ITU-R F 1093-2-2006 Effects of multipath propagation on the design and operation of line-of-sight digital fixed wireless systems《视距数字固定无线系统设计和运行中多路传播的影响》.pdf
《ITU-R F 1093-2-2006 Effects of multipath propagation on the design and operation of line-of-sight digital fixed wireless systems《视距数字固定无线系统设计和运行中多路传播的影响》.pdf》由会员分享,可在线阅读,更多相关《ITU-R F 1093-2-2006 Effects of multipath propagation on the design and operation of line-of-sight digital fixed wireless systems《视距数字固定无线系统设计和运行中多路传播的影响》.pdf(7页珍藏版)》请在麦多课文档分享上搜索。
1、 Rec. ITU-R F.1093-2 1 RECOMMENDATION ITU-R F.1093-2*Effects of multipath propagation on the design and operation of line-of-sight digital fixed wireless systems (Question ITU-R 122/9) (1994-1997-2006) Scope This Recommendation provides an introduction to propagation-related aspects of the design an
2、d operation of digital radio-relay systems, drawing on information from Radiocommunication Study Group 3 texts and measurements conducted by administrations. Annex 1 explains the role of multipath fading as the dominant propagation factor for digital radio-relay systems operating at frequencies belo
3、w about 10 GHz. Further material discusses the roles of diversity techniques and adaptive equalization in reducing channel degradations. The Radiocommunication Assembly, considering a) that fading due to multipath propagation may distort and attenuate received signals on line-of-sight paths and ther
4、eby impair the performance of fixed wireless systems (FWSs); b) that Recommendation ITU-R P.530 provides data and methods for FWS propagation prediction and path planning; c) that countermeasures to reduce the effects of multipath fading on system performance, such as diversity reception and adaptiv
5、e equalization, are available; d) that methods of analysing the effects of multipath fading on the error performance of FWS are needed for comparing alternative designs, recommends 1 that multipath fading countermeasures should be incorporated in radio system design, as needed, to improve error perf
6、ormance; 2 that the methods in Annex 1 should be used for guidance in radio link planning. *This Recommendation should be brought to the attention of Radiocommunication Study Group 3. 2 Rec. ITU-R F.1093-2 Annex 1 Effects of multipath propagation on design and operation of line-of-sight digital FWSs
7、 1 Introduction The purpose of the present Annex is to furnish an introduction to propagation-related aspects of the design and operation of digital radio-relay systems, drawing on information from Radiocommunication Study Group 3 texts and measurements conducted by administrations. The first part o
8、f the Annex explains the role of multipath fading as the dominant propagation factor for digital radio-relay systems operating at frequencies below about 10 GHz. The following sections discuss the roles of diversity techniques and adaptive equalization in reducing channel degradations. Finally, the
9、prediction of system performance depending on the foregoing factors is treated. More detailed information on the application of the guidance contained here can be found in the Handbook on digital radio-relay systems. 2 Propagation considerations The texts established by Radiocommunication Study Grou
10、p 3 contain a wealth of information on the propagation phenomena to be taken into account in the design and operation of radio-relay systems. In particular, Recommendation ITU-R P.530 is especially concerned with “propagation data and prediction methods required for line-of-sight radio-relay systems
11、”. In that Recommendation, the information is arranged according to the propagation effects that must be considered. The relevant meteorological information concerning the propagation mechanisms is given in other Recommendations of the P series, notably Recommendations ITU-R P.834 and ITU-R P.676. P
12、ropagation conditions vary from month to month and from year to year, and the probability of occurrence of these conditions may vary by as much as several orders of magnitude. It may therefore take some three to five years before drawing a proper conclusion on the results of a propagation experiment
13、. However, for system application requirements, this time is often not available and models of this variability for some parameters have been examined in Recom-mendation ITU-R P.841. From propagation data it was concluded that for a well-designed path which is not subject to diffraction fading or su
14、rface reflections, multipath propagation is the dominant factor in fading below 10 GHz. Above this frequency, the effects of precipitation tend increasingly to determine the permissible path length through the system availability objectives. The necessary reduction in path length with increase in fr
15、equency, reduces the severity of multipath fading. These two principal causes of fading are normally mutually exclusive. Given the split between availability and error performance objectives, precipitation effects contribute mainly to unavailability and multipath propagation mainly to error performa
16、nce. Another influence of precipitation, e.g. back-scatter from rain, may influence the choice of radio-frequency channel arrangements. Propagation effects due to various forms of precipitation tend not to be frequency dispersive, while multipath propagation caused by tropospheric layers can be, and
17、 this may cause severe distortion of information-bearing signals. The rapid development of digital communication systems has required an improved understanding of these effects and the means to overcome them. Rec. ITU-R F.1093-2 3 3 Countermeasures to propagation effects There are two countermeasure
18、s to propagation distortion commonly used: diversity techniques and adaptive channel equalizers, which attempt to combat attenuation and distortion caused by the propagation medium. The effectiveness of a fading countermeasure is usually expressed in terms of an improvement factor. On a single test
19、path, the improvement factor is the ratio of the outage time observed for a system without the countermeasure, to that observed when the countermeasure is operative (see Note 1). The improvement factor depends on the outage threshold chosen. NOTE 1 Outage time is a general term to indicate the time
20、duration over which the system exceeds a chosen bit-error ratio (BER) threshold. 3.1 Diversity techniques The most commonly used diversity techniques are frequency diversity and space diversity. For others, see Recommendations ITU-R F.752, ITU-R P.530 and the ITU-R Handbook on Digital Radio-Relay Sy
21、stems (edition 1996). 3.1.1 Space diversity Space diversity is one of the most effective methods of combating multipath fading. For digital radio systems, where the performance objectives can be difficult to meet owing to waveform distortions caused by multipath effects, system designs must often be
22、 based on the use of space diversity. In space diversity systems the signals received by two vertically separated receiving antennas rarely fade simultaneously when the fades are deep. The improvement factor that a system may achieve by using these two signals depends on both propagation factors and
23、 the radio system implementation, that is, its vulnerability to the power loss and multipath distortion of signals and its method of processing them. In evaluating the improvements achievable with space diversity, the accepted practice has been to use the single frequency fading improvement factor f
24、ormulation in Recommen-dation ITU-R P.530, or similar formulations verified for regional application, particularly for thermal noise considerations in calculating outage probabilities (see 4). By reducing the effective incidence of deep fading, space diversity can reduce the effects of various types
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