientation can change during the microstructure evolution due to grain rotation or grain disappearance/appearance, the evolution of the metric could reveal important information about the structure–property relationship. Recent works by Chesser et al and Francis et al have proposed new metrics using octonions [ 70 , 71 ], revealing good predictions of GB energy of the data published by Olmsted in [ 72 ]. To the authors’ knowledge, the effect of the GB normal orientation is not clear, and more experimental, numerical, and theoretical works are needed.…”
Section: Accounting For Mis-orientation and Inclination Dependencementioning
confidence: 99%
“…For example, Francis et al developed the octonion to compare and interpolate between GBs [122]. This was followed by a number of tools to examine the GB manifold [123]. Baird et al recently demonstrated an efficient interpolation technique in the 5D space using a Voronoi fundamental zone framework [87] as well as methods for quantitative cartography of the GB energy landscape [121].…”
Section: Gb Energy Trends In the 5d Spacementioning
confidence: 99%
“…Recently, a new GB representation, grain boundary octonions (GBOs), was reported [52] and tested [53]. The GBO representation is valuable for a number of applications.…”
Section: Prior Workmentioning
confidence: 99%
“…Laplacian kernel regression (similar to IDW) involving scaled pairwise distance matrices was later used with GBOs to predict properties of arbitrary GBs from a set of known values [53]. Using k-fold cross validation with k = 10 for 388 Ni GBE simulations [43] and an optimized scaling parameter, a RMSE of 0.0977 J m −2 was obtained compared to a constant, average model RMSE of 0.2243 J m −2 (56.4 % improvement).…”
Section: Prior Workmentioning
confidence: 99%
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