Large field of view flat image plane splicing method for compound eye systems

被引:0
|
作者
Yu J. [1 ]
Hu Y. [1 ]
Cheng B. [1 ]
Zhang L. [1 ]
机构
[1] School of Opto-electronic Engineering, Changchun University of Science and Technology, Changchun
关键词
bionic compound eye system; curved plane splicing; flat plane splicing; optical systems design;
D O I
10.3788/IRLA20210848
中图分类号
学科分类号
摘要
The conventional curved bionic compound eye relay system is required to undertake the task of converting the curved image plane caused by the splicing of large-field subeyes into a flat image field, which poses certain difficulties to the system design. A method was proposed for the splicing arrangement of the flat image plane of the large-field compound eyes, and the method was described mathematically. By constructing a balanced model between the number of subeyes, the total field of view of the system and the subsequent reasonable selection of the optical relay system parameters, the relationship between the depth of field of the relay system and the optical range difference of the spliced image plane of the compound eye was analysed, and it was concluded that the optical range difference generated by the splicing method of the compound eye flat image plane was within the acceptable depth of field of a typical optical relay system, which could effectively reduce the design pressure of the relay optical system. Based on the above theory, a compound eye optical system with a field of view of 16° for a single subeye and an overall field of view of 96° was designed for practical verification. The system finally achieves an aberration of less than 2%, the transfer function reaches the diffraction limit in the central field of view and the edge field of view is close to the diffraction limit with good image quality, which proves that splicing theory is feasible. © 2022 Chinese Society of Astronautics. All rights reserved.
引用
收藏
相关论文
共 15 条
  • [1] Hu Xuelei, Gao Ming, Chen Yang, Design of curved bionic compound eye optical system with large field of view, Infrared and Laser Engineering, 49, 1, (2020)
  • [2] Krishnasamy R, Wong W, Shen E, Et al., High precision target tracking with a compound-eye image sensor [C], Conference on Electrical & Computer Engineering, (2004)
  • [3] Xu Yan, Yan Shuhua, Zhou Chunlei, Et al., Advances in bionic study on insects' compound eyes, Optical Technique, 32, pp. 10-12, (2006)
  • [4] Xu Huangrong, Liu Jinheng, Zhang Yuanjie, Et al., UAV-borne biomimetic curved compound-eye imaging system for velocity measurement, Acta Photonica Sinica, 50, 9, pp. 232-238, (2021)
  • [5] Zhang Jiaming, Chen Yu, Tan Haiqi, Et al., Optical system of bionic compound eye with large field of view, Optics and Precision Engineering, 28, 5, pp. 1012-1020, (2020)
  • [6] Wang Y, Shi C, Xu H, Et al., A compact bionic compound eye camera for imaging in a large field of view, Optics & Laser Technology, 135, (2021)
  • [7] Xu H, Zhang Y, Wu D, Et al., Biomimetic curved compound-eye camera with a high resolution for the detection of distant moving objects, Optics Letters, 45, 24, (2020)
  • [8] Shi C, Wang Y, Liu C, Et al., SCECam: A spherical compound eye camera for fast location and recognition of objects at a large field of view, Optics Express, 25, 26, (2017)
  • [9] Shi Chengyong, Research on the design and image process of bioinspired spherical compound eye imaging system, (2017)
  • [10] Yu Xiaodan, Design of imaging system for the multispectral compound eye camera with a large-field of view, (2019)