Title :
Investigation on the power efficiency of multi-core and GPU Processing Element in large scale SIMD computation with CUDA
Author :
Ren, Da Qi ; Suda, Reiji
Author_Institution :
Dept. of Comput. Sci., Univ. of Tokyo, Tokyo, Japan
Abstract :
CPU-GPU Processing Element (PE) has become a very popular architecture to construct modern multiprocessing system because of its high performance on massively parallel processing and vector computations. Power dissipation is one of the important factors influencing design development of High Performance Computing (HPC) as a large scale scientific computation may use thousands of processors and hundreds hours of continuous execution that will result enormous energy predicament. Enhancing the utilizations of an individual PE to reach its best computation capability and power efficiency is valuable for saving the overall power cost of large multi-processing systems. Power performance of a CUDA PE is dependent on electrical features of the inside hardware components and their interconnections; also high level applications and the parallel algorithms performed on it. Based on measurements and experimental evaluations, in this work we provide a load sharing method to adjust the workload assignment within the CPU and GPU components inside a CUDA PE in order to optimize the overall power efficiency. The improvement on computation time and power consumption has been validated by examining the program executions when above method is applied on real systems.
Keywords :
computer graphic equipment; coprocessors; multiprocessing systems; parallel architectures; power aware computing; CPU-GPU processing element; GPU processing element; compute unified device architecture; graphics processing unit; high performance computing; multicore processing element; multiprocessing system; parallel processing; power efficiency; vector computations; Algorithm design and analysis; Computational efficiency; Computational modeling; Graphics processing unit; Hardware; Kernel; Power measurement; Algorithms for reduced power; Models for collective optimization of power and performance; energy and heat;
Conference_Titel :
Green Computing Conference, 2010 International
Conference_Location :
Chicago, IL
Print_ISBN :
978-1-4244-7612-1
DOI :
10.1109/GREENCOMP.2010.5598300