Techniques of noninvasive optical tomographic imaging

被引:3
|
作者
Rosen, J [1 ]
Abookasis, D [1 ]
Gokhler, M [1 ]
机构
[1] Ben Gurion Univ Negev, Dept Elect & Comp Engn, POB 653, IL-84105 Beer Sheva, Israel
基金
以色列科学基金会;
关键词
medical and biological imaging; coherence imaging; speckle; low coherence interferometer; optical coherence tomography;
D O I
10.1117/12.667705
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
Recently invented methods of optical tomographic imaging through scattering and absorbing media are presented. In one method, the three-dimensional structure of an object hidden between two biological tissues is recovered from many noisy speckle pictures obtained on the output of a multi-channeled optical imaging system. Objects are recovered from many speckled images observed by a digital camera through two stereoscopic microlens arrays. Each microlens in each array generates a speckle image of the object buried between the layers. In the computer each image is Fourier transformed jointly with an image of the speckled point-like source captured under the same conditions. A set of the squared magnitudes of the Fourier-transformed pictures is accumulated to form a single average picture. This final picture is again Fourier transformed, resulting in the three-dimensional reconstruction of the hidden object. In the other method, the effect of spatial longitudinal coherence is used for imaging through an absorbing layer with different thickness, or different index of refraction, along the layer. The technique is based on synthesis of multiple peak spatial degree of coherence. This degree of coherence enables us to scan simultaneously different sample points on different altitudes, and thus decreases the acquisition time. The same multi peak degree of coherence is also used for imaging through the absorbing layer. Our entire experiments are performed with a quasi-monochromatic light source. Therefore problems of dispersion and inhomogeneous absorption are avoided.
引用
收藏
页数:6
相关论文
共 50 条
  • [31] Optical techniques for the noninvasive diagnosis of skin cancer
    Mihaela Antonina Calin
    Sorin Viorel Parasca
    Roxana Savastru
    Marian Romeo Calin
    Simona Dontu
    Journal of Cancer Research and Clinical Oncology, 2013, 139 : 1083 - 1104
  • [32] Optical techniques for the noninvasive diagnosis of skin cancer
    Calin, Mihaela Antonina
    Parasca, Sorin Viorel
    Savastru, Roxana
    Calin, Marian Romeo
    Dontu, Simona
    JOURNAL OF CANCER RESEARCH AND CLINICAL ONCOLOGY, 2013, 139 (07) : 1083 - 1104
  • [33] Noninvasive optical diagnostic techniques for heterogeneous plasma
    Anisimov, A. L.
    Bul'ba, A. V.
    Luizova, L. A.
    Khakhaev, A. D.
    Shtykov, A. S.
    HIGH ENERGY CHEMISTRY, 2006, 40 (03) : 194 - 198
  • [34] QUANTITATIVE OPTICAL TOMOGRAPHIC IMAGING OF A SUPERSONIC JET
    FARIS, GW
    BYER, RL
    OPTICS LETTERS, 1986, 11 (07) : 413 - 415
  • [35] Foveal hypoplasia and optical coherence tomographic imaging
    Kondo, Hiroyuki
    TAIWAN JOURNAL OF OPHTHALMOLOGY, 2018, 8 (04) : 181 - 188
  • [36] A SCSCMOS micromirror for optical coherence tomographic imaging
    Xie, HK
    Pan, YT
    Fedder, GK
    FIFTEENTH IEEE INTERNATIONAL CONFERENCE ON MICRO ELECTRO MECHANICAL SYSTEMS, TECHNICAL DIGEST, 2002, : 495 - 498
  • [37] Optical tomographic imaging for breast cancer detection
    Cong, Wenxiang
    Intes, Xavier
    Wang, Ge
    JOURNAL OF BIOMEDICAL OPTICS, 2017, 22 (09)
  • [38] A sediment imaging system using acoustic tomographic techniques
    Austin, TC
    Arthur, R
    Chu, DZ
    Hinton, A
    Tang, DJ
    OCEANS '97 MTS/IEEE CONFERENCE PROCEEDINGS, VOLS 1 AND 2, 1997, : 769 - 772
  • [39] Investigation of microwave tomographic imaging techniques for industrial processes
    Wu, Z
    Boughriet, A
    McCann, H
    Davis, LE
    Nugroho, AT
    PROCESS IMAGING FOR AUTOMATIC CONTROL, 2001, 4188 : 151 - 158
  • [40] In vivo noninvasive molecular optical imaging of disease
    Jenny Buckland
    Nature Reviews Rheumatology, 2015, 11 (5) : 258 - 258