• Journal of Electronic Science and Technology
  • Vol. 22, Issue 2, 100257 (2024)
Cheng-Wei Zhang1, Zhi-Qin Zhao2, Wei Yang2, Li-Lai Zhou3, and Hai-Yu Zhu2
Author Affiliations
  • 1Southwest China Institute of Electronic Technology, Chengdu, 610036, China
  • 2School of Electronic Science and Engineering, University of Electronic Science and Technology of China, Chengdu, 611731, China
  • 3Tencent Company, Shenzhen, 518054, China
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    DOI: 10.1016/j.jnlest.2024.100257 Cite this Article
    Cheng-Wei Zhang, Zhi-Qin Zhao, Wei Yang, Li-Lai Zhou, Hai-Yu Zhu. Electromagnetic scattering and imaging simulation of extremely large-scale sea-ship scene based on GPU parallel technology[J]. Journal of Electronic Science and Technology, 2024, 22(2): 100257 Copy Citation Text show less
    References

    [1] Editorial Board of Special Issue for “Computational Electromagnetics” The. Progress in computational electromagnetic methods. Chinese Journal of Radio Science, 35, 13-25(2020).

    [2] Huang W.-F., Zhao Z.-Q., Zhao R., Wang J.-Y., Nie Z.-P., Liu Q.-H.. GO/PO and PTD with virtual divergence factor for fast analysis of scattering from concave complex targets. IEEE T. Antenn. Propag., 63, 2170-2179(2015).

    [3] Sun L.-P., Fang N., Qu S.-F.. Parallel computing of ray tracing by OpenMP. Electronic Measurement Technology, 35, 50-54(2012).

    [4] P. Sundararajan, M.Y. Niamat, FPGA implementation of the ray tracing algithm used in the XPATCH software, in: Proc. of 44th IEEE west Symposium on Circuits Systems, Dayton, USA, 2001, pp. 446–449.

    [5] Brem R., Eibert T.F.. A shooting and bouncing ray (SBR) modeling framework involving dielectrics and perfect conductors. IEEE T. Antenn. Propag., 63, 3599-3609(2015).

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    [8] L.X. Guo, J. Ma, A.Q. Wang, Study on 1D large scale rough surface EM scattering at low grazing incidence by parallel MOM based on MPI of PC clusters, in: Proc. of Conf. of Chinese MicrowaveMillimeterWave, Xi’an, China, 2009, pp. 66–69.

    [9] Y. Kee C., Wang C.-F.. Efficient GPU implementation of the high-frequency SBR-PO method. IEEE Antenn. Wirel. Pr., 12, 941-944(2013).

    [10] C.Y. Kee, C.F. Wang, T.T. Chia, Optimizing highfrequency POSBR on GPU f multiple frequencies, in: Proc. of 4th IEEE AsiaPacific Conf. on Antennas Propagation (APCAP), Bali, Indonesia, 2015, pp. 132–133.

    [11] Zheng W.-J., Yang W., Zhou L.-L.. Electromagnetic scattering simulation of extremely electrically large sea-ship scene based on GPU parallel technology. Journal of University of Electronic Science and Technology of China, 52, 549-554(2023).

    [12] L.L. Zhou, Research on NearField Scattering Modeling of Ship on the Sea GPU Parallel Technology, M.S. thesis, Univ. of Electronic Science Technology of China, Chengdu, China, 2022.

    [13] Yang W., Kee C.Y., Wang C.-F.. Novel extension of SBR-PO method for solving electrically large and complex electromagnetic scattering problem in half-space. IEEE T. Geosci. Remote Sens., 55, 3931-3940(2017).

    [14] A. Breglia, A. Capozzoli, C. Curcio, A. Liseno, J. Piccinotti, GPU implementation of hybrid GOPO BVHbased algithm f RCS predictions, in: Proc. of IEEE Intl. Symposium on Antennas Propagation & USNCURSI National Radio Science Meeting, Vancouver, Canada, 2015, pp. 1500–1501.

    Cheng-Wei Zhang, Zhi-Qin Zhao, Wei Yang, Li-Lai Zhou, Hai-Yu Zhu. Electromagnetic scattering and imaging simulation of extremely large-scale sea-ship scene based on GPU parallel technology[J]. Journal of Electronic Science and Technology, 2024, 22(2): 100257
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