Energy Scaling Advantages of Resistive Memory Crossbar Based Computation and Its Application to Sparse Coding

被引:73
作者
Agarwal, Sapan [1 ]
Quach, Tu-Thach [2 ]
Parekh, Ojas [3 ]
Hsia, Alexander H. [1 ]
DeBenedictis, Erik P. [3 ]
James, Conrad D. [1 ]
Marinella, Matthew J. [1 ]
Aimone, James B. [3 ]
机构
[1] Sandia Natl Labs, Microsyst Sci & Techol, Albuquerque, NM 87185 USA
[2] Sandia Natl Labs, Sensor Exploitat, Albuquerque, NM 87185 USA
[3] Sandia Natl Labs, Ctr Comp Res, Albuquerque, NM 87185 USA
关键词
resistive memory; memristor; sparse coding; energy; neuromorphic computing; RESISTANCE; SYNAPSES; DENSITY; NETWORK; DEVICE; ARRAY;
D O I
10.3389/fnins.2015.00484
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
The exponential increase in data over the last decade presents a significant challenge to analytics efforts that seek to process and interpret such data for various applications. Neural-inspired computing approaches are being developed in order to leverage the computational properties of the analog, low power data processing observed in biological systems. Analog resistive memory crossbars can perform a parallel read or a vector-matrix multiplication as well as a parallel write or a rank-1 update with high computational efficiency. For an N x N crossbar, these two kernels can be O(N) more energy efficient than a conventional digital memory-based architecture. If the read operation is noise limited, the energy to read a column can be independent of the crossbar size (O(1)). These two kernels form the basis of many neuromorphic algorithms such as image, text, and speech recognition. For instance, these kernels can be applied to a neural sparse coding algorithm to give an O(N) reduction in energy for the entire algorithm when run with finite precision. Sparse coding is a rich problem with a host of applications including computer vision, object tracking, and more generally unsupervised learning.
引用
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页数:9
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