Title :
WiCop: Engineering WiFi Temporal White-Spaces for Safe Operations of Wireless Body Area Networks in Medical Applications
Author :
Wang, Yufei ; Wang, Qixin ; Zeng, Zheng ; Zheng, Guanbo ; Zheng, Rong
Author_Institution :
Dept. of Comput., Hong Kong Polytech. Univ., Hong Kong, China
fDate :
Nov. 29 2011-Dec. 2 2011
Abstract :
ZigBee and other wireless technologies operating in the (2.4GHz) ISM band are being applied in Wireless Body Area Networks (WBAN) for many medical applications. However, these low duty cycle, low power, and low data rate medical WBANs suffer from WiFi co-channel interferences. WiFi interference can lead to longer latency and higher packet losses in WBANs, which can be particularly harmful to safety-critical applications with stringent temporal requirements. Existing solutions to WiFi-WBAN coexistence either require modifications to WiFi or WBAN devices, or have limited applicability. In this paper, by exploiting the Clear Channel Assessment (CCA) mechanisms in WiFi devices, we propose a novel policing framework, WiCop, that can effectively control the temporal white-spaces between WiFi transmissions. Specifically, the WiCop Fake-PHY-Header policing strategy uses a fake WiFi PHY preamble-header broadcast to mute other WiFi interferers for the duration of WBAN active interval, while the WiCop DSSS-Nulling policing strategy uses repeated WiFi PHY preamble (with its spectrum side lobe nulled by a band-pass filter) to mute other WiFi interferers throughout the duration of WBAN active interval. The resulted WiFi temporal white-spaces can be utilized for delivering low duty cycle WBAN traffic. We have implemented and validated WiCop on SORA, a software defined radio platform. Experiments show that with the assistance of the proposed WiCop policing schemes, the packet reception rate of a ZigBee-based WBAN can increase by up to 43.8% in presence of a busy WiFi interferer.
Keywords :
Zigbee; band-pass filters; biomedical communication; body area networks; radiofrequency interference; software radio; telecommunication traffic; wireless LAN; wireless channels; CCA; SORA; WBAN active interval; WiCop DSSS-Nulling policing strategy; WiCop Fake-PHY-Header policing strategy; WiFi PHY preamble; WiFi PHY preamble-header broadcast; WiFi co-channel interferences; WiFi devices; WiFi interferer; WiFi temporal white-space engineering; WiFi transmissions; WiFi-WBAN coexistence; ZigBee-based WBAN; band-pass filter; clear channel assessment mechanisms; low data rate; low duty cycle; low duty cycle WBAN traffic; medical applications; safe operations; software defined radio platform; spectrum side lobe; wireless body area networks; wireless technologies; Electrocardiography; IEEE 802.11 Standards; Interference; Monitoring; Spread spectrum communication; Wireless communication; Zigbee; WBAN; WiFi; coexistence; reliability; safety;
Conference_Titel :
Real-Time Systems Symposium (RTSS), 2011 IEEE 32nd
Conference_Location :
Vienna
Print_ISBN :
978-1-4577-2000-0
DOI :
10.1109/RTSS.2011.23