ECE MS Thesis Defense: "Distributing Frank-Wolfe via Map-Reduce," Armin Moharrer
Wednesday, April 18, 2018 9:30am
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Abstract: Large-scale optimization problems abound in data mining and machine learning applications, and the computational challenges they pose are often addressed through parallelization. We identify structural properties under which a convex optimization problem can be massively parallelized via map-reduce operations using the Frank-Wolfe (FW) algorithm. The class of problems that can be tackled this way is quite broad and includes experimental design, AdaBoost, and projection to a convex hull. Implementing FW via map-reduce eases parallelization and deployment via commercial distributed...
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