• DocumentCode
    2002999
  • Title

    A new deconvolution method using antidiffusion for high resolution radioisotopic imaging

  • Author

    Dornier, C. ; Pousse, A. ; Parmentier, M. ; Delaite, R. ; Kastler, B.

  • Author_Institution
    Lab. d´´Imagerie et d´´Ingenierie pour la Sante, Univ. de Franche-Comte, Besancon, France
  • Volume
    3
  • fYear
    1999
  • fDate
    1999
  • Firstpage
    1388
  • Abstract
    Radioisotopic investigations are very useful for functional diagnosis. However, visual analysis of images is lowered by blurring due to impulse response size and by their granular aspect due to low statistics. Acquired images result in the convolution between original object and detector spatial impulse response. Classical deconvolution methods used for radioisotopic image restoration fail due to bad signal to noise ratio. A new deconvolution process including two steps is designed. The first stage reduces acquired images statistical noise by applying a second order Butterworth low-pass filter. As the detector response shape may also be viewed as a 2D heat diffusion process, the deconvolution is done by running the diffusion equation into minus time. Tests were performed on physical phantom and on clinical thyroid scintigraphies acquired with IRIS (ARIES) high resolution gamma imaging probe. On physical phantom, cold spherical nodules as small as 4 mm in diameter are clearly enhanced on restored images, and diagnosis is improved
  • Keywords
    Butterworth filters; deconvolution; filtering theory; image restoration; medical image processing; radioisotope imaging; 2D heat diffusion process; antidiffusion; clinical thyroid scintigraphies; cold spherical nodules; deconvolution method; detector response shape; detector spatial impulse response; high resolution gamma imaging probe; high resolution radioisotopic imaging; image granular appearance; image restoration; physical phantom; reduced statistical noise; second-order Butterworth low-pass filter; thyroid imaging; Convolution; Deconvolution; Detectors; Image analysis; Image restoration; Imaging phantoms; Object detection; Signal to noise ratio; Spatial resolution; Statistical analysis;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Nuclear Science Symposium, 1999. Conference Record. 1999 IEEE
  • Conference_Location
    Seattle, WA
  • ISSN
    1082-3654
  • Print_ISBN
    0-7803-5696-9
  • Type

    conf

  • DOI
    10.1109/NSSMIC.1999.842814
  • Filename
    842814