参考文献

[1] 冉承其.“北斗”卫星导航系统建设与发展[J].国际太空,2013(10):11-15.

[2] Hofmann-wellenhof B, Lichtenegger H, Wasle E. GNSS—Global navigation satellite systems: GPS, GLONASS, Galileo, and more [M]. Berlin:Springer Science&Business Media, 2007.

[3] The United Nations. Document of satellite navugation and location systems (A/CONF. 184/BP/4) of the third United Nations conference on the exploration and peaceful uses of outer space [EB/OL]. [2018-04-30]. http://www.un.or.at/OOSA/unisp-3/backgroundpapers/bp4.pdf.

[4] Hein G W, Avila-Rodriguez J A, Wallner S, et al. Envisioning a future GNSS system of systems, part 1 [J]. Inside GNSS, 2007, 2(1):58-67.

[5] 宁津生,姚宜斌,张小红.全球导航卫星系统发展综述[J].导航定位学报,2013,1(1):3-8.

[6] Inaba N, Matsumoto A, Hase H, et al. Design concept of quasi zenith satellite system [J]. Acta Astronautica, 2009, 65(7-8):1068-1075.

[7] Majithiya P. Indian regional navigation satellite system [J]. Inside GNSS, 2011, 6:40-46.

[8] Loh R, Wullschleger V, et al. The US wide-area augmentation system (WAAS) [J]. Navigation, 1995, 42(3):435-465.

[9] Konin V, Shyshkov F. European geostationary navigation overlay service in Ukraine [J]. Proceedings of the National Aviation University, 2015(2):23-26.

[10] Dammalage T, De Silva D N, Satirapod C. Performance analysis of GPS aided geo augmented navigation (GAGAN) over Sri Lanka [J]. Engineering journal, 2017, 21(5):305-314.

[11] 姚铮,陆明泉.新一代卫星导航系统信号设计原理与实现技术[M].北京:电子工业出版社,2016.

[12] 卢晓春,吴海涛,边玉敬,华宇.中国区域定位系统信号体制[J].中国科学G辑,2008,38(12):1634-1647.

[13] European Space Agency. European GNSS (Galileo) open service: Signal in space interface control document [S]. 2010.

[14] 何峰,吴乐南.下一代高效导航卫星信号频谱分析与波形优化[J].哈尔滨工业大学学报,2012,44(9):101-106.

[15] 薛睿,徐锡超,魏强.新型的卫星导航信号体制设计[J].计算机应用,2014,34(6):1573-1577.

[16] 辛洁,谢金石,郭睿,刘春霞,赵金贤.卫星导航信号体系设计研究[J].测绘科学,2017(9):167-172.

[17] Shimamura A. MSAS (MTSAT satellite-based augmentation system) project status [J]. Air&Space Europe, 1999, 1(2):63-67.

[18] Gauthier L, Michel P, Ventura-traveset J, et al. EGNOS: the first step in Europe's contribution to the global navigation satellite system [J]. ESA bulletin, 2001, 105:35-42.

[19] Dautermann T. Civil air navigation using GNSS enhanced by wide area satellite based augmentation systems [J]. Progress in Aerospace Sciences, 2014, 67:51-62.

[20] Betz J W. Signal structures for satellite-based navigation: past, present and future [J]. Inside GNSS, 2013, 8(7):34-42.

[21] Xue R, Cao Q, Wei Q. A flexible modulation scheme design for C-band GNSS signals [J]. Mathematical Problems in Engineering, 2015:1-9.

[22] Sekar S B, Sengupta S, Bandyopadhyay K. Spectral compatibility of BOC (5, 2) modulation with existing GNSS signals [C]. In Proceedings of the 2012 IEEE/ION Position, Location and Navigation Symposium, Myrtle Beach, USA, 2012:23-26.

[23] 陈忠贵,帅平,曲广吉.现代卫星导航系统技术特点与发展趋势分析[J].中国科学E辑,2009,39(4):686-695.

[24] Mateu I, Paonni M, Issler J L, et al. A search for spectrum: GNSS signals in S-Band part 1 [J]. Inside GNSS, 2010, 5(6):65-71.

[25] Mateu I, Paonni M, Issle J L, et al. A search for spectrum: GNSS signals in S-Band part 2 [J]. Inside GNSS, 2010, 5(7):47-53.

[26] M. Irsigler, G. W. Hein, A. Schmitz-Peiffer. Use of C-band frequencies for satellite navigation: benefits and drawbacks [J]. GPS Solutions, 2004, 8(3):119-139.

[27] 秦鹏霄.S频段信号的研究[C].第四届中国卫星导航学术年会,武汉,中国,2013,S2:1-5.

[28] Colzi E, Lopez-Risueño G, Samson J, et al. Assessment of the feasibility of GNSS in C-Band [C]. In Proceedings of the International Communications Satellite Systems Conference, San Diegom, USA, 2008:1-15.

[29] Avila-Rodriguez J A, Wallner S, Won J H, et al. Study on a Galileo signal and service plan for C-band [C]. In Proceedings of International Technical Meeting of the Satellite Division of The Institute of Navigation, Savannah, USA, 2008:2515-2529.

[30] Schmitz-Peiffer A, Stopfkuchen L, Floch J J, et al. Architecture for a future: C-band/L-band GNSS mission, Part 1:C-band services, space-and ground segment, overall performance [J]. Inside GNSS, 2009:47-56.

[31] Avila-Rodriguez J A, Won J H, Wallner S, et al. Architecture for a future C-band/L-band GNSS mission Part 2: A potential signal plan and related user terminal aspects [J]. Inside GNSS, 2009:52-63.

[32] Xue R, Sun Y, Zhao D. CPM signals for satellite navigation in the S and C bands [J]. Sensors, 2015, 15(6):13184-13200.

[33] 于兴旺.多频GNSS精密定位理论与方法研究[D].武汉:武汉大学,2011.

[34] 施浒立,景贵飞,崔君霞.后GPS和GPS后时代的卫星导航系统[M].北京:科学出版社,2012.

[35] 曹庆铭.多波段通用的GNSS信号波形研究[D].哈尔滨:哈尔滨工程大学,2015.

[36] Aulin T, Sundberg C E. Continuous phase modulation—part Ⅰ: Full response signaling [J]. IEEE Transactions on Communication, 1981, 29:196-209.

[37] Aulin T, Rydbeck N, Sundberg C E. Continuous phase modulation—part Ⅱ: Partial response signaling [J]. IEEE Transactions on Communication, 1981, 29:210-225.

[38] Sundberg C E. Continuous phase modulation [J]. IEEE Communications Magazine, 1986, 24(4):25-38.

[39] Anderson J B, Aulin T, Sundberg C E. Digital phase modulation [M]. Berlin: Springer Science&Business Media, 2013.

[40] Amat A G, Nour C A, Douillard C. Serially concatenated continuous phase modulation for satellite communications [J]. IEEE Transaction on Wireless Communication, 2009, 8:3260-3269.

[41] Remlein P. Energy efficient continuous phase modulation signals for satellite intelligent transportation systems [J]. IET Circuits, Devices&Systems, 2014, 8(5):406-411.

[42] Zhang J, Wang F, Zhong Z, et al. Continuous phase modulation classification via Baum-Welch algorithm [J]. IEEE Communications Letters, 2018, 22(7):1390-1393.

[43] Emmanuele A, Zanier F, Boccolini G, et al. Spread-spectrum continuous-phase-modulated signals for satellite navigation [J]. IEEE Transaction on Aerospace and Electronic Systems, 2012, 48(4):3234-3249.

[44] Su C, Guo S, Zhou H. A substitute for BOC modulation based on SS-CPM [J]. Advances in Space Research, 2013, 51(6):942-950.

[45] 薛睿,徐锡超,邢代玉,魏强.扩频CPM调制在卫星导航系统中的应用研究[J].弹箭与制导学报,2014,34(6):139-144.

[46] Xue R, Yu H, Cheng Q. Adaptive coded modulation based on continuous phase modulation for inter-satellite links of global navigation satellite systems [J]. IEEE Access, 2018, 6:20652-20662.

[47] 孙岩博,薛睿,王盾,赵旦峰.L/C双频段联合导航信号中通用调制方案研究[J].哈尔滨工程大学学报,2018,39(4):778-784.

[48] 杨元喜.北斗卫星导航系统的进展,贡献与挑战[J].测绘学报,2010,39(1):1-6.

[49] Guo F, Zhang X, Wang J, Ren X. Modeling and assessment of triple-frequency BDS precise point positioning [J]. Journal of geodesy, 2016, 90(11):1223-1235.

[50] Avila-Rodriguez J A, Wallner S, Hein G W, et al. A vision on new frequencies, signals and concepts for future GNSS systems [C]. In Proceedings of the 20th International Technical Meeting of The Satellite Division of the Institute of Navigation, Fort Worth, USA, 2007:517-534.

[51] Schweikert R, Woerz T, De Gaudenzi R, et al. On signal structures for GNSS-2 [J]. International journal of satellite communications, 2000, 18(4-5):271-291.

[52] 王瑛,蒙艳松,陶晓霞,王磊,苏哲.CN频段卫星导航研究[C].第七届中国卫星导航学术年会,长沙,中国,2016:109-117.

[53] 刘美红.卫星导航C频段信号体制研究[D].上海:上海交通大学,2016.

[54] ITU. The agenda and references of the World Radiocommunication Conference 2012(WRC-12) [EB/OL]. [2010-02-17]. https://www.itu.int/net/ITU-R/index.asp?category=conferences&rlink=wrc-12&lang=en&expand=all.

[55] 温日红,刘志俭,葛侠,赵晓东,张春海.S频段RDSS业务全球扩展分析[J].电讯技术,2010,50(6):121-124.

[56] Hein G W, Irsigler M, Avila-rodriguez J A, et al. Envisioning a future GNSS system of systems—part 3 [J]. Inside GNSS, 2007, 6:64-73.

[57] Issler J L, Eissfeller B. Toward centimetric positioning thanks to L-and S-band GNSS and to meta-GNSS signals [C]. In Proceedings of the 5th ESA Workshop on Satellite Navigation Technologies and European Workshop on GNSS Signals and Signal Processing, Toulouse, France, 2010:1-8.

[58] Paonni M, Curran J T, Bavaro M, et al. GNSS meta-signals: Coherently composite processing of multiple GNSS signals [C]. In Proceedings of the 27th International Technical Meeting of The Satellite Divisionof the Institute of Navigation, Tampa, USA, 2014:2592-2601.

[59] Wang F, Zeng D, Li R. Study on MSK modulation for S-band [C]. China Satellite Navigation Conference, Wuhan, China, 2013:61-69.

[60] 秦鹏霄.S频段卫星导航信号兼容性研究[D].武汉:华中科技大学,2014.

[61] Zhou F, Lv Y. The analysis of key technologies and development trend for a new generation satellite navigation systems [C]. IEEE International Symposium on IT in Medicine and Education, Guangzhou, China, 2011:512-515.

[62] 辛洁,王冬霞,赵娜,刘春霞,赵金贤.卫星导航信号体制设计标准研究[C].第七届中国卫星导航学术年会,长沙,中国,2016:163-168.

[63] 胡修林,唐祖平,周鸿伟,黄旭方.GPS和Galileo信号体制设计思想综述[J].系统工程与电子技术,2009,31(10):2285-2293.

[64] 唐祖平.GNSS信号设计与评估若干理论研究[D].武汉:华中科技大学,2009.

[65] Al-salihi N K. Future global navigation satellite systems (GNSS) [J]. European Scientific Journal, 2015, 11(30):211-224.

[66] 吕志成,刘增军,王飞雪.GPS三频组合观测量的特征及应用研究[J].全球定位系统,2011,36(6):7-11.

[67] 赵琳,刘玥,李亮.基于北斗-Ⅱ多频观测量的载波相位差分精密定位技术研究[C].第四届中国卫星导航学术年会,武汉,中国,2013,S3:236-240.

[68] Hwang P Y, McGraw G A, Bader J R. Enhanced differential GPS carrier-smoothed code processing using dual-frequency measurements [J]. Navigation, 1999, 46(2):127-137.

[69] 王泽民,柳景斌.Galileo卫星定位系统相位组合观测值的模型研究[J].武汉大学学报,2003,28(6):723-726.

[70] 伍岳,郭金来,孟央,孙伟.GPS多频相位组合观测值的定位精度分析[J].武汉大学学报,2006,31(12):1082-1085.

[71] Cocard M, Bourgon S, Kamali O, et al. A systematic investigation of optimal carrier-phase combinations for modernized triple-frequency GPS [J]. Journal of Geodesy, 2008, 82(9):555-564.

[72] Feng Y. GNSS three carrier ambiguity resolution using ionosphere-reduced virtual signals [J]. Journal of Geodesy, 2008, 82(12):847-862.

[73] Sahmoudi M, Kouki A, Landry R. A new approach for mitigating carrier phase multipath errors in multi-GNSS real-time kinematic (RTK) receivers [C]. IEEE International Conference on Acoustics, Speech and Signal Processing, Dallas, USA, 2010:3486-3489.

[74] 徐军.GLONASS三频组合定位算法的研究与实现[D].合肥:合肥工业大学,2013.

[75] Tang W, Deng C, Shi C, et al. Triple-frequency carrier ambiguity resolution for Beidou navigation satellite system [J]. GPS solutions, 2014, 18(3):335-344.

[76] Zhang X H, He X Y. BDS triple-frequency carrier-phase linear combination models and their characteristics [J]. Science China: Earth Sciences, 2015, 58(6):896-905.

[77] Xue R, Cao Q, Wei Q, et al. Research on the selection method of triple frequency combination based on the Beidou satellite navigation system [C]. China Satellite Navigation Conference, Xi'an, China, 2015, Ⅱ:487-497.

[78] 刘柳.GNSS三频数据优化组合及其在周跳探测中的应用[D].郑州:解放军信息工程大学,2017.

[79] 付伟,董绪荣,王敏,帅玮祎,王军.北斗三号三频组合观测值特性分析研究[J].全球定位系统,2018,43(5):5-12.

[80] 于兴旺,张小红,聂桂根.GPS/GALILEO多频组合差分定位研究[J].武汉大学学报,2010,35(7):821-824.

[81] Li J, Yang Y, Xu J, et al. GNSS multi-carrier fast partial ambiguity resolution strategy tested with real BDS/GPS dual-and triple-frequency observations [J]. GPS Solutions, 2015, 19(1):5-13.

[82] 李克昭,赵磊杰,丁安民,李志伟.BDS/Galileo相位组合观测值优化选取[J].导航定位学报,2016,4(2):71-74.

[83] Sirisha V, Srinivas V S, Rajini P. Statistical modelling of GNSS multipath error using triple-frequency linear combination [C]. URSI Asia-Pacific Radio Science Conference, New Delhi, India, 2019:1-3.

[84] 陆明泉,姚铮,张嘉怡,郭甫,魏祯怡.北斗卫星导航系统信号设计的进展及发展趋势[J].卫星应用,2015(12):27-31.

[85] 孙岩博,薛睿,赵旦峰,王盾.北斗多波段多频相位测量值组合模型研究[J].系统工程与电子技术,2017,39(10):2171-2176.

[86] 朱亮,姚铮,陆明泉.北斗系统L频段导航信号的波形设计及仿真[J].计算机仿真,2013,30(1):141-144.

[87] Betz J W. The offset carrier modulation for GPS modernization [C]. In Proceedings of the 1999 National Technical Meeting of The Institute of Navigation, San Diego, USA, 1999:639-648.

[88] Betz J W. Binary offset carrier modulations for radionavigation [J]. Navigation, 2001, 48(4):227-246.

[89] Hein G W, Avila-Rodriguez J A, Wallner S, et al. MBOC: The new optimized spreading modulation recommended for GALILEO L1 OS and GPS L1C [C]. In Proceedings of IEEE/ION PLANS, San Diego, USA, 2006:884-892.

[90] Avila-Rodriguez J A, Hein G W, Wallner S, et al. The MBOC modulation: The final touch to the Galileo frequency and signal plan [J]. Navigation, 2008, 55(1):15-28.

[91] Lestarquit L, Artaud G, Issler J L. AltBOC for dummies or everything you always wanted to know about AltBOC [C]. In Proceedings of ION GNSS, Savannah, USA, 2008:961-970.

[92] Flissi M, Rouabah K, Chikouche D, et al. Performance of new BOC-AW-modulated signals for GNSS system [J]. EURASIP Journal on Wireless Communications and Networking, 2013(1):1-13.

[93] 周艳玲,罗雪姣,温小清,刘海龙,汪标,潘永才.卫星导航信号AltBOC调制方式分析[J].湖北大学学报,2015,37(4):334-339.

[94] 韩超,王小妮,孙玉铭,熊雯,甄卫民.GNSS系统中新BOC信号性能评估研究[J].全球定位系统,2015,40(3):11-16.

[95] 胡修林,冉一航,刘禹圻,柯颋.卫星导航信号设计中调制方式的新选择[J].系统工程与电子技术,2010,32(9):176-181.

[96] Ipatov V P, Shebshaevich B V. Spectrum-compact signals: A suitable option for future GNSS [J]. Inside GNSS, 2011, 6(1):47-53.

[97] Liu W, Du G, Zhan X, et al. MSK-binary coded symbol modulations for global navigation satellite systems [J]. IEICE electronics express, 2010, 7(6):421-427.

[98] 何峰,吴乐南.新一代高效卫星导航信号研究[J].数字通信世界,2011(12):50-55.

[99] 周艳玲,胡修林,唐祖平.长椭圆球波函数在卫星导航中的应用研究[J].宇航学报,2011,32(9):1890-1894.

[100] 王凤姣,曾大治,刘庆波.S频段GNSS信号兼容性及性能分析[J].数字通信世界,2013(12):56-59.

[101] Maine K, Anderson P, Bayuk F. Communication architecture for GPS Ⅲ [C]. In Proceedings of IEEE Aerospace Conference, Big Sky, USA, 2004:1532-1539.

[102] 朱亮,陆明泉,冯振明.北斗系统C频段导航信号的波形设计[J].电子技术应用,2012,38(8):89-92.

[103] Liu X, Liang M, Morton Y, et al. Performance evaluation of MSK and OFDM modulations for future GNSS signals [J]. GPS Solutions, 2014, 18(2):163-175.

[104] 谢维华,陈娉娉,咸德勇.现代化卫星导航电文编码方案设计与分析[J].导航定位学报,2016,4(2):10-14.

[105] 滕光耀.卫星导航系统中LDPC码的研究[D].哈尔滨:哈尔滨工业大学,2013.

[106] 姜宁,周乾南.美国GPS导航星导航电文的处理算法[J].电信资料,1992(3):21-26.

[107] 朱建锋,安建平,汪思为.基于循环冗余校验码的卫星导航电文增强纠错方案[J].北京理工大学学报,2014,34(7):748-751.

[108] 沈周青.GNSS中的信道编码技术研究[D].杭州:杭州电子科技大学,2018.

[109] Gray R M. Coding for noisy channels [M]. New York: Springer, 1990.

[110] Betz J W, Blanco M A, Cahn C R, et al. Description of the L1C Signal [C]. In Proceedings of the ION, Fort Worth, USA, 2007:1-12.

[111] 张泽星,莫中秋,王禹,李广侠.适用于卫星导航电文的编码技术[J].数字通信世界,2013(8):56-59.

[112] He S, Liu C, Lin Y. Application of LDPC codes in satellite navigation systems [J]. Spacecraft Engineering, 2009, 18(3):72-76.

[113] Lan L, Zeng L Q, Tai Y Y, et al. Constructions of quasi-cyclic LDPC codes for the AWGN and binary erasure channels based on finite fields and affine mappings [C]. In Proceedings of International Symposium on Information Theory, Adelaide, Australia, 2005:2285-2289.

[114] 钱宏,李广侠,常江.高性能准循环低密度奇偶校验码在导航信号中的应用[J].计算机应用,2011,31(4):1145-1151.

[115] Yang Y, Liu C, Zhang X. A quasi-cyclic LDPC code for GNSS signal [C]. China Satellite Navigation Conference, Wuhan, China, 2013:17-24.

[116] 钱久超,应忍冬,刘佩林,郁文贤.基于准循环LDPC码的北斗卫星导航信号编码技术研究[C].第四届中国卫星导航学术年会,武汉,中国,2013,S2:16-20.

[117] 李丹,白宝明,孙蓉.多元LDPC码与二元LDPC码的性能比较[J].无线通信技术,2007,16(3):1-6.

[118] Abassi O, Conde-Canencia L, Mansour M, et al. Non-binary low-density parity-check coded cyclic code-shift keying [C]. Wireless Communications and Networking Conference, Shanghai, China, 2013:3890-3894.

[119] 靳舒馨,姚铮,贾深惠,陆明泉.高速率GNSS电文多进制编码调制技术[J].北京邮电大学学报,2018(4):97-103.

[120] Rimoldi B E. A decomposition approach to CPM [J]. IEEE Transactions on Information Theory, 1986, 34(2):260-270.

[121] 刘基余.测距码是卫星导航的顶梁柱——GNSS导航信号的收发问题之三[J].数字通信世界,2013(12):50-56.

[122] 杨传玺,卢晓春,王雪.卫星导航系统测距码性能分析[J].时间频率学报,2013,36(3):173-180.

[123] Soualle F, Soellner M, Wallner S, et al. Spreading code selection criteria for the future GNSS Galileo [C]. In Proceedings of the European navigation conference GNSS, Munich, Germany, 2005:19-22.

[124] Shaw M. Modernization of the global positioning system [J]. Acta Astronautica, 2004, 54(11-12):943-947.

[125] Elliott D K, Christopher J H. GPS原理与应用:第二版[M].寇艳红.译.北京:电子工业出版社,2012.

[126] Kim H G, Song I, Yoon S, et al. PN code acquisition using signed-rank-based nonparametric detectors in DS/SS systems [J]. IEEE transactions on vehicular technology, 2001, 50(4):1151-1157.

[127] Rushanan J J. The spreading and overlay codes for the L1C signal [J]. Navigation, 2007, 54(1):43-51.

[128] Wallner S, Avila-Rodriguez J A, Hein G W, et al. Galileo E1 OS and GPS L1C pseudo random noise codes-requirements, generation, optimization and comparison [C]. ION GNSS 20th international technical meeting of the satellite division, Fort Worth, USA, 2007:25-28.

[129] He R, Cui J. Research of pseudo random noise code and new code construction [C]. The AASRI Winter International Conference on Engineering and Technology, Saipan, USA, 2013:147-150.

[130] 李玉珍.基于混沌的扩频序列通信系统研究[D].西安:西安电子科技大学,2015.

[131] 孙占龙.混沌序列发生器与混沌扩频序列的研究[D].长春:长春理工大学,2003.

[132] 于一丁,王永川,王长龙.基于多值量化的混沌扩频序列及其性能分析[J].微型机与应用,2017,36(6):58-61.

[133] 余金峰,杨文革,路伟涛,李伟.混沌序列在测控系统中的应用方法探讨[J].装备学院学报,2013,24(1):98-102.

[134] 熊洋.卫星测控系统混沌复合码设计及同步技术研究[D].哈尔滨:哈尔滨工程大学,2019.

[135] 薛睿,魏强,徐锡超.混沌序列测距码性能研究[J].西安电子科技大学学报,2015,42(3):103-108.

[136] 赵毅,王璐,刘崇华.一种加权式的导航信号性能评估方法[C].第三届中国卫星导航学术年会,广州,中国,2012,S2:140-145.

[137] 唐祖平,周鸿伟,胡修林,冉一航,刘禹圻,周艳玲.Compass导航信号性能评估研究[J].中国科学:物理学 力学 天文学,2010,40(5):592-602.

[138] Simon M K. Noncoherent pseudonoise code tracking performance of spread spectrum receivers [J]. IEEE Transactions on communications, 1977, 25(3):327-345.

[139] 梁姗.多GNSS环境下卫星导航信号体制研究与设计[D].成都:电子科技大学,2016.

[140] Van Dierendonck A J, Fenton P, Ford T. Theory and performance of narrow correlator spacing in a GPS receiver [J]. Navigation, 1992, 39(3):265-283.

[141] Betz J W, Kolodziejski K R. Extended theory of early-late code tracking for a bandlimited GPS receiver [J]. Navigation, 2000, 47(3):211-226.

[142] Betz J W, Kolodziejski K R. Generalized theory of code tracking with an early-late discriminator part Ⅰ: Lower bound and coherent processing [J]. IEEE Transactions on Aerospace and Electronic Systems, 2009, 45(4):1538-1556.

[143] Betz J W, Kolodziejski K R. Generalized theory of code tracking with an early-late discriminator part Ⅱ: Noncoherent processing and numerical results [J]. IEEE Transactions on Aerospace and Electronic Systems, 2009, 45(4):1557-1564.

[144] 张军.现代导航信号评估关键技术研究[D].长沙:国防科学技术大学,2012.

[145] 杨再秀,王茂磊,郭晓峰,杨丽云.基于通用环路的GNSS码跟踪性能分析方法[J].无线电工程,2015,45(7):45-49.

[146] Cannon M E, Lachapelle G, Qiu W, et al. Performance analysis of a narrow correlator spacing receiver for precise static GPS positioning [C]. In Proceedings of IEEE Position, Location and Navigation Symposium, Las Vegas, USA, 1994:355-360.

[147] Fernandez A, Diez J, Marradi L, et al. Galileo Receiver performance under GPS interference and multipath with the GRANADA Software Receiver [C]. In Proceedings of ION GNSS, Long Beach, USA, 2004:1027-1034.

[148] Irsigler M, Avila-Rodriguez J A, Hein G. Criteria for GNSS multipath performance assessment [C]. In Proceedings of the 18th International Technical Meeting of the Satellite Division of the Institute of Navigation, Long Beach, USA, 2005:2166-2177.

[149] Van Dierendonck A J. Evaluation of GNSS receiver correlation processing techniques for multipath and noise mitigation [C]. In Proceedings of the National Technical Meeting, Santa Monica, USA, 1997:207-215.

[150] 张孟阳,吕保维,宋文淼.GPS系统中的多径效应分析[J].电子学报,1998,36(3):10-14.

[151] 刘荟萃,许晓勇,王飞雪.扩频测距系统中多径信号伪码跟踪误差分析及消除技术[J].全球定位系统,2005,6:34-38.

[152] 任晖,刘沉,李腾,赵伟.北斗系统测试型用户机定位性能影响分析[J].导航定位学报,2016,1(4):1-5.

[153] Nunes F D, Sousa F M G, Leitao J M N. Gating functions for multipath mitigation in GNSS BOC signals [J]. IEEE Transactions on Aerospace and Electronic Systems, 2007, 43(3):951-964.

[154] 何在民.卫星导航信号跟踪精度研究[D].北京:中国科学院大学,2012.

[155] Betz J W. Effect of partial-band interference on receiver estimation of C/N0: Theory [C]. In Proceedings of the Institute of Navigation, Long Beach, USA, 2001:817-828.

[156] Borio D. GNSS Acquisition in presence of continuous wave interference [J]. IEEE Transactions on Aerospace&Electronic Systems, 2010, 46(1):47-60.

[157] Jang J, Paonni M, Eissfelier B. CW interference effects on tracking performance of GNSS receivers [J]. IEEE Transactions on Aerospace&Electronic Systems, 2012, 48:243-258.

[158] 张小贞.GNSS互操作参数及信号性能研究[D].北京:中国科学院大学,2014.

[159] 郝蓓.GPS信号的抗干扰捕获算法研究[D].西安:西安电子科技大学,2017.

[160] Liu F, Liu L, Yang J, et al. CS-SFD algorithm for GNSS anti-jamming receivers [J]. Progress In Electromagnetics Research, 2019, 79:91-100.

[161] Godet J. GPS/GALILEO radio frequency compatibility analysis [C]. In Proceedings of the 13th International Technical Meeting of the Satellite Division of The Institute of Navigation, Salt Lake City, USA, 2000:1782-1790.

[162] Owen R, Goldstein D B, Hegarty C. Modeling maximum aggregate GPS signal power levels for GPS self-Interference analyses [C]. In Proceedings of the 2002 National Technical Meeting of The Institute of Navigation, San Diego, USA, 2002:939-947.

[163] Wallner S, Hein G W, Pany T, et al. Interference computations between GPS and GALILEO [C]. In Proceedings of the 18th International Technical Meeting of the Satellite Division of The Institute of Navigation, Long Beach, USA, 2005:861-876.

[164] International Telecommunication Union. A coordination methodology for RNSS inter-system interference estimation (ITU-R M. 1831) [S]. 2007.

[165] Betz J W, Goldstein D B. Candidate designs for an additional civil signal in GPS spectral bands [C]. In Proceedings of the National Technical Meeting-Institute of Navigation, San Diego, CA, USA, 2002:622-631.

[166] Betz J W, Titus B M. Intersystem and intrasystem interference with signal imperfections [C]. In Proceedings of the Position Location and Navigation Symposium, Fort Worth, TX, USA, 2004:558-565.

[167] Soualle F, Burger T. Radio frequency compatibility criterion for code tracking performance [C]. In Proceedings of the 20th International Technical Meeting of the Satellite Division of The Institute of Navigation, Fort Worth, USA, 2007:1201-1210.

[168] 刘卫.GNSS兼容与互操作总体技术研究[D].上海:上海交通大学,2011.

[169] 刘莉.GNSS信号射频兼容分析及设计技术研究[D].上海:上海交通大学,2012.

[170] 冉一航,胡修林,刘禹圻,柯颋,唐祖平.Compass系统导航信号的兼容性研究[J].中国科学:物理学 力学 天文学,2010,40(5):676-684.

[171] Zhang J, Xue M, Xie J. Research on assessment method of intrasystem and intersystem of the global navigation satellite system [J]. Science China: Technological Sciences, 2015, 58(10):1672-1681.

[172] 李云志.一种GNSS信号兼容互用性评估方法[J].通信与网络,2014,40(9):95-97.