DocumentCode
269301
Title
Interference Allocation Scheduler for Green Multimedia Delivery
Author
Siyi Wang ; Weisi Guo ; Khirallah, Chadi ; VukobratovicÌ, Dejan ; Thompson, John
Author_Institution
Inst. for Telecommun. Res., Univ. of South Australia, Mawson Lakes, SA, Australia
Volume
63
Issue
5
fYear
2014
fDate
Jun-14
Firstpage
2059
Lastpage
2070
Abstract
One of the key challenges in wireless networking is allocating the available radio resources to maximize key service delivery parameters such as the aggregate throughput and the multimedia quality of experience (QoE). We propose a novel and effective scheduling policy that allocates resource blocks, such that interference power is shifted toward capacity-saturated users, while improving the throughput of unsaturated users. The highlight of this paper is that the proposed scheme can dramatically improve the performance of cells that have a high discrepancy in its signal-to-noise ratio (SNR) distribution, which is typical in urban areas. The results show that a free-lunch (FL) solution is possible, whereby for negligible performance degradation in the saturated users, a large improvement in the nonsaturated users can be obtained. However, on average, the number of FL user pairings is low. By relaxing the degradation constraints, the non-FL (NFL) solution can yield a greater multiuser throughput gain. Motivated by a surge in mobile multimedia traffic, we further demonstrate that the proposed scheduling may have a profound impact on both energy efficiency and QoE of multimedia service delivery.
Keywords
Long Term Evolution; multimedia communication; quality of experience; scheduling; telecommunication power management; telecommunication traffic; QoE; SNR distribution; aggregate throughput; capacity-saturated users; degradation constraints; energy efficiency; free-lunch solution; green multimedia delivery; interference allocation scheduler; interference power; key service delivery parameters; mobile multimedia traffic; multimedia quality of experience; multimedia service delivery; multiuser throughput gain; radio resources; resource blocks; scheduling policy; signal-to-noise ratio distribution; wireless networking; Degradation; Gain; Interference; Multimedia communication; Resource management; Signal to noise ratio; Throughput; Green; LTE; interference avoidance; multimedia; scheduling;
fLanguage
English
Journal_Title
Vehicular Technology, IEEE Transactions on
Publisher
ieee
ISSN
0018-9545
Type
jour
DOI
10.1109/TVT.2014.2312373
Filename
6774972
Link To Document