Calculation and research of point spread function of apodized optical system in order to compensate for defocusing

被引:1
作者
Dzyuba, Alexey [1 ]
机构
[1] Samara Natl Res Univ, Samara, Russia
来源
2020 VI INTERNATIONAL CONFERENCE ON INFORMATION TECHNOLOGY AND NANOTECHNOLOGY (IEEE ITNT-2020) | 2020年
关键词
depth of field; phase apodization; cubic phase function; EXTENDED DEPTH; PHASE APODIZATION; FOCAL DEPTH; FIELD; FOCUS; SUPERRESOLUTION; MICROSCOPY; MODULATION; EXTENSION; COHERENT;
D O I
10.1109/ITNT49337.2020.9253262
中图分类号
TP7 [遥感技术];
学科分类号
081102 ; 0816 ; 081602 ; 083002 ; 1404 ;
摘要
It is known that image quality deteriorates noticeably when defocusing or shifting the detection device from the plane of sharpness. One way to increase the depth of focus of the optical system and reduce the negative consequences of blurring defocused images is to phase apodize the system, for example, with a cubic phase function. However, apodization is accompanied not only by positive effects (increasing the depth of focus), but also by a significant change in the structure of the point scattering function and the growth of side lobes. Digital post-processing can be applied to eliminate the negative effect, but at the same time it is desirable to perform some optimization of the apodizing function, compromising between increasing the depth of focus and distortion of the point scattering function. In this paper, we performed a calculation and comparative study of the properties of the point spread function during apodization of the optical system by a phase power function of various powers (from the third to the fifth). The research results showed that the depth of focus increases by several tens of times compared with the unapodized lens. The distortion of the point spread function, which occurs in this case, can be reduced by increasing the degree of the apodizing function. Since an increase in the depth of focus and a decrease in the size of the light spot are competing criteria, a compromise is possible with a solution.
引用
收藏
页数:4
相关论文
共 42 条
  • [1] Extension of depth of field using amplitude and phase modulation of the pupil function
    Bagheri, Saeed
    Javidi, Bahram
    [J]. OPTICS LETTERS, 2008, 33 (07) : 757 - 759
  • [2] Laser scanning confocal microscope with programmable amplitude, phase, and polarization of the illumination beam
    Boruah, B. R.
    Neil, M. A. A.
    [J]. REVIEW OF SCIENTIFIC INSTRUMENTS, 2009, 80 (01)
  • [3] Asymmetric phase masks for extended depth of field
    Castro, A
    Ojeda-Castañeda, J
    [J]. APPLIED OPTICS, 2004, 43 (17) : 3474 - 3479
  • [4] New paradigm for imaging systems
    Cathey, WT
    Dowski, ER
    [J]. APPLIED OPTICS, 2002, 41 (29) : 6080 - 6092
  • [5] Tailoring the depth of focus for optical imaging systems using a Fourier transform approach
    Davis, Jeffrey A.
    Tuvey, C. Stewart
    Lopez-Coronado, Octavio
    Campos, Juan
    Yzuel, Maria J.
    Iemmi, Claudio
    [J]. OPTICS LETTERS, 2007, 32 (07) : 844 - 846
  • [6] Demidov A. S., 2014, OPT MEM NEURAL NETW, V23, P130, DOI [10.3103/ S1060992X14030035., DOI 10.3103/S1060992X14030035]
  • [7] EXTENDED DEPTH OF FIELD THROUGH WAVE-FRONT CODING
    DOWSKI, ER
    CATHEY, WT
    [J]. APPLIED OPTICS, 1995, 34 (11): : 1859 - 1866
  • [8] Dzyuba A. P., 2019, Journal of Physics: Conference Series, V1368, DOI 10.1088/1742-6596/1368/2/022055
  • [9] Application of a neural network for calculating the surface relief of a different level two-zone lens with an increased depth of field
    Dzyuba, Alexey
    Serafimovich, Pavel
    Khonina, Svetlana
    Popov, Sergei
    [J]. OPTICAL TECHNOLOGIES FOR TELECOMMUNICATIONS 2019, 2020, 11516
  • [10] HDR image reconstruction from a single exposure using deep CNNs
    Eilertsen, Gabriel
    Kronander, Joel
    Denes, Gyorgy
    Mantiuk, Rafal K.
    Unger, Jonas
    [J]. ACM TRANSACTIONS ON GRAPHICS, 2017, 36 (06):