ITU-R S 734-1992 Application of Interference Cancellers in the Fixed-Satellite Service - Section 4C - Earth Station and Baseband Characteristics - Earth Station Antennas - Maintena.pdf
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1、CCIR RECMN*734 92 m 4855212 0518753 TA5 m Rec. 734 131 RECOMMENDATION 734 THE APPLICATION OF INTERFERENCE CANCELLERS IN THE FIXED-SATELLITE SERVICE (Question 58/4) (1992) The CCR, considering a) that one of the principal limitations in achieving greater utilization of the RF spectrum and geostationa
2、ry orbit for the fixed-satellite service (FSS) is mutual interference among satellite networks operating in common frequency bands and serving the same or adjacent geographical areas; b) that inter-satellite network interference protection is primarily achieved by earth-station antenna discriminatio
3、n; Cl lower noise receivers may be used to increase communication capacity; d) that other techniques such as frequency re-use, improved modulation, higher power satellite transmitters and that some of these techniques increase the susceptibility of sateliite networks to mutual interference; e interf
4、erence canceiling devices; f) amplitude and phase, and to phase invert the replica and add it to the wanted signal plus interference, that the deleterious effects of some of these techniques may be reduced through the employment of that the basic principle of interference cancellers is to construct
5、a replica of an interfering signal in both recommends 1. reduce interference or the effects of interference. that interference cancellers should be used, where cost effective, in satellite communication systems to Note 1 - Some examples of interference cancelling techniques are discussed in Annex 1.
6、 ANNEX 1 A survey of interference cancellers for use in the fixed-satellite service 1. Examples of interference cancellers A few examples of these techniques reported in the technical literature are described below. The results obtained by the various investigators were in the absence of any signifi
7、cant thermal noise. 1.1 Baseband interference cancellers For angle-modulated carriers, a method of interference cancellation at baseband has been achieved by mixing wanted and interfering RF signals into the experimental system depicted in Fig. 1. It should be noted that this approach requires that
8、the interference be received directly as the input for the interfering channel. This can be achieved by having a separate antenna directly facing the interference source. The interference signal is mixed with the wanted carrier at RF or IF. The low frequency components resulting from this process we
9、re shown to be the replica of the CCIR RECMN*734 92 W 4855232 0538754 731 132 Rec. 734 baseband interference. Cancellation was achieved by subtracting this replica from the demodulated baseband signal plus interference. Laboratory tests showed this method reduced interference by about 15 dB for a wi
10、de range of operating parameters. FSGURE 1 Block diagram of test Set-up Wanted channel Splitter Demodulated signal NPR 1 and interference channel FM demod , generator GI + I - - - - - - - - - - - - - - - I I I Mixer I I Interference channel l I I I ,I l- + I L J Interfering channel FM, NPR 2 generat
11、or Gp _* mod I . Re- ceiver amp Cancellation device In cases where a separate interfering signal is not available for purposes of control or reference, another technique has been proposed for angle modulation signals. In this approach, the information contained in the envelope waveform of the combin
12、ed wanted and interfering carriers is used to reconstruct the baseband interference. For effective cancellation, the interference source should be separated from the wanted carrier by the sum of the highest modulating frequencies. Analysis and experiments revealed that the detected envelope of the d
13、esired carrier plus the interfering carrier is equal to the demodulated interference component shifted by plus or minus 90“. Once identified, the interference ccan be removed by subtraction. As much as 15 dB of interference reduction was achieved for a range of tested parameters (frequency separatio
14、n, carrier-to-interference ratios, and modulation indices). The best results occurred at the lower modulation indices and larger carrier frequency separations. For frequency modulation (FM) signals where the interfering signal is small and cannot be received separately, it is possible to detect the
15、interference at baseband with a crystal detector. A pure FM signal has a constant envelope and the addition of interference results in amplitude modulation which can be detected, and thus removed by subtraction. However, in laboratory tests, this technique was successful in cancelling only those int
16、erference components which had not experienced spectral foldover. Since only the first order component can be assured of cancellation, the interference must be sinall compared to the wanted FM signal. CCIR RECMN*34 92 W 4855212 0518755 858 = Rec. 734 133 The higher order terms become troublesome if
17、the interference power is significant. They hnit the degree of interference cancellation which can be realized in a baseband cancellation technique since the phasing required to cancel the first order term is not the same as that required to cancel the higher order terms. A preferable approach in th
18、ese circumstances is to cancel interference at RF or IF prior to demodulation, where all orders of the baseband interference spectrum are suppressed. 1.2 Cancellation at IF Another technique investigated for FM systems was to subtract the IF or RF spectra of an interfering signal prior to the receiv
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