Title :
On adaptive frequency hopping to combat coexistence interference between Bluetooth and IEEE 802.11b with practical resource constraints
Author :
Chek, Michael Cho-Hoi ; Kwok, Yu-Kwong
Author_Institution :
Dept. of Electr. & Electron. Eng., Hong Kong Univ., China
Abstract :
In contrast to traditional frequency hopping techniques, adaptive frequency hopping (AFH) is a low cost and low power solution to avoid interference dynamically. While each AFH algorithm proposed previously is shown to be efficient, a detailed performance analysis of various AFH mechanisms under realistic resource constraints is yet to be done. In particular, based on our performance study on Bluetooth systems presented in this paper, we have found that the AFH mechanism adopted by IEEE 802.15 task group 2 (TG2) is very sensitive to memory and power limitations. We then propose an interference source oriented adaptive frequency hopping (ISOAFH) approach based on a cross-layer design, in which the baseband layer of Bluetooth considers not only the instantaneous channels condition but also the physical layer transmission characteristics of potential interference sources in determining the hop sequence. In our simulations using detailed MATLAB Simulink modeling, we find that our proposed method is much more robust in that it is insensitive to memory and energy constraints. Indeed, our approach generally achieves a lower collision rate and higher ISM spectrum utilization.
Keywords :
Bluetooth; IEEE standards; frequency hop communication; interference (signal); Bluetooth baseband layer; IEEE 802.11b; IEEE 802.15; ISM spectrum utilization; MATLAB Simulink modeling; coexistence interference; coexistence mechanisms; cross-layer design; energy constraints; hop sequence determination; instantaneous channels condition; interference source oriented adaptive frequency hopping; low collision rate; memory constraints; physical layer transmission; resource constraints; Baseband; Bluetooth; Costs; Cross layer design; Frequency; Interference constraints; MATLAB; Mathematical model; Performance analysis; Physical layer;
Conference_Titel :
Parallel Architectures, Algorithms and Networks, 2004. Proceedings. 7th International Symposium on
Print_ISBN :
0-7695-2135-5
DOI :
10.1109/ISPAN.2004.1300511