• 대한전기학회
Mobile QR Code QR CODE : The Transactions of the Korean Institute of Electrical Engineers
  • COPE
  • kcse
  • 한국과학기술단체총연합회
  • 한국학술지인용색인
  • Scopus
  • crossref
  • orcid

References

1 
Y. -P. Zhang, Q. Zhang, L. Kang, Y. Luo and L. Zhang, "End-to-End Recognition of Similar Space Cone–Cylinder Targets Based on Complex-Valued Coordinate Attention Networks," IEEE Trans. Geosci. Remote Sensing, vol. 60, no. 5106214, pp. 1-14, Oct. 2022.DOI
2 
J. -I. Lee, N. Kim, S. Min, J. Kim, D. -K. Jeong, and D. -W. Seo, "Space Target Classification Improvement by Generating Micro-Doppler Signatures Considering Incident Angle," Sensors, vol. 22, no. 4, pp. 1653, Feb. 2022.DOI
3 
K. Jung, J. -I. Lee, N. Kim, S. Oh, and D. -W. Seo, "Classification of Space Objects by Using Deep Learning with Micro-Doppler Signature Images," Sensors, vol. 21, no. 13, pp. 4365, June 2021.DOI
4 
Ye Ma, Moufa Hu, Huanzhang Lu, and Qing Chang, "Recurrent neural networks for discrimination of exo-atmospheric targets based on infrared radiation signature," Infrared Phys. Technol., vol. 96, pp. 123-132, Jan. 2019.DOI
5 
D. Wu, H. Lu, M. Hu, and B. Zhao, "Independent Random Recurrent Neural Networks for Infrared Spatial Point Targets Classification,". Appl. Sci., vol. 9, no. 21, pp. 4622, Oct. 2019.DOI
6 
X. Chen, H. Zhang, S. Zhang, J. Feng, H. Xia, P. Rao, and J. Ai, "A Space Infrared Dim Target Recognition Algorithm Based on Improved DS Theory and Multi-Dimensional Feature Decision Level Fusion Ensemble Classifier," Remote Sens., vol. 16, no. 3, pp. 510, Jan. 2024.DOI
7 
J. Chen, S. Xu, and Z. Chen, "Convolutional neural network for classifying space target of the same shape by using RCS time series," IET Radar Sonar Navig., vol. 12, no. 11, pp. 1268-1275, Nov. 2018.DOI
8 
A. R. Kim, H. S. Kim, C. H. Kang, and S. Y. Kim, "The Design of the 1D CNN–GRU Network Based on the RCS for Classification of Multiclass Missiles," Remote Sens., vol. 15, no. 3, pp. 577, Jan. 2023.DOI
9 
X. Xu, C. Feng, and L. Han, "Classification of Radar Targets with Micro-Motion Based on RCS Sequences Encoding and Convolutional Neural Network," Remote Sens., vol. 14, no. 22, pp. 5863, Nov. 2022.DOI
10 
Y. Zhang, J. Guan, H. Wang, K. Li, Y. Luo, and Q. Zhang, "Generalized Zero-Shot Space Target Recognition Based on Global-Local Visual Feature Embedding Network," Remote Sens., vo. 15, no. 21, pp. 5156, Oct. 2023.DOI
11 
Y. Zhang, Y. Xie, L. Kang, K. Li, Y. Luo and Q. Zhang, "Feature-Level Fusion Recognition of Space Targets With Composite Micromotion," IEEE Trans. Aerosp. Electron. Syst., vol. 60, no. 1, pp. 934-951, Feb. 2024.DOI
12 
X. Tian, X. Bai, R. Xue, R. Qin and F. Zhou, "Fusion Recognition of Space Targets With Micromotion," IEEE Trans. Aerosp. Electron. Syst., vol. 58, no. 4, pp. 3116-3125, Aug. 2022.DOI
13 
J. Dong, Q. She and F. Hou, "HRPnet: High-Dimensional Feature Mapping for Radar Space Target Recognition," IEEE Sens. J., vol. 24, no. 7, pp. 11743-11758, Apr. 2024.DOI
14 
X. Tian, X. Bai and F. Zhou, "Recognition of Micro-Motion Space Targets Based on Attention-Augmented Cross-Modal Feature Fusion Recognition Network," IEEE Trans. Geosci. Remote Sensing, vol. 61, no. 5104909, pp. 1-9, May 2023.DOI
15 
Y. Zhang, Y. Zhang, Z. Ding, and Z. Wang, "Classification and Recognition Method of Non-Cooperative Object Based on Transfer Learning," Opt. Laser Technol., vol. 169, pp. 110005, Feb. 2024.DOI
16 
S. Wang, M. Li, T. Yang, X. Ai, J. Liu, F. P. Andriulli, and D. Ding, "Cone-Shaped Space Target Inertia Characteristics Identification by Deep Learning With Compressed Dataset," IEEE Trans. Antennas Propag., vol. 70, no. 7, pp. 5217-5226, July 2022.DOI
17 
L. Han and C. Feng, "Micro-Doppler-Based Space Target Recognition with a One-Dimensional Parallel Network," Int. J. Antennas Propag., vol. 2020, Article ID 8013802, Oct. 2020.DOI
18 
I. -O. Choi, S. -H. Park, M. Kim, K. -B. Kang and K. -T. Kim, "Efficient Discrimination of Ballistic Targets With Micromotions," IEEE Trans. Aerosp. Electron. Syst., vol. 56, no. 2, pp. 1243-1261, Apr. 2020.DOI
19 
Y. Wang, C. Feng, X. Hu and Y. Zhang, "Classification of Space Micromotion Targets With Similar Shapes at Low SNR," IEEE Geosci. Remote Sens. Lett., vol. 19, no. 3504305, pp. 1-5, Mar. 2022.DOI
20 
L. Yang, W. Zhang, and W. Jiang, "Recognition of Ballistic Targets by Fusing Micro-Motion Features with Networks," Remote Sens., vo. 14, no. 22, pp. 5678, Nov. 2022.DOI
21 
L. Han, C. Feng, and X. Hu, "Space Targets with Micro-Motion Classification Using Complex-Valued GAN and Kinematically Sifted Methods," Remote Sens., vol. 15, no. 21, pp. 5085, Oct. 2023.DOI
22 
C. Zhao, L. Wang and Y. Liu, "Ballistic Target Recognition Based on 4-D Point Cloud Using Randomized Stepped Frequency Radar," IEEE Trans. Aerosp. Electron. Syst., vol. 58, no. 6, pp. 5711-5729, Dec. 2022.DOI
23 
J. Kim, Y. S. Kwon, and K. H. Lee, "Analysis of Considerations of the BMD System Construction Depending on the Characteristics of Ballistic Missiles Threat," KJMAS, vol. 72, no. 1, pp. 1-29, Feb. 2016.URL
24 
J. Boutelle, S. P. Kau and C. J. Marino, "ICBM reentry vehicle navigation system development at Honeywell," Proc. IEEE Position Location Navig. Symp., pp. 294-302, 1998.DOI
25 
L. Liu, D. McLernon, M. Ghogho, W. Hu, and J. Huang, "Ballistic missile detection via micro-Doppler frequency estimation from radar return," Digit. Signal Process., volume 22, no. 1, pp. 87-95, Jan. 2012.DOI
26 
K. He, X. Zhang, S. Ren, and J. Sun, "Deep Residual Learning for Image Recognition," Proc. IEEE Conf. Comput. Vis. Pattern Recognit. (CVPR), pp. 770-778, 2016.URL