Propagation Issues for Cognitive Radio

被引:91
作者
Molisch, Andreas F. [1 ]
Greenstein, Larry J. [2 ]
Shafi, Mansoor [3 ]
机构
[1] Univ So Calif, Dept Elect Engn, Los Angeles, CA 90089 USA
[2] Rutgers State Univ, WINLAB, North Brunswick, NJ 08902 USA
[3] Telecom New Zealand, Wellington, New Zealand
关键词
Angle-of-arrival; channel models; delay spread; dispersion; Doppler; multipath propagation; path loss; shadowing; DIRECTIONAL CHANNEL MODEL; SIGNAL LEVEL MEASUREMENTS; TIME-DELAY SPREAD; PATH LOSS; WIRELESS NETWORKS; UHF; SPECTRUM; ANTENNA; PREDICTION; DISPERSION;
D O I
10.1109/JPROC.2009.2015704
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Cognitive radios are expected to work in bands below about 3.5 GHz and may be used for a variety of applications, e.g., broadband fixed wireless access, mobile and nomadic access, etc. Cognitive radio system designers must have access to a wide range of channel models covering a wide span of operating frequencies, carrier bandwidths, deployment conditions, and environments. This paper provides a comprehensive overview of the propagation channel models that will be used for the design of cognitive radio systems. We start with classical models for signal loss versus distance and discuss their dependence on the physical properties of the environment and operating frequency. Here we also introduce the concept of log-normal shadowing resulting from signal blockage by man-made and natural features. Next, we discuss the time-varying nature of the wireless channel, introduced as a result of the motion of objects in the channel. This is followed by a discussion on the dispersion of the signal caused by various effects of propagation, especially in the time and frequency domains. Angular dispersion, which is discussed next, is important because cognitive radios may be based on modems that exploit the spatial domain. Lastly, we summarize channel models that have been standardized for fixed and mobile systems.
引用
收藏
页码:787 / 804
页数:18
相关论文
共 111 条
[41]   Measurement and modeling of an ultra-wide bandwidth indoor channel [J].
Ghassemzadeh, SS ;
Jana, R ;
Rice, CW ;
Turin, W ;
Tarokh, V .
IEEE TRANSACTIONS ON COMMUNICATIONS, 2004, 52 (10) :1786-1796
[42]  
GLAZUNOV AA, 1999, P IEEE VTC FALL SEP, P107
[43]  
Goldsmith A., Wireless Communications
[44]   A new path-gain/delay-spread propagation model for digital cellular channels [J].
Greenstein, LJ ;
Erceg, V ;
Yeh, YS ;
Clark, MV .
IEEE TRANSACTIONS ON VEHICULAR TECHNOLOGY, 1997, 46 (02) :477-485
[45]   Gain reductions due to scatter on wireless paths with directional antennas [J].
Greenstein, LJ ;
Erceg, V .
IEEE COMMUNICATIONS LETTERS, 1999, 3 (06) :169-171
[46]  
GREENSTEIN LJ, IEEE T VEH IN PRESS
[47]   CORRELATION MODEL FOR SHADOW FADING IN MOBILE RADIO SYSTEMS [J].
GUDMUNDSON, M .
ELECTRONICS LETTERS, 1991, 27 (23) :2145-2146
[48]  
HAMPICKE D, 1999, P VTC FALL 99 AMST N, P2258
[49]  
HARI KVS, 2002, 802163C0049R2 IEEE
[50]  
HARRYSON F, 2008, P IEEE VTC