ITU-R S 1425-2000 Transmission Considerations for Digital Carriers Using Higher Levels of Modulation on Satellite Circuits 《卫星电路上使用高层调制的数字载波的传输考虑》.pdf
《ITU-R S 1425-2000 Transmission Considerations for Digital Carriers Using Higher Levels of Modulation on Satellite Circuits 《卫星电路上使用高层调制的数字载波的传输考虑》.pdf》由会员分享,可在线阅读,更多相关《ITU-R S 1425-2000 Transmission Considerations for Digital Carriers Using Higher Levels of Modulation on Satellite Circuits 《卫星电路上使用高层调制的数字载波的传输考虑》.pdf(10页珍藏版)》请在麦多课文档分享上搜索。
1、Rec. ITU-R S.1425 1 RECOMMENDATION ITU-R S.1425 TRANSMISSION CONSLDERATIONS FOR DIGITAL CARRLERS USNG HIGHER LEVELS OF MODULATION ON SATELLITE CIRCUITS* (Questions ITU-R 73/4 and ITU-R 230/4) (2000) The ITU Radiocommunication Assembly, considering a that the radio spectrum and geostationary orbit ar
2、e limited resources; b) that there is spectrum congestion in certain frequency bands allocated to the FSS; c becoming increasingly difficult; that due to the rapid development of different radio services, sharing conditions in many frequency bands are d) such as 8-PSK and 16-QAM as compared to QPSK;
3、 that the spectral efficiency of satellite networks can be increased through the use of higher level modulations e techniques; that the power efficiency of satellite networks can be improved through the use of appropriate encoding f) that there is a continuous need to update the information availabl
4、e on the characteristics of satellite transmissions and their related performance; g) that different transmission techniques can be implemented to transport the same information stream, taking into account a sensitive to linear and non-linear distortion than those transmitting QPSK signals; that sat
5、ellite circuits transmitting higher level modulations and in particular QAM such as 16-QAM are more b) phase noise than those transmitting in QPSK format; that satellite circuits transmitting higher level modulations such as 8-PSK and 16-QAM are more sensitive to c of more transmitter power or highe
6、r earth station G/T and greater earth station e.i.r.p., that use of higher level modulation techniques improve the bandwidth efficiency for a given Eb/No at the cost recommends 1 satellite circuits using higher level modulations such as 8-PSK and 16-QAM. that the information contained in Annex 1 be
7、used as a guide for implementation of transmission quality for * This Recommendation should be brought to the attention of Radiocommunication Working Parties 4 SNG and 10-11s. 2 Rec. ITU-R S.1425 ANNEX 1 Transmission considerations for carriers using higher levels of modulation on satellite circuits
8、 1 Introductiodpurpose This Annex provides information regarding the development of new technologies intended for use on, but not limited to, FSS networks. The initial purpose of these developments are to increase the throughput capacity of the available spectrum that is allocated to that service. T
9、his could be achieved by utilizing more efficient modulation processes for the transmission of information. 2 Background 2.1 Purposdobjective With the increased satellite transponder power and concatenated error correction techniques, higher modulation schemes such as 8-PSK and 16-QAM have become fe
10、asible for implementation in geostationary satellite orbit (GSO) satellite communication systems. These high order modulations significantly improve the transponder bandwidth efficiency which suits the needs of broadband format structures and applications, such as asynchronous transfer mode (ATM), f
11、rame-relay and HDTV. In order to achieve acceptable quality of service as characterized by low BER and higher data rates with the higher order modulations, there is a requirement for not only a higher CIN ratio at the input of the demodulator. but also a need to control interference and limit distor
12、tion within the satellite transmission circuit. This Recommendation describes the nature of the higher order modulations considered applicable to geostationary- satellite networks and details the reasons for their susceptibility and increased sensitivity to transmission impairments. It will also des
13、cribe the tests and results of 8-PSK and 16-QAM circuits implemented to determine their operational requirements in a typical satellite network. 2.2 8-PSK and 16-QAM modulations In 8-PSK the transmitted symbol is a sinusoidal carrier with eight equally spaced phases. The signal-space diagram is show
14、n in Fig. 1. Every 8-PSK modulated symbol represents three user bit occupancies, as opposed to 2 bit occupancies for QPSK modulation, thereby improving bandwidth utilization by 50%. On the other hand, each symbol is 45“ closer to each other in phase compared to the QPSK symbols which introduces more
15、 difficulty to the decision-making processes of the receiver. Theoretical calculations shows that without any error correction techniques, 8-PSK requires 7 dB more energy per bit than QPSK in order to achieve 1 x lop8 BER. Figure 2 is an example of a 4 x 4 QAM (16-QAM) signal-space. Each symbol repr
16、esents four information bits and requires that the receiver distinguish between the different combinations of both the phase and amplitude modulation process. As shown in Fig. 2, the receiver must distinguish between the possible 12 phases and four amplitudes in order to make a decision. As the sepa
17、ration between the signal states are even closer together than for 8-PSK, both amplitude noise and phase noise will have a more pronounced affect in the decision-making process. However, although more vulnerable to transmission impairments than 8-PSK, the bandwidth utilization is improved by 100% co
18、mpared to QPSK. Rec. ITU-R S.1425 3 FIGURE 1 Signal-space for 8-PSK I Decision lines FIGURE 2 Signal-space for 16-QAM (0110) (0101) (0011) Q I +I (0000) Q (1 100) Es : Energy per symbol (0010) (O00 1) , ( l1 11 Decision Q - ,/ lines J (1110) Q 3 Transmission test methods and measurements 3.1 Descrip
19、tion of test facility Tests were conducted to investigate the capability and circuit limitations necessary for 16-QAM broadband transmissions in a satellite network. To that purpose a flexible test configuration was implemented which also allowed the determination and optimization of intermediate tr
20、ansmission level points associated with the non-linear transmission elements in the network. Figure 3 presents a block diagram representation of the test configuration used. The switch points indicated in this Figure are shown to convey the variety of the test configurations used. 4 Rec. ITU-R S.142
21、5 FIGURE 3 Test facility for data transmission tests Modem 1 I Group delay equalizer 11 , Satellite AL under test interference test set converter HPA: LNA: TWTA: high power amplifier low noise amplifier travelling wave tube amplifier 1425-03 The transmission bandwidth of any of the network configura
22、tions was limited to that of a 36 MHz transponder. In all tests the digital transmission rate was chosen to be 45 Mbitls (DS-3). The spectral bandwidths of the 8-PSK and 16-QAM data modems used in these tests were determined to be about 26 MHz and 15 MHz. This allowed multicarrier transmission in a
23、single transponder for 16-QAM modulation. All modems, for all rates, used in the tests depicted here incorporated FEC rate 3/4 and concatenated 188,204 Reed-Solomon (RS) outer coding. BER measurements made during these tests were actually made with respect to Eb/N ratios. For presentation purposes h
24、ere the results were converted to a C/N format. Conversion between the two formats can be accomplished with the following formula: where: p = 2forQPSK = 3 for 8-PSK = 4 for 16-QAM FEC: FEC code rate (e.g. 3/4) RS: Reed-Solomon code rate (e.g. (188,204) 1.2 : bandwidtWsymbo1 rate ratio. 3.2 Test conf
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