DocumentCode
3434235
Title
Extracting More Capacity from Multi-channel Multi-radio Wireless Networks by Exploiting Power
Author
Shila, Devu Manikantan ; Cheng, Yu ; Anjali, Tricha ; Wan, Peng-Jun
Author_Institution
Dept. Electr. & Comput. Eng., Illinois Inst. of Technol., Chicago, IL, USA
fYear
2010
fDate
21-25 June 2010
Firstpage
858
Lastpage
867
Abstract
Transmission power plays a crucial role in the design and performance of wireless networks. The issue is therefore complex since an increase in transmission power implies that a high quality signal is received at the receiver and hence an increase in channel capacity. Conversely, due to the shared nature of the wireless medium an increase in transmission power also implies high interference in the surrounding region and hence a quadratic reduction in the capacity of wireless networks. Recent literatures indicate that employing multiple channels can mitigate the negative effects of wireless interference and thus greatly improve the overall network capacity. Therefore, it is worth investigating the effect of exploiting power on the capacity of multi-channel multi-radio (MC-MR) wireless networks. Specifically, in this paper we address the following questions: (a) Can we maximize the capacity of MC-MR wireless networks by exploiting power? (b) Under what criteria can we increase the transmission power of the nodes in a MC-MR network? When n nodes each with m half-duplex interfaces are optimally deployed in a torus of unit area, traffic patterns are optimally assigned, each transmission´s range is optimally chosen and in the presence of c channels, we show that in contrast to the setting where nodes transmit at minimum power level Po the transport capacity, measured in bit-meters per second, of MC-MR network exploiting power is increased by Θ(cmin) in region cmin <; c <; mn/2 and by Θ(n) in region c ≥ mn/2 when nodes tune to transmit power level of P0(c/cmin)α/2 and P0nα/2 respectively-where cmin is the minimum number of channels required to achieve conflict-free transmissions in a network. Our analysis also sheds light into several insights that designers may want to consider to improve the performance of energy-e- - fficient bandwidth-constrained wireless networks.
Keywords
channel capacity; interference suppression; radio networks; radiofrequency interference; MC-MR wireless network capacity; channel capacity extraction; energy-efficient bandwidth-constrained wireless networks; high quality signal; m-half-duplex interfaces; multichannel multiradio wireless networks; quadratic reduction; receiver; transmission power; transport capacity; wireless interference negative effect mitigation; wireless medium; Computer science; Distributed computing; Interference; Power engineering and energy; Power engineering computing; Radio frequency; Relays; Telecommunication traffic; Throughput; Wireless networks; capacity; multi-channel; transmit power; wireless networks;
fLanguage
English
Publisher
ieee
Conference_Titel
Distributed Computing Systems (ICDCS), 2010 IEEE 30th International Conference on
Conference_Location
Genova
ISSN
1063-6927
Print_ISBN
978-1-4244-7261-1
Type
conf
DOI
10.1109/ICDCS.2010.64
Filename
5541649
Link To Document