Systems Engineering and Electronics ›› 2024, Vol. 46 ›› Issue (6): 1838-1846.doi: 10.12305/j.issn.1001-506X.2024.06.02
• Electronic Technology • Previous Articles
Ximeng ZHANG1, Yuhong MA1, Weidong HU1, Qingping WANG1,*, Pengfei JI2, Naichang YUAN1
Received:
2022-10-25
Online:
2024-05-25
Published:
2024-06-04
Contact:
Qingping WANG
CLC Number:
Ximeng ZHANG, Yuhong MA, Weidong HU, Qingping WANG, Pengfei JI, Naichang YUAN. Localization and network group division method for broadband frequency hopping-TDMA emitter network groups[J]. Systems Engineering and Electronics, 2024, 46(6): 1838-1846.
1 | YU H Y , AN W , ZHU R , et al. A hypergraph matching labeled multi-bernoulli filter for group targets tracking[J]. IEEE Trans.on Information and Systems, 2019, 102 (10): 2077- 2081. |
2 | 王聪, 王海鹏, 何友. 基于坐标映射距离差分的快速群分割算法[J]. 系统工程与电子技术, 2016, 38 (8): 1716- 1722. |
WANG C , WANG H P , HE Y . Fast algorithm of group segmentation based on coordinates transformations and distance differentiations[J]. Systems Engineering and Electronics, 2016, 38 (8): 1716- 1722. | |
3 |
MIHAYLOVA L , CARMI A Y , SEPTIER F , et al. Overview of Bayesian sequential Monte Carlo methods for group and extended object tracking[J]. Digital Signal Processing, 2014, 25, 1- 16.
doi: 10.1016/j.dsp.2013.11.006 |
4 | GUERLIN L, PANNETIER B, ROMBAUT M, et al. Study on group target tracking to counter swarms of drones[C]//Proc. of the Signal Processing, Sensor/Information Fusion, and Target Recognition Conference, 2020, 11423: 8-27. |
5 | 卢哲俊, 胡卫东. 基于随机有限集的空间碎片群运动状态估计[J]. 航空学报, 2017, 38 (11): 254- 264. |
LU Z J , HU W D . State estimation of space debris group based on random finite set[J]. Acta Aeronautica et Astronautica Sinica, 2017, 38 (11): 254- 264. | |
6 |
郭乾, 宫健, 陈赓, 等. 弹道群目标跟踪技术研究现状[J]. 电光与控制, 2021, 28 (8): 53- 58.
doi: 10.3969/j.issn.1671-637X.2021.08.012 |
GUO Q , GONG J , CHEN G , et al. Research status of ballistic group target tracking technology[J]. Electronics Optics & Control, 2021, 28 (8): 53- 58.
doi: 10.3969/j.issn.1671-637X.2021.08.012 |
|
7 |
宋发兴, 许俊奎, 焦中科. Link-16(JTIDS终端)的TDMA体系结构分析[J]. 舰船电子工程, 2008, 28 (4): 65- 68.
doi: 10.3969/j.issn.1627-9730.2008.04.019 |
SONG F X , XU J K , JIAO Z K . Analysis on TDMA configuration system of Link-16(JTIDS terminal)[J]. Ship Electronic Engineering, 2008, 28 (4): 65- 68.
doi: 10.3969/j.issn.1627-9730.2008.04.019 |
|
8 |
宁晓燕, 王影, 孙志国, 等. 多音干扰下Nakagami-m信道传输Link16数据链的性能分析[J]. 系统工程与电子技术, 2023, 45 (2): 566- 571.
doi: 10.12305/j.issn.1001-506X.2023.02.29 |
NING X Y , WANG Y , SUN Z G , et al. Performance analysis of Nakagamim channel transmission Link16 under multi-tone interference[J]. Systems Engineering and Electronics, 2023, 45 (2): 566- 571.
doi: 10.12305/j.issn.1001-506X.2023.02.29 |
|
9 | LIANG J, LI Y, LIU H. Research and analysis of anti-jamming performance on the joint tactical information distribution system[C]//Proc. of the IEEE 2nd International Conference on Information Communication and Software Engineering, 2022: 146-150. |
10 |
CAO S , QIN H L , LI C , et al. TDMA datalink cooperative navigation algorithm based on INS/JTIDS/BA[J]. Electronics, 2021, 10 (7): 782.
doi: 10.3390/electronics10070782 |
11 | 吕娜. 数据链理论与系统[M]. 北京: 电子工业出版社, 2011. |
LYU N . Theory and system of data link[M]. Beijing: Publishing House of Electronics Industry, 2011. | |
12 |
DIEKMANN L , SCHWARZ B , BAUER A , et al. Source localization and joint velocity model building using wavefront attributes[J]. Geophysical Journal International, 2019, 219 (2): 995- 1007.
doi: 10.1093/gji/ggz342 |
13 |
CRUNCHANT A S , ISAACS J T , PIEL A K . Localizing wild chimpanzees with passive acoustics[J]. Ecology and Evolution, 2022, 12 (5): e8902.
doi: 10.1002/ece3.8902 |
14 |
WILSON K C , SEMMENS B X , GITTINGS S R , et al. Grouper source levels and aggregation dynamics inferred from passive acoustic localization at a multispecies spawning site[J]. The Journal of the Acoustical Society of America, 2022, 151 (5): 3052- 3065.
doi: 10.1121/10.0010236 |
15 |
SEDIGHI S , MISHRA K V , SHANKAR M R B , et al. Locali-zation with one-bit passive radars in narrowband internet-of-things using multivariate polynomial optimization[J]. IEEE Trans.on Signal Processing, 2021, 69, 2525- 2540.
doi: 10.1109/TSP.2021.3072834 |
16 |
LIAQUAT M U , MUNAWAR H S , RAHMAN A , et al. Localization of sound sources: a systematic review[J]. Energies, 2021, 14 (13): 3910.
doi: 10.3390/en14133910 |
17 | KUSCHEL H , CRISTALLINI D , OLSEN K E . Tutorial: passive radar tutorial[J]. IEEE Aerospace and Electronic Systems Magazine, 2019, 34 (2): 2- 19. |
18 |
GUAN H , ZHANG S , WANG W Q . Localization deception performance of FDA signals under passive bi-satellite reconnaissance[J]. Science China Information Sciences, 2021, 64 (9): 192305.
doi: 10.1007/s11432-019-2773-1 |
19 | GIFFORD W M , DARDARI D , WIN M Z . The impact of multipath information on time-of-arrival estimation[J]. IEEE Trans.on Signal Processing, 2020, 70, 31- 46. |
20 |
PINE K C , PINE S , CHENEY M . The geometry of far-field passive source localization with TDOA and FDOA[J]. IEEE Trans.on Aerospace and Electronic Systems, 2021, 57 (6): 3782- 3790.
doi: 10.1109/TAES.2021.3087804 |
21 |
ZHANG H B , HU J Z , ZHANG H L , et al. Metaradar: indoor localization by reconfigurable metamaterials[J]. IEEE Trans.on Mobile Computing, 2020,
doi: 10.1109/TMC.2020.3044603 |
22 | WEISS A J , AMAR A . Direct position determination of multiple radio signals[J]. EURASIP Journal on Advances in Signal Processing, 2005, (1): 37- 49. |
23 | TIRER T , WEISS A J . High resolution direct position determination of radio frequency sources[J]. IEEE Signal Processing Letters, 2015, 23 (2): 192- 196. |
24 | WEISS A J, AMAR A. Direct geolocation of stationary wideband radio signal based on time delays and Doppler shifts[C]//Proc. of the IEEE/SP 15th Workshop on Statistical Signal Processing, 2009: 101-104. |
25 |
TZOREFF E , WEISS A J . Expectation-maximization algorithm for direct position determination[J]. Signal Processing, 2017, 133, 32- 39.
doi: 10.1016/j.sigpro.2016.10.015 |
26 |
GUIZHOU W U , ZHANG M , CHAOXIN H E , et al. Direct position determination using single moving rotating linear array: noncoherent and coherent processing[J]. Chinese Journal of Aeronautics, 2020, 33 (2): 688- 700.
doi: 10.1016/j.cja.2019.07.027 |
27 |
OISPUU M , NICKEL U . Direct detection and position determination of multiple sources with intermittent emission[J]. Signal Processing, 2010, 90 (12): 3056- 3064.
doi: 10.1016/j.sigpro.2010.05.010 |
28 |
HAO K G , WAN Q . High resolution direct detection and position determination of sources with intermittent emission[J]. IEEE Access, 2019, 7, 43428- 43437.
doi: 10.1109/ACCESS.2019.2907136 |
29 |
陈芳香, 易伟, 周涛, 等. 应用膨胀算法提取目标的直接定位算法[J]. 雷达科学与技术, 2019, 17 (2): 161- 167.
doi: 10.3969/j.issn.1672-2337.2019.02.008 |
CHEN F X , YI W , ZHOU T , et al. A direct position determination method using the image expansion algorithm to extract targets[J]. Radar Science and Technology, 2019, 17 (2): 161- 167.
doi: 10.3969/j.issn.1672-2337.2019.02.008 |
|
30 |
王鼎, 吴志东, 尹洁昕. 信号波形已知条件下多目标直接定位性能分析及其改进算法[J]. 电子学报, 2017, 45 (12): 2881- 2889.
doi: 10.3969/j.issn.0372-2112.2017.12.008 |
WANG D , WU Z D , YIN J X . A performance analysis and improvement algorithm for multiple-source direct localization with known signal waveforms[J]. Acta Electonica Sinica, 2017, 45 (12): 2881- 2889.
doi: 10.3969/j.issn.0372-2112.2017.12.008 |
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