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Autonomous Efficient Experiment Design for Materials Discovery with Bayesian Model Averaging

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arxiv 1803.05460 v5 pith:7MDV2YDO submitted 2018-03-14 physics.comp-ph cond-mat.mtrl-sci

Autonomous Efficient Experiment Design for Materials Discovery with Bayesian Model Averaging

classification physics.comp-ph cond-mat.mtrl-sci
keywords materialsspacebayesiandesignefficientlyexplorationmodelaveraging
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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The accelerated exploration of the materials space in order to identify configurations with optimal properties is an ongoing challenge. Current paradigms are typically centered around the idea of performing this exploration through high-throughput experimentation/computation. Such approaches, however, do not account fo the always present constraints in resources available. Recently, this problem has been addressed by framing materials discovery as an optimal experiment design. This work augments earlier efforts by putting forward a framework that efficiently explores the materials design space not only accounting for resource constraints but also incorporating the notion of model uncertainty. The resulting approach combines Bayesian Model Averaging within Bayesian Optimization in order to realize a system capable of autonomously and adaptively learning not only the most promising regions in the materials space but also the models that most efficiently guide such exploration. The framework is demonstrated by efficiently exploring the MAX ternary carbide/nitride space through Density Functional Theory (DFT) calculations.

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