Error Control Coding in Low-Power Wireless Sensor Networks: When Is ECC Energy-Efficient?

被引:0
作者
Sheryl L. Howard
Christian Schlegel
Kris Iniewski
Kris Iniewski
机构
[1] University of Alberta,Department of Electrical & Computer Engineering
来源
EURASIP Journal on Wireless Communications and Networking | / 2006卷
关键词
Power Consumption; Energy Efficiency; Wireless Sensor Network; Free Space; Energy Saving;
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摘要
This paper examines error control coding (ECC) use in wireless sensor networks (WSNs) to determine the energy efficiency of specific ECC implementations in WSNs. ECC provides coding gain, resulting in transmitter energy savings, at the cost of added decoder power consumption. This paper derives an expression for the critical distance[inline-graphic not available: see fulltext], the distance at which the decoder's energy consumption per bit equals the transmit energy savings per bit due to coding gain, compared to an uncoded system. Results for several decoder implementations, both analog and digital, are presented for[inline-graphic not available: see fulltext] in different environments over a wide frequency range. In free space,[inline-graphic not available: see fulltext] is very large at lower frequencies, suitable only for widely spaced outdoor sensors. In crowded environments and office buildings,[inline-graphic not available: see fulltext] drops significantly, to 3 m or greater at 10 GHz. Interference is not considered; it would lower[inline-graphic not available: see fulltext]. Analog decoders are shown to be the most energy-efficient decoders in this study.
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  • [11] Heidemann J(1993)Design considerations for energy-efficient radios in wireless microsensor networks Proceedings of IEEE International Conference on Communications (ICC '93) 2 1064-1070
  • [12] Estrin D(1962)Near Shannon limit error-correcting coding and decoding: turbo-codes IRE Transactions on Information Theory 8 21-28
  • [13] Sohrabi K(1991)Low-density parity-check codes IEE Electronics Letters 27 1384-1387
  • [14] Pottie GJ(1998)Path loss prediction in multifloored buildings at 914 MHz Proceedings of IEEE Global Telecommunications Conference (GLOBECOM '98) 2 904-909
  • [15] Bennett F(2002)Partition-based path loss analysis for in-home and residential areas at 5.85 GHz Proceedings of IEEE International Conference on Communications (ICC '02), April- 5 3424-3428
  • [16] Clarke D(2003)An accurate line of sight propagation performance model for ad-hoc 802.11 wireless LAN (WLAN) devices IEEE Transactions on Antennas and Propagation 51 2413-2419
  • [17] Evans JB(1990)The mean received power in ad hoc networks and its dependence on geometrical quantities Proccedings of IEEE International Conference on Communications (ICC '90) 4 1334-1340
  • [18] Hopper A(2001)Multi-frequency radiowave propagation measurements in the portable radio environment Proceedings of IEEE 54th Vehicular Technology Conference (VTC '01) 3 1251-1255
  • [19] Jones A(1993)Propagation studies for mobile-to-mobile communications Proceedings of the IEEE 81 941-968
  • [20] Leask D(2004)The indoor radio propagation channel IEE Communications Engineer 2 32-36