• DocumentCode
    1012154
  • Title

    An Optical Imaging Technique Using Deep Illumination in the Angular Domain

  • Author

    Vasefi, Fartash ; Chan, Paulman K Y ; Kaminska, Bozena ; Chapman, Glenn H. ; Pfeiffer, Nick

  • Author_Institution
    Simon Fraser Univ., Burnaby
  • Volume
    13
  • Issue
    6
  • fYear
    2007
  • Firstpage
    1610
  • Lastpage
    1620
  • Abstract
    This paper describes a novel optical imaging method, deep illumination angular domain imaging (ADI), for detecting micron-scale objects within highly scattering media. The new optical imaging is a much simpler and less expensive solution as compared to other available optical imaging techniques. In principle, deep illumination ADI uses collimation detection capabilities of small acceptance angle devices to extract photons emitted from the scattered light created by a laser source, aimed deep beneath the turbid medium surface. The laser source forms an illumination ball within the medium that emits scattered light in all directions and illuminates objects near the surface from behind. Consequently, when photons from this illumination ball pass an object and reach the angular filter, light that is not subsequently scattered passes through to a camera detector, whereas scattered photons are rejected by the filter. Image results obtained are recorded for different phantom locations, phantom sizes, and medium scattering levels. Our images clearly display sub-204 m phantoms when placed 3 mm deep within a test scattering medium with total effective attenuation coefficient (mu´eff) up to 5.8-1 cm or 2.5 mm deep in chicken tissue tests. Preliminary digital image processing shows the image contrast enhancement and the definition improvement.
  • Keywords
    biological tissues; biomedical optical imaging; laser applications in medicine; light scattering; medical image processing; optical filters; phantoms; chicken tissue tests; collimation detection capabilities; deep illumination angular domain imaging; digital image processing; effective attenuation coefficient; image contrast enhancement; laser source; medical imaging; medium scattering levels; optical filters; optical imaging method; optical scattering; phantom locations; phantom sizes; Filters; Imaging phantoms; Light scattering; Lighting; Object detection; Optical imaging; Optical scattering; Particle scattering; Surface emitting lasers; Testing; Image processing; optical filters; optical imaging; optical scattering;
  • fLanguage
    English
  • Journal_Title
    Selected Topics in Quantum Electronics, IEEE Journal of
  • Publisher
    ieee
  • ISSN
    1077-260X
  • Type

    jour

  • DOI
    10.1109/JSTQE.2007.910997
  • Filename
    4404847