Title :
Comparison of parallel discrete fourier transform implementations for modelling of optical communication systems
Author :
Grondzak, K. ; Kortis, P.
Author_Institution :
Dept. of Inf., Univ. of Zilina, Zilina, Slovakia
Abstract :
Discrete Fourier Transform (DFT) is a well-known mathematical tool used for scientific and engineering purposes. One of the areas, where DFT is frequently used is digital signal processing (DSP). The application of DSP techniques is used in many diverse areas, from telecommunication sector through medical data processing up to modern home entertainment systems. Many of the DSP applications require real time data processing. In the scientific area the DFT is frequently used for modelling of electrical circuits, communication systems and other areas, where the direct (from time domain to frequency domain) and inverse transformations are performed. This contribution presents two available libraries to accelerate DFT using parallelization. Presented libraries are implemented for use on recent computer processors (Central Processing Unit, CPU), as well as for the calculation of the graphics cards (Graphic Processing Unit, GPU). We briefly introduce the libraries and then present the comparison of their performance.
Keywords :
discrete Fourier transforms; graphics processing units; optical communication; parallel processing; telecommunication computing; CPU; DSP applications; GPU; central processing unit; computer processor; data processing; digital signal processing; direct transformation; discrete Fourier transform; electrical circuit modelling; graphic processing unit; graphics cards; home entertainment system; inverse transformation; medical data processing; optical communication system modelling; parallel DFT; parallelization method; Acceleration; Computer architecture; Discrete Fourier transforms; Graphics processing units; Libraries; Optical fibers;
Conference_Titel :
Emerging eLearning Technologies and Applications (ICETA), 2014 IEEE 12th International Conference on
Print_ISBN :
978-1-4799-7739-0
DOI :
10.1109/ICETA.2014.7107592