CEPT ERC REPORT 48-1995 Comparison of the Subdivision and Interleaved Methods Concerning the Arrangement of Channel Patterns within a Frequency Range (Stockholm)《有关一个频率范围内信道模式安排的细分.pdf
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1、STD.CEPT ERC REPORT 48-ENGL 1995 W 232b414 OOL34L 434 W ERC REPORT 48 European Radiocommunications Committee (ERC) L with this is influenced by whether the higher capacity channels fully occupy the frequency range availability, and if not, where the higher capacity channels lie in the available freq
2、uency range. * a band which is being used by two (or more) operators who are using equipment with different spacing could be divided more efficiently using one arrangement method or the other; this would require the determination of the spectral decoupling between the equipments used by the two oper
3、ators, as explained later in this document. 3.1 Primary considerations in choosing channel arrangement 3.1.1 Alignment ofpaerns In all cases the most important consideration is how the basic pattern aligns with the available frequency range (see Annex 3), which will constrain the number of lower cap
4、acity channels which could be accommodated into the plan. a) If the widest channels align such that there is little or no spare spectrum at either end of the plan, then it will be possible to maximise the number of lower capacity channels by the use of channel subdivision (Annex 3, Case l), whilst t
5、he interleaved pattern would not be able to accommodate as many lower capacity channels. b) If, however, there is a greater amount of spare spectrum at either end, it would be possible to assign an additional low capacity channel at each end of the plan by using the interleaved arrangement, so that
6、the interleaved plan offers more channels than the subdivision plan (Annex 3, Case 2). c) In other case it might be found that the alignment of the basic pattern relative to the available band is such that the higher capacity plan is significantly offset so that the spare spectrum is mostly to one e
7、nd of the band. In this case (Annex 3, Case 3), there would usually be no difference between the two methods. STD-CEPT ERC REPORT 4B-ENGL 1995 = 2326414 0013424 channel spacing: 7.0 MHz System C: 2 * 2 Mbits; channel spacing: 3.5 MHz The modulation scheme 4 FSK was applied to all three systems. The
8、IRF values are listed in Annexes 6 and 7. STD-CEPT ERC REPORT 48-ENGL 1995 = 2326434 00L342b b74 W ERC REPORT 18 Page 5 6 RESULTS TAKEN FROM THE EXAMPLE 6.1 Applicability of the test result In the example, 4 FSK-modulated radio relay systems with relatively low transmission rates (up to 8 * 2 Mbit/s
9、) taken from only one group of systems were tested. Nowadays, such systems are typically used in frequency ranges above approximately 13 GHz. They are basically suitable for the band re-use in the co- channel mode. To what extent the results taken from this example are applicable to comparable radio
10、 relay systems has to be studied in further detail (if necessary, in coordination with ETSI TM 4). Moreover, the conditions in the following cases need also be tested: * * * multi-carrier systems, * high-level modulated radio relay systems (e.g. 64 QAM), radio relay systems with high transmission ra
11、tes (e.g. 155 Mbit/s), concerning patterns in which adjacent channels have a different polarisation (alternated pattern). 6.2 Spectral decoupling between channels of one pattern In the case of the systems under test, the IFW is approximately 22 dB between adjacent channels of the same pattern indepe
12、ndent of the type of pattern arrangement (subdivision or interleaved). This value is by no means sufficient to be able to occupy adjacent channels in the same pattern within the same geographical area and without mutual coordination if it has to be ensured that no harmful interference is caused betw
13、een the channels. For instance, a radio relay operator “A“ cannot setup and operate a radio relay network in channel 4 without prior coordination with radio relay operator “B“ using, for example, channel 5 (see Annexes 8 and 9). 6.3 Conclusion regarding the spectral decoupling between channels of on
14、e pattern Independent of the type of pattern arrangement used (subdivision or interleaved), the adjacent channels of one pattern always have to be coordinated. Normally, even the channels with a larger frequency separation (“not-immediately adjacent channels“) have to be included in the coordination
15、. In Germany, a central and independent office of the Federal Office for Posts and Telecommunications is in charge of this task in order to ensure the highest possible degree of efficiency and frequency economy in terms of frequency assignments and coordination. If “guard bands“ are introduced betwe
16、en two operators by not using one or even several channels, a non- interference operation can also be achieved. A high degree of frequency economy, however, cannot be ensured by way of the latter possibility (Annex 10). Which of the two types of pattern arrangements is more effective than the other
17、has to be determined in each single case, depending on the required IRF value. STD-CEPT ERC REPORT 48-ENGL 1995 = 2326414 0013427 500 - ERC REPORT 48 Page 6 6.4 Spectral decoupling between the channels of two patterns The main differences between a subdivision and an interleaved arrangement of chann
18、el patterns are the frequency separations between the channel center frequencies of the two patterns under test (Delta f) and the resulting IRF values. These differences can best be illustrated if the channel spacing varies by a factor of 2. The following values concerning the systems A (8 * 2 Mbit/
19、s; channel spacing 14 MHz) and B (4 * 2 Mbits; channel spacing 7 MHz) were taken from the example: 6.5 Delta f O MHz +/- 3.5 MHz +/- 7.0 MHz +/- 10.5 MHz +/- 14.0 MHz +/- 17.5 MHz +/- 2 1 .O MHz +/- 24.5 MHz +/- 28.0 MHz +/- 3 1.5 MHz Subdivision - 2 channels; IRF = O dB 2 channels; IRF = 18 - 23 dB
20、 2 channels; IRF = 38 - 49 dB 2 channels; IRF = 56 - 61 dB 2 channels: IRF = 66 - 71 dB _-_ _-_ - - Table 2: Comparison of spectora Interleaved 1 channel; IRF = O dB .- 2 channels; IRF = 7 - 11 dB 2 channels; IRF = 3 1 - 35 dB 2 channels; IRF = 50 - 66 dB 2 channels; IRF = 61 - 71 dB iecoupling _- .
21、- _ - Conclusion regarding the spectral decoupling between channels of two patterns In order to be able to decide which of the two methods ensures a higher degree of frequency economy, the frequency distribution of the required IRF value should be tested in a radio relay network which has been expan
22、ded to full capacity. This test is very time-consuming and the result depends on the following factors (among others): * data of the antenna used, * structure of the network, * geographical and topographical conditions, * characteristics of the radio relay systems used. 7 ASPECTS OF COORDINATION WIT
23、HIN THE NETWORK OF ONE OPERATOR AND COORDINATION BETWEEN SEVERAL OPERATORS The aspects of coordination are illustrated by means of the example of a German mobile network operator (e- plus) and the frequency assignment criteria and principles that will be employed by the Radiocommunications Agency of
24、 the UK. 7.1 Coordination within the network of one operator (Example: e-plus) In order to ensure effective coordination all employees of the operator (e-plus) involved in the planning of the network make use of a planning tool providing information on the envisaged and established links of the mobi
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