• DocumentCode
    56694
  • Title

    Model-Based Optoacoustic Image Reconstruction of Large Three-Dimensional Tomographic Datasets Acquired With an Array of Directional Detectors

  • Author

    Araque Caballero, Miguel Angel ; Gateau, Jerome ; Dean-Ben, Xose-Luis ; Ntziachristos, Vasilis

  • Author_Institution
    Inst. for Biol. & Med. Imaging (IBMI, Tech. Univ. of Munich & Helmholtz Center Munich, Neuherberg, Germany
  • Volume
    33
  • Issue
    2
  • fYear
    2014
  • fDate
    Feb. 2014
  • Firstpage
    433
  • Lastpage
    443
  • Abstract
    Image quality in 3-D optoacoustic (photoacoustic) tomography is greatly influenced by both the measurement system, in particular the number and spatial arrangement of ultrasound sensors, and the ability to account for the spatio-temporal response of the sensor element(s) in the reconstruction algorithm. Herein we present a reconstruction procedure based on the inversion of a time-domain forward model incorporating the spatial impulse response due to the shape of the transducer, which is subsequently applied in a tomographic system based on a translation-rotation scan of a linear detector array. The proposed method was also adapted to cope with the data-intensive requirements of high-resolution volumetric optoacoustic imaging. The processing of 2 · 10 4 individual signals resulted in well-resolved images of both ~ 200 μm absorbers in phantoms and complex vascular structures in biological tissue. The results reported herein demonstrate that the introduced model-based methodology exhibits a better contrast and resolution than standard back-projection and model-based algorithms that assume point detectors. Moreover, the capability of handling large datasets anticipates that model-based methods incorporating the sensor properties can become standard practice in volumetric opto acoustic image formation.
  • Keywords
    acoustic tomography; biomedical optical imaging; biomedical transducers; biomedical ultrasonics; blood vessels; computerised tomography; image reconstruction; image resolution; inverse problems; medical image processing; optical tomography; phantoms; spatiotemporal phenomena; time-domain analysis; ultrasonic imaging; ultrasonic transducers; 3D optoacoustic tomography; 3D photoacoustic tomography; biological tissue; complex vascular structures; data-intensive requirements; directional detector array; high-resolution volumetric optoacoustic imaging; image contrast; image quality; image resolution; individual signal processing; large three-dimensional tomographic datasets acquisition; linear detector array; measurement system; model-based algorithms; model-based methodology; model-based optoacoustic image reconstruction; phantoms; point detectors; reconstruction algorithm; sensor elements; spatial arrangement; spatial impulse response; spatio-temporal response; standard back-projection; time-domain forward model; tomographic system; transducer; translation-rotation scan; ultrasound sensors; volumetric optoacoustic image formation; well-resolved images; Arrays; Computational modeling; Detectors; Geometry; Reflection; Sensor phenomena and characterization; Computed tomography; inverse problems; opto acoustic; spatial impulse response;
  • fLanguage
    English
  • Journal_Title
    Medical Imaging, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0278-0062
  • Type

    jour

  • DOI
    10.1109/TMI.2013.2286546
  • Filename
    6636031