1 |
袁俊, 鲍晓月, 孙茜, 等. 巨型低轨星座频率轨道资源趋势分析及启示建议[J]. 空间碎片研究, 2021, 21 (1): 48- 57.
|
|
YUAN J , BAO X Y , SUN Q , et al. Analysis and suggestions on orbit and spectrum resources trend for mega LEO constellations[J]. Space Debris Research, 2021, 21 (1): 48- 57.
|
2 |
ITU-R. Radio regulations[R]. ITU, 2016.
|
3 |
WCCFTECH. Spacex wins FCC approval to test starlink ground stations in 6 states[EB/OL]. [2021-10-5]. https://wccftech.com/spacex-starlink-ground-stations-test/.
|
4 |
EVERYTHINGRF. 5G frequency spectrum in south korea[EB/OL]. [2021-10-5]. https://www.everythingrf.com/community/5G-frequency-spectrum-in-south-korea.
|
5 |
LTETO5G. SK telecom, lG uplus, and KT launching commercial 5G services on december 1, 2018[EB/OL]. [2021-10-5]. https://www.lteto5g.com/sk-telecom-lg-uplus-and-kt-launching-commercial-5g-services-on-december-1-2018.
|
6 |
ACMA. Register of radiocommunications licences[EB/OL]. [2021-10-5]. https://web.acma.gov.au/rrl/site_search.site_lookup?pSITE_ID=10021787.
|
7 |
ITU. Final acts wrc-19[R]. Sharm El-Sheikh, Egypt: ITU, 2020: 355-358.
|
8 |
王坦, 钱肇钧, 韩锐, 等. WRC-19大会5G毫米波结果梳理与分析[J]. 中国无线电, 2020, (2): 24- 28.
|
|
WANG T , QIAN Z J , HAN R , et al. Sorting out and analysis of 5G millimeter wave results of WRC-19 conference[J]. China Radio, 2020, (2): 24- 28.
|
9 |
LIN Z Q, JIN J, YAN J, et al. A method for calculating the probability distribution of interference involving mega-constellations[C]//Proc. of the 71th International Astronautical Congress, 2021: 107-117.
|
10 |
REN Z X , LI W , JIN J , et al. A GEO satellite position and beam features estimation method based on beam edge positions[J]. Journal of Communications and Information Networks, 2019, 4 (4): 87- 94.
doi: 10.23919/JCIN.2019.9005436
|
11 |
LI T , JIN J , LI W , et al. Research on interference avoidance effect of oneweb satellite constellation's progressive pitch stra-tegy[J]. International Journal of Satellite Communications and Networking, 2021, 39 (5): 524- 538.
doi: 10.1002/sat.1399
|
12 |
ZHANG C , JIANG C X , JIN J , et al. Spectrum sensing and recognition in satellite systems[J]. IEEE Trans.on Vehicular Technology, 2019, 68 (3): 2502- 2516.
doi: 10.1109/TVT.2019.2893388
|
13 |
ZHANG C , JIN J , ZHANG H , et al. Spectral coexistence between LEO and GEO satellites by optimizing direction normal of phased array antennas[J]. China Communications, 2018, 15 (6): 18- 27.
doi: 10.1109/CC.2018.8398221
|
14 |
ZHANG C , JIN J , KUANG L L , et al. Blind spot of spectrum awareness techniques in non-geostationary satellite systems[J]. IEEE Trans.on Aerospace and Electronic Systems, 2018, 54 (6): 3150- 3159.
|
15 |
张庆龙, 程二威, 王玉明, 等. 无人机卫星导航系统的电磁干扰效应规律研究[J]. 系统工程与电子技术, 2020, 42 (12): 2684- 2691.
|
|
ZHANG Q L , CHENG E W , WANG Y M , et al. Research on electromagnetic interference effect of UAV satellite navigation system[J]. Systems Engineering and Electronics, 2020, 42 (12): 2684- 2691.
|
16 |
ITU-R15-TG5.1-C. Sharing and compatibility of the FSS and IMT operating in the 24.25~27.5 GHz frequency range[R]. ITU, 2018.
|
17 |
魏萌. 5G系统与卫星固定业务干扰共存研究[D]. 北京: 北京邮电大学, 2019.
|
|
WEI M. The interference and coexistence study of the 5G system with the satellite fixed service[D]. Beijing: Beijing University of Posts and Telecommunications, 2019.
|
18 |
JIN S, ZHANG Y Y, XIAO J K, et al. Analysis of adjacent channel interference between FSS system and IMT-A system[C]//Proc. of the 5th IEEE International Symposium on Microwave, Antenna, Propagation and EMC Technologies for Wireless Communications, 2013: 49-53.
|
19 |
MENG X , ZHONG L Y , ZHOU D , et al. Co-channel coexistence analysis between 5G IOT system and fixed-satellite service at 40 GHz[J]. Wireless Communications and Mobile Computing, 2019, 2019 (6): 1- 9.
|
20 |
GHAITH H, PRAKASH M, EUGENE V, et al. Interference analysis of the coexistence of 5G cellular networks with satellite earth stations in 3.7~4.2 GHz[C]//Proc. of the IEEE International Conference on Communications Workshops, 2018: 1-6.
|
21 |
FRANCESCO G, MAZIAR N, LEONARDO B, et al. A study on the coexistence of fixed satellite service and cellular networks in a mmWave scenario[C]//Proc. of the IEEE International Conference on Communications, 2015: 2444-2449.
|
22 |
QU Z C , LIU Z W , DING X J , et al. Co-existence analysis on sa-tellite-terrestrial integrated IMT system[J]. Mobile Networks and Applications: The Journal of Special Issues on Mobility of Systems, Users, Data and Computing, 2019, 24 (3): 1926- 1936.
|
23 |
LIN Z Q, JIN J, YAN J, et al. Fast calculation of the probability distribution of interference involving multiple mega-constellations[C]//Proc. of the Space Information Network, 2021: 18-34.
|
24 |
LI L H, LI W, REN Z X, et al. Research on interference from 5G system to NGSO satellite constellation based on k-means clustering[C]//Proc. of the Space Information Network, 2021: 1-17.
|
25 |
ITU. STEAM-2 Satellite network in IFIC 2884[EB/OL]. [2020-12-29]. https://www.itu.int/sns/demowic20.html.
|
26 |
ITU-R15-TG5.1-C-0478. Characteristics of terrestrial imt systems for frequency sharing/interference analyses in the frequency range between 24.25 GHz and 86 GHz[R]. ITU, 2017.
|
27 |
3GPP TS 38.104. Base station (BS) radio transmission and reception(Release 16)[R]. ETSI, 2020.
|
28 |
ITU-R P. 619-4. Propagation data required for the evaluation of interference between stations in space and those on the surface of the Earth[R]. ITU, 2019.
|
29 |
ITU-R P. 2108-0. Prediction of clutter loss[R]. ITU, 2017.
|
30 |
ITU-R M. 2101-0. Modelling and simulation of IMT networks and systems for use in sharing and compatibility studies[R]. ITU, 2017.
|
31 |
GEONAMES. cities15000[EB/OL]. [2020-12-29]. http://download.geonames.org/export/dump/.
|
32 |
RODRÍGUEZ R C V, ALMEIDA M P C, ORIHUELA VARGAS C E, et al. Interference simulation between 5G and GSO-NGSO networks at 27~30 GHz range[C]//Proc. of the 2019 IEEE-APS Topical Conference on Antennas and Propagation in Wireless Communications, 2019: 202-205.
|