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Stochastic Learning Approach to Binary Optimization for Optimal Design of Experiments

By Ahmed Attia and others
We present a novel stochastic approach to binary optimization for optimal experimental design (OED) for Bayesian inverse problems governed by mathematical models such as partial differential equations. The OED utility function, namely, the regularized optimality criterion, is cast into a stochastic objective function in the form of an expectation over... Show more
January 15, 2021
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Stochastic Learning Approach to Binary Optimization for Optimal Design of Experiments
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