Neural Networks and Graph Algorithms with Next-Generation Processors

被引:11
|
作者
Hamilton, Kathleen E. [1 ]
Schuman, Catherine D. [1 ]
Young, Steven R. [1 ]
Imam, Neena [1 ]
Humble, Travis S. [1 ]
机构
[1] Oak Ridge Natl Lab, Comp & Computat Sci Directorate, Oak Ridge, TN 37831 USA
关键词
CONSTRAINT-SATISFACTION PROBLEMS; ASSOCIATIVE MEMORY; COMMUNITY DETECTION; LEARNING ALGORITHM; ON-CHIP; MODEL; OPTIMIZATION; SPINNAKER; DYNAMICS; SYSTEMS;
D O I
10.1109/IPDPSW.2018.00184
中图分类号
TP3 [计算技术、计算机技术];
学科分类号
0812 ;
摘要
The use of graphical processors for distributed computation revolutionized the field of high performance scientific computing. As the Moore's Law era of computing draws to a close, the development of non-Von Neumann systems: neuromorphic processing units, and quantum annealers; again are redefining new territory for computational methods. While these technologies are still in their nascent stages, we discuss their potential to advance computing in two domains: machine learning, and solving constraint satisfaction problems. Each of these processors utilize fundamentally different theoretical models of computation. This raises questions about how to best use them in the design and implementation of applications. While many processors are being developed with a specific domain target, the ubiquity of spin-glass models and neural networks provides an avenue for multi-functional applications. This provides hints at the future infrastructure needed to integrate many next-generation processing units into conventional high-performance computing systems.
引用
收藏
页码:1194 / 1203
页数:10
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