DocumentCode :
454156
Title :
Combined Coiflet wavelet and recursive least squares predictor for MPEG traffic prediction
Author :
Vasef, Mehdi ; Analoui, Morteza
Author_Institution :
Dept. of Comput. Eng., Iran Univ. of Sci. & Technol., Tehran, Iran
Volume :
1
fYear :
2005
fDate :
16-18 Nov. 2005
Abstract :
It has been shown both theoretically and empirically that network traffic has a self similar nature. The performance evaluation parameters and QoS metrics depend on this self similar nature of network traffic. So the network traffic predictor can be vital in applications such as bandwidth allocation and network capacity planning. A new wavelet based predictor in combination with adopted recursive least squares (RLS) is presented in this paper. We show that using 2 different wavelets yields different mean absolute errors in prediction of the self similar MPEG traffic. Previous work uses Daubechies 40 wavelet in combination with RES. Our experimental results show that using the Coiflet 5 in comparison to Daubechies 40 used by X. Wang has a mean absolute error that is 5.68 orders of magnitude less than Daubechies 40.
Keywords :
computer networks; least squares approximations; quality of service; telecommunication traffic; video communication; wavelet transforms; Coiflet 5; Daubechies 40 wavelet; MPEG traffic prediction; QoS metrics; bandwidth allocation; combined Coiflet wavelet predictor; mean absolute errors; network capacity planning; network traffic; performance evaluation parameters; recursive least squares predictor; self similar nature; Capacity planning; Channel allocation; Communication system traffic control; Computer networks; Ethernet networks; Internet; Least squares methods; Resonance light scattering; Telecommunication traffic; Traffic control; long range dependence; recursive least squares; self similarity; traffic prediction; wavelet;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Networks, 2005. Jointly held with the 2005 IEEE 7th Malaysia International Conference on Communication., 2005 13th IEEE International Conference on
ISSN :
1531-2216
Print_ISBN :
1-4244-0000-7
Type :
conf
DOI :
10.1109/ICON.2005.1635514
Filename :
1635514
Link To Document :
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