ITU-R S 1529-2001 Analytical method for determining the statistics of interference between non-geostationary-satellite orbit fixed-satellite service systems and other non-geostatiosyst.pdf
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1、 Rec. ITU-R S.1529 1 RECOMMENDATION ITU-R S.1529 Analytical method for determining the statistics of interference between non-geostationary-satellite orbit fixed-satellite service systems and other non-geostationary-satellite orbit fixed-satellite service systems or geostationary-satellite orbit fix
2、ed-satellite service networks (Question ITU-R 231/4) (2001) The ITU Radiocommunication Assembly, considering a) that emissions from the earth stations as well as from the space stations of satellite systems (geostationary-satellite orbit fixed-satellite service (GSO FSS), non-GSO FSS, non-GSO mobile
3、-satellite service (MSS) feeder links) in the FSS may result in interference to another such system when both systems operate in the same frequency bands; b) that when non-GSO satellite systems are involved, the statistical behaviour of interference, especially that related to short-term events, con
4、stitutes an important factor in interference evaluation studies; c) that it is desirable to have reliable and precise tools for determining the statistical behaviour of interference between systems that have co-frequency links when the interference environment involves non-GSO satellite systems; d)
5、that computer simulation methods (see Recommendation ITU-R S.1325) may require an excessively long computer time to ensure that all interference events are taken into account and thus statistically significant results are obtained, recommends 1 that the analytical method given in Annex 1 should be c
6、onsidered as a possible method for use in obtaining aggregate interference cumulative probability distributions for assessing the interference between systems that have co-frequency links when the interference environment involves non-GSO satellite systems. ANNEX 1 An analytical method for assessing
7、 interference in interference environments involving non-GSO satellite systems 1 Introduction Most of the existing methods to assess interference involving non-GSO satellite systems are based on direct computer simulation. These methods are usually time consuming and require a new lengthy simulation
8、 run each time a change is made in some of the system and system parameters. Also, in complex situations, involving a large number of earth stations and non-GSO satellites, 2 Rec. ITU-R S.1529 these methods may require a very long computer time to produce statistically significant results. This Anne
9、x presents an analytical method, that can be implemented through numerical techniques, intended to perform the evaluation of interference sensitivity to system and system parameters without requiring lengthy computer simulation runs. Also, as opposed to results generated through simulation, the resu
10、lts obtained with the analytical approach correspond to an infinite number of simulated days, and therefore, in this sense, they do not present the need for long running times, as may be required in computer simulation methods to assure statistically significant results. The method is based on the k
11、nowledge of the probability density function (pdf) of the position of a single satellite placed in an orbit with an arbitrary inclination. To illustrate the applicability of the proposed method to complex interference environments, results for some specific situations are presented. Comparisons of t
12、he results obtained using the proposed method and those generated by a widely used commercially available simulation software have indicated that the proposed method can generate reliable and precise results with less required computer time. 2 Methodology Let us consider an interference environment
13、involving several, say n, non-GSO systems. The approach being considered in this Recommendation to assess interference in such an environment takes into account the fact that, once the position of one particular satellite (here referred to as reference satellite) in each constellation is known, the
14、aggregate interference levels affecting the receivers of any interfered-with system in the environment (considering that all systems parameters are given) can be uniquely determined. It further assumes that the positions of these reference satellites are characterized by statistically independent ra
15、ndom vectors. Based on these assumptions, desired and interfering signal power levels can be seen as random variables that are deterministic functions of the positions of the reference satellites, and therefore their pdfs can be determined once the pdfs modelling the positions of each of the n refer
16、ence satellites are known. As an example, consider the situation illustrated in Fig. 1. This Figure shows two non-GSO satellite systems, both having circular orbits and arbitrary satellite constellations. Satellites of system 1 move on surface E1 and satellites of system 2 move on surface E2. Refere
17、nce satellites for both systems are also indicated. In this example the downlink aggregate interference from system 1 satellites into a given earth station in system 2 is considered. Given that reference satellite Siof system i ( i = 1, 2) is located at longitude iand latitude ithe positions of all
18、other satellites in both constellations can be uniquely determined as a function of the two location vectors T),(111=x and .),(222T=x Therefore, considering for instance that the earth station antenna always points to the nearest satellite in the constellation of its system, and that all other syste
19、ms parameters, such as satellite and earth station antenna radiation patterns, e.i.r.p., etc. are known, then both the downlink aggregate interference I and the desired signal level C at the considered earth station can be computed for each pair of values of the vectors ,),(Tiii=x , ,iii= Figure 5a
20、shows the results obtained for the probability distribution estimates with the proposed method and through a computer simulation run corresponding to 58 simulated days (6101 time steps with a 5 s time step). The required computer time was around 45 min for both methods, in a 200 MHz PC machine. Fig.
21、 5b and 5c display, in an expanded view, the regions of Fig. 5a corresponding, respectively, to lower levels of interference (side lobe interference) and higher levels of interference (close to in-line interference). It can be noted from these Figures that a good agreement between the results genera
22、ted by the two methods was obtained in the range of lower levels of interference. Considering the higher levels of interference, that occur for a very a small percentage of time, we note that several values of z, although showing a positive probability in the proposed method, did not occur in the si
23、mulation results. This suggests that an increase in the number of simulated days might be required to better cover all the possibilities for the system satellites locations. These differences are also reflected in Fig. 6, which shows the obtained cumulative distribution curves in the range of higher
24、 levels of interference. Note that a difference of 1.5 dB can be observed for the values of Z corresponding to probabilities on the order of .1014 16 Rec. ITU-R S.1529 1529-05a108106104110280 60 40 20Z (dB)Solid line: analytical methodDotted line: simulationProbabilityFIGURE 5aProbability distributi
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