• DocumentCode
    846746
  • Title

    Radiative transfer modeling and analysis of spatially variant and coherent illumination for undersea object detection

  • Author

    Bailey, Bernard C. ; Blatt, Joel H. ; Caimi, Frank M.

  • Author_Institution
    United Space Alliance, Kennedy Space Center, FL, USA
  • Volume
    28
  • Issue
    4
  • fYear
    2003
  • Firstpage
    570
  • Lastpage
    582
  • Abstract
    Increasing the optical range of target detection and recognition continues to be an area of great interest in the ocean environment. Light attenuation limits radiative and information transfer for image formation in water. In this paper, the authors briefly review current methods of imaging and then describe a variation of the spatial interferometric technique that relies upon projected spatial gratings with subsequent detection against a coherent return signal for the purpose of noise reduction and image enhancement. A model is developed that simulates the projected structured illumination through turbid water to a target and its return to a detector. The model shows an unstructured backscatter superimposed upon a structured return signal. The model has been extended to predict what a camera would actually see, so that various noise-reduction schemes can be modeled. Finally, some water-tank tests are presented, validating original hypothesis and model predictions. The method is advantageous in not requiring temporal synchronization between reference and signal beams and may use a continuous illumination source. Spatial coherency of the beam allows for the detection of the direct return, while scattered light appears as a noncoherent noise term.
  • Keywords
    backscatter; image enhancement; light absorption; light interferometry; light scattering; lighting; object detection; object recognition; oceanographic techniques; radiative transfer; turbidity; Moire profilometry; backscatter; beam spatial coherency; coherent illumination; coherent return signal detection; image enhancement; light attenuation; noise reduction; ocean environment; projected spatial gratings; radiative transfer modeling; spatial interferometric technique; spatially modulated illumination; spatially variant illumination; target detection optical range; target recognition; turbid water; undersea object detection; underwater lighting; Gratings; Lighting; Object detection; Oceans; Optical attenuators; Optical imaging; Optical interferometry; Optical scattering; Predictive models; Target recognition;
  • fLanguage
    English
  • Journal_Title
    Oceanic Engineering, IEEE Journal of
  • Publisher
    ieee
  • ISSN
    0364-9059
  • Type

    jour

  • DOI
    10.1109/JOE.2003.819152
  • Filename
    1255507