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Tytuł artykułu

A method for measuring the quality parameters of image intensifier based on projecting phase-shifting gratings

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Treść / Zawartość
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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
A method for measuring the quality parameters of image intensifier based on projecting phase-shifting gratings is proposed. A set of designed phase-shifting gratings are projected into the measuring system orderly to obtain the magnification parameter of the measured image intensifier, and the phase caused by the measured image intensifier. After obtaining the referential phase caused by only the magnification of the measured image intensifier, the phase caused by the distortion of the measured image intensifier is extracted by phase calculating and phase unwrapping. Both the global distortion and the partial distortion of the measured image intensifier can be measured by phase-to-distortion matching at the same time. The experimental results show that the proposed method can measure the multiple quality parameters of image intensifier effectively.
Czasopismo
Rocznik
Strony
39--51
Opis fizyczny
Bibliogr. 22 poz., rys., tab.
Twórcy
autor
  • Opto-Electronics Department, Sichuan University, Chengdu, 610064, China
autor
  • Opto-Electronics Department, Sichuan University, Chengdu, 610064, China
autor
  • Opto-Electronics Department, Sichuan University, Chengdu, 610064, China
autor
  • Opto-Electronics Department, Sichuan University, Chengdu, 610064, China
autor
  • Opto-Electronics Department, Sichuan University, Chengdu, 610064, China
autor
  • Opto-Electronics Department, Sichuan University, Chengdu, 610064, China
Bibliografia
  • [1] IMAMURA Y., OKI E., OHGAKI K., NAKASHIMA Y., ANDO K., TSUTSUMI S., TSURUMARU D., SAEKI H., BABA H., MAEHARA Y., Real-time accurate identification of tumor site using a mobile X-ray image -intensifier system during laparoscopic gastrectomy, Journal of the American College of Surgeons 222(2), 2016, pp. E1–E7.
  • [2] YUANHE TANG, YANG YU, HAIYANG GAO, SHULIN LIU, XIAOLIN WANG, Study on magnetic mirror array image intensifier to work at room temperature, Applied Optics 54(26), 2015, pp. 8010–8017.
  • [3] YAGI N., AOYAMA K., An X-ray image intensifier for microsecond time-resolved experiments, Journal of Instrumentation 10, 2015, article ID T01002.
  • [4] SHENGTAO YU, XULEI QIN, YE LI, The method of X-ray image intensifies pixel matching and noise suppression based on the CCD, Proceedings of SPIE 10141, 2016, article ID 101411C.
  • [5] XIA WANG, WEIQI JIN, ZHIYUN GAO, ZHIHONG WANG, TINGZHU BAI, Research on digitally integrated test system for performance evaluation of image intensifier and intensified CCD, Proceedings of SPIE 6150, 2006, article ID 61500S.
  • [6] MCDONALD T.E., YATES G.J., KING N.S.P., TURKO B.T., Continuous-recording camera system for high-frame-rate high-resolution applications, Proceedings of SPIE 3516, 1999, pp. 322–331.
  • [7] YANHONG LI, XIAOMEI CHEN, GUOQIANG NI, Application research on microchannel plate in new fields, Proceedings of SPIE 9620, 2015, article ID 96200W.
  • [8] QIUCHENG SUN, YUEQIAN HOU, JIAN CHEN, Lens distortion correction for improving measurement accuracy of digital image correlation, Optik – International Journal for Light and Electron Optics 126(21), 2015, pp. 3153–3157.
  • [9] KEDGLEY A.E., FOX A.-M.V., JENKYN T.R., Image intensifier distortion correction for fluoroscopic RSA: the need for independent accuracy assessment, Journal of Applied Clinical Medical Physics 13(1), 2012, pp. 197–204.
  • [10] MCROBBIE D.W., NIETO-CAMERO J.J., Measurement of image intensifier system modulation transfer function by video signal analysis, Medical Physics 21(2),1994, pp. 257–264.
  • [11] CUELENAERE A.J., Critical parameters in the photometric measurements of image intensifier tubes, Proceedings of SPIE 73, 1976, pp. 66–70.
  • [12] SONG SUN, YIPING CAO, TAO CHEN, XIYU ZENG, Multi-parameter measuring method of image intensifier based on Fourier transform phase measurement, Optik – International Journal for Light and Electron Optics 125(15), 2014, pp. 4168–4171.
  • [13] FENG LUO, WENJING CHEN, XIANYU SU, Eliminating zero spectra in Fourier transform profilometry by application of Hilbert transform, Optics Communications 365, 2016, pp. 76–85.
  • [14] SENPENG CAO, YIPING CAO, QICAN ZHANG, Fourier transform profilometry of a single-field fringe for dynamic objects using an interlaced scanning camera, Optics Communications 367, 2016, pp. 130–136.
  • [15] TONGCHUAN LIU, CANLIN ZHOU, YEPENG LIU, SHUCHUN SI, ZHENKUN LEI, Deflectometry for phase retrieval using a composite fringe, Optica Applicata 44(3), 2014, pp. 451–461.
  • [16] JOENATHAN C., BERNAL A., YOUN WOONGHEE, YANZENG LI, WANSEOK OH, Analysis of the quantitative measurement for a lateral shear interferometer in a convergent beam mode using Fourier transform method, Optical Engineering 53(5), 2014, article ID 054109.
  • [17] SRINIVASAN V., LIU H.C., HALIOUA M., Automated phase-measuring profilometry of 3-D diffuse objects, Applied Optics 23(18), 1984, pp. 3105–3108.
  • [18] ZHUANG MAO, YIPING CAO, LIJUN ZHONG, SENPENG CAO, A method for improving the precision of on-line phase measurement profilometry, Optica Applicata 45(1), 2015, pp. 51–61.
  • [19] ZHENFEN HUANG, YIPING CAO, AIPING ZHAI, YANG LI, DELIANG CHEN, Active phase-setting twin-frequency grating for 3D shape measurement based on an absolute phase unwrapping algorithm, Optica Applicata 42(4), 2012, pp. 887–900.
  • [20] YUANKUN LIU, QICAN ZHANG, XIANYU SU, 3D shape from phase errors by using binary fringe with multi-step phase-shift technique, Optics and Lasers in Engineering 74, 2015, pp. 22–27.
  • [21] PENG WANG, YIPING CAO, XIN YANG, KUANG PENG, On-line phase measuring profilometry for a rotating object, Optical Engineering 53(11), 2014, article ID 114112.
  • [22] XIANYU SU, QICAN ZHANG, Phase unwrapping in the dynamic 3D measurement, AIP Conference Proceedings 1236(1), 2010, pp. 467–471.
Uwagi
PL
Opracowanie rekordu w ramach umowy 509/P-DUN/2018 ze środków MNiSW przeznaczonych na działalność upowszechniającą naukę (2018).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-cb46e79a-673f-4f90-9ffb-83021d35e2b0
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