Bionic navigation based on local atmospheric polarization

  • JIANG Rui ,
  • WANG Xia ,
  • ZUO Yifan ,
  • LI Leilei ,
  • CHEN Jiabin
Expand
  • 1. Key Laboratory of Photoelectronic Imaging Technology and System, School of Optics and Photonics, Beijing Institute of Technology, Beijing 100081, China;
    2. School of Automation, Beijing Institute of Technology, Beijing 100081, China

Received date: 2020-05-26

  Revised date: 2020-05-29

  Online published: 2020-06-18

Abstract

In the current mainstream polarization navigation algorithms, it is often necessary to obtain the polarization image of the whole sky, the solar meridian, and the neutral point before judging the navigation direction. In this paper, a new navigation direction acquisition algorithm is proposed, which can determine the navigation direction by fitting the sun direction vector in a small field of view. On this basis, computer simulation and outdoor experiments are carried out. The polarization distribution mode of the atmosphere in the zenith area is obtained by the polarization camera, and the distribution of the atmospheric polarization mode calculated by the Stokes vector analysis method, including the information of polarization degree and polarization angle. The feasibility and accuracy of the algorithm in the actual situation are verified, navigation accuracy can reach about 0.2°.

Cite this article

JIANG Rui , WANG Xia , ZUO Yifan , LI Leilei , CHEN Jiabin . Bionic navigation based on local atmospheric polarization[J]. ACTA AERONAUTICAET ASTRONAUTICA SINICA, 2020 , 41(S2) : 724293 -724293 . DOI: 10.7527/S1000-6893.2020.24293

References

[1] MÜLLER M, WEHNER R. Path integration in desert ants, Cataglyphis Fortis[J]. Proceedings of the National Academy of Sciences of the United States of America, 1988, 85(14):5287.
[2] LAMBRINOS D, MÖLLER R, LABHART T, et al. A mobile robot employing insect strategies for navigation[J]. Robotics & Autonomous Systems, 2000, 30(1):39-64.
[3] LAMBRINOS D, KOBAYASHI H, PFEIFER R, et al. An autonomous agent navigating with a polarized light compass[J]. Adaptive Behavior, 1997, 6(1):131-161.
[4] 田柳, 高隽, 范之国, 等. 基于大气偏振模式分布规律的导航方向角计算方法[J]. 电子学报, 2012, 40(1):141-146. TIAN L, GAO J, FAN Z G, et al. Calculation method of navigation direction angle based on the distribution law of atmospheric polarization mode[J]. Journal of Electronics, 2012, 40(1):141-146(in Chinese).
[5] 王晨光, 张楠, 李大林, 等. 利用全天域大气偏振检测的航向角解算[J]. 光电工程, 2015, 42(12):60-66. WANG C G, ZHANG N, LI D L, et al. Calculation of heading angle using global atmospheric polarization detection[J]. Optoelectronic Engineering, 2015, 42(12):60-66(in Chinese)
[6] MA T, HU X, ZHANG L, et al. An evaluation of sky-light polarization patterns for navigation[J]. Sensors, 2015, 15(3):5895-5913.
[7] WANG D, LIANG H, ZHU H, et al. A bionic camera-based polarization navigation sensor[J]. Sensors, 2014, 14(7):13006-13023.
[8] WANG Y, HU X, LIAN J, et al. Bionic orientation and visual enhancement with a novel polarization camera[J]. IEEE Sensors Journal, 2017, 17(5):1316-1324.
[9] ZHANG W, CAO Y, ZHANG X, et al. Sky light polarization detection with linear polarizer triplet in light field camera inspired by insect vision[J]. Applied Optics, 2015, 54(30):8962.
[10] ZHANG N, CHU J K, ZHAO K C, et al. The design of the subwavelength wire-grid polarizers based on rigorous couple-wave theory[J]. Chinese Journal of Sensors and Actuators, 2006, 19(5):1739-1743.
[11] GUOLIANG H, XIAOPING H, JUNXIANG L, et al. Design and calibration of a novel bio-inspired pixelated polarized light compass[J]. Sensors, 2017, 17(11):2623.
[12] MA T, HU X, ZHANG L, et al. An evaluation of sky-light polarization patterns for navigation[J]. Sensors, 2015, 15(3):5895-5913.
[13] LEE R L. Digital imaging of clear-sky polarization[J]. Applied Optics, 1998, 37(9):1465.
[14] POMOZI I, HORVÁTH G, WEHNER R. How the clear-sky angle of polarization pattern continues underneath clouds:Full-sky measurements and implications for animal orientation[J]. Journal of Experimental Biology, 2001, 204(17):2933-2942.
[15] BARTA A, HORVÁTH G, BERNÁTH B, et al. Imaging polarimetry of the rainbow[J]. Applied Optics, 2003, 42(3):399.
[16] MIYAZAKI D, AMMAR M, KAWAKAMI R, et al. Estimating sunlight polarization using a fish-eye lens[J]. IPSJ Transactions on Computer Vision & Applications, 2010, 1(1):288-300.
[17] ADAMS J T, GRAY D J. Neutral points in an atmosphere-ocean system. 2:Downwelling light field[J]. Applied Optics, 2011, 50(3):335-346.
[18] SAKURA M, LAMBRINOS D, LABHART T. Polarized skylight navigation in insects:Model and electrophysiology of e-vector coding by neurons in the central complex[J]. Journal of Neurophysiology, 2008, 99(2):667-682.
[19] BELTRAMI G, BERTOLUCCI C, PARRETTA A, et al. A sky polarization compass in lizards:The central role of the parietal eye[J]. Journal of Experimental Biology, 2010, 213(12):2048.
[20] HOMBERG U, HEINZE S, PFEIFFER K, et al. Central neural coding of sky polarization in insects[J]. Philosophical Transactions Biological Sciences, 2011, 366(1565):680-687.
Outlines

/