DocumentCode :
3575070
Title :
Exploiting Hybrid SPM-Cache Architectures to Reduce Energy Consumption for Embedded Computing
Author :
Wei Zhang ; Lan Wu
fYear :
2014
Firstpage :
340
Lastpage :
347
Abstract :
Scratch-Pad Memories (SPMs) have been increasingly used in embedded systems due to their time predictability and better energy efficiency as compared to caches. However, the SPM is typically controlled by software, which is less adaptive to runtime instruction/data access patterns that are dependent on the input data and hence may lead to performance degradation. In this paper, we study the energy dissipation of a number of hybrid on-chip memory architectures by combining both caches and SPMs without increasing the total on-chip memory size. In the hybrid SPM-cache architectures, the instructions/data in the SPMs can be accessed more energy-efficiently, while other instructions/data not stored into the SPMs can exploit the cache to take advantage of runtime locality for reducing energy consumption. Our experimental results indicate that with the equivalent total on-chip memory size, several hybrid SPM-cache architectures are more energy-efficient than either pure software-controlled SPMs or pure hardware-controlled caches. In particular, using the hybrid SPM-cache to store both instructions and data can achieve the best energy efficiency.
Keywords :
cache storage; embedded systems; energy consumption; memory architecture; embedded computing; embedded systems; energy consumption; energy dissipation; energy efficiency; hardware-controlled caches; hybrid SPM-cache architectures; hybrid on-chip memory architectures; runtime instruction/data access patterns; scratch-pad memories; time predictability; Benchmark testing; Energy consumption; Memory management; Program processors; Resource management; System-on-chip;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
High Performance Computing and Communications, 2014 IEEE 6th Intl Symp on Cyberspace Safety and Security, 2014 IEEE 11th Intl Conf on Embedded Software and Syst (HPCC,CSS,ICESS), 2014 IEEE Intl Conf on
Print_ISBN :
978-1-4799-6122-1
Type :
conf
DOI :
10.1109/HPCC.2014.59
Filename :
7056763
Link To Document :
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