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NASA NTRS · 20220001459

Machine Learning Algorithm Performance on the Lucata Computer

Abstract

A new parallel computing paradigm (processor in memory, or PIM) has recently become available, one that uses many lightweight threads, and where each thread migrates automatically to the memory used by that thread. Our effort focuses on understanding how suitable this architecture is for our application, and whether the hardware can sustain speedups as high as the system size permits. In particular we explore the kind of code optimizations needed, and how well optimized code scales. This paper describes some of the those optimizations, and the payoff in terms of scaling.

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BibTeXRIS

Kogge, Peter, LIghtholder, Jack, Krawezik, Geraud, Schibler, Thomas, Springer, Paul. 2020-09-22. Machine Learning Algorithm Performance on the Lucata Computer. https://ntrs.nasa.gov/citations/20220001459

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