DocumentCode :
170609
Title :
Exploiting mobility in proportional fair cellular scheduling: Measurements and algorithms
Author :
Margolies, Robert ; Sridharan, Arun ; Aggarwal, Vaneet ; Jana, Rittwik ; Shankaranarayanan, N.K. ; Vaishampayan, Vinay A. ; Zussman, Gil
Author_Institution :
Electr. Eng., Columbia Univ., New York, NY, USA
fYear :
2014
fDate :
April 27 2014-May 2 2014
Firstpage :
1339
Lastpage :
1347
Abstract :
Proportional Fair (PF) scheduling algorithms are the de-facto standard in cellular networks. They exploit the users´ channel state diversity (induced by fast-fading), and are optimal for stationary channel state distributions and an infinite time-horizon. However, mobile users experience a non-stationary channel, due to slow-fading (on the order of seconds), and are associated with basestations for short periods. Hence, we develop the Predictive Finite-horizon PF Scheduling ((PF)2S) Framework that exploits mobility. We present extensive channel measurement results from a 3G network and characterize mobility-induced channel state trends. We show that a user´s channel state is highly reproducible and leverage that to develop a data rate prediction mechanism. We then present a few channel allocation estimation algorithms that rely on the prediction mechanism. Our trace-based simulations consider instances of the PF2S Framework composed of combinations of prediction and channel allocation estimation algorithms. They indicate that the framework can increase the throughput by 15%-55% compared to traditional PF schedulers, while improving fairness.
Keywords :
3G mobile communication; cellular radio; channel allocation; channel estimation; diversity reception; fading channels; scheduling; 3G network; base stations; cellular networks; channel allocation estimation algorithms; channel measurement; channel state diversity; nonstationary channel; predictive finite horizon PF scheduling; proportional fair cellular scheduling; slow fading; Correlation; Delays; Market research; Mobile communication; Prediction algorithms; Scheduling; Cellular networks; Channel state prediction; Measurements; Mobility; Proportional fairness; Slow-fading;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
INFOCOM, 2014 Proceedings IEEE
Conference_Location :
Toronto, ON
Type :
conf
DOI :
10.1109/INFOCOM.2014.6848067
Filename :
6848067
Link To Document :
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