Medical Image Analysis
Volume 15, Issue 4 , Pages 603-621, August 2011

Multiple q-shell diffusion propagator imaging

  • Maxime Descoteaux

      Affiliations

    • MOIVRE Center, Université de Sherbrooke, 2500 Boul. Université, J1K 2R1, Sherbrooke, Canada
    • Corresponding Author InformationCorresponding author. Tel.: +1 819 821 8000x66129; fax: +1 819 821 8200.
  • ,
  • Rachid Deriche

      Affiliations

    • Athena Project Team, INRIA Sophia Antipolis - Méditerranée, 2004 route des Lucioles, 06902, France
  • ,
  • Denis Le Bihan

      Affiliations

    • NeuroSpin, IFR 49 CEA Saclay, Bat. 145, PC 156, 91191, Gif-sur-Yvette, France
  • ,
  • Jean-François Mangin

      Affiliations

    • NeuroSpin, IFR 49 CEA Saclay, Bat. 145, PC 156, 91191, Gif-sur-Yvette, France
  • ,
  • Cyril Poupon

      Affiliations

    • NeuroSpin, IFR 49 CEA Saclay, Bat. 145, PC 156, 91191, Gif-sur-Yvette, France

published online 15 July 2010.

Abstract 

Many recent high angular resolution diffusion imaging (HARDI) reconstruction techniques have been introduced to infer an orientation distribution function (ODF) of the underlying tissue structure. These methods are more often based on a single-shell (one b-value) acquisition and can only recover angular structure information contained in the ensemble average propagator (EAP) describing the three-dimensional (3D) average diffusion process of water molecules. The EAP can thus provide richer information about complex tissue microstructure properties than the ODF by also considering the radial part of the diffusion signal. In this paper, we present a novel technique for analytical EAP reconstruction from multiple q-shell acquisitions. The solution is based on a Laplace equation by part estimation between the diffusion signal for each shell acquisition. This simplifies greatly the Fourier integral relating diffusion signal and EAP, which leads to an analytical, linear and compact EAP reconstruction. An important part of the paper is dedicated to validate the diffusion signal estimation and EAP reconstruction on real datasets from ex vivo phantoms. We also illustrate multiple q-shell diffusion propagator imaging (mq-DPI) on a real in vivo human brain and perform a qualitative comparison against state-of-the-art diffusion spectrum imaging (DSI) on the same subject. mq-DPI is shown to reconstruct robust EAP from only several different b-value shells and less diffusion measurements than DSI. This opens interesting perspectives for new q-space sampling schemes and tissue microstructure investigation.

Keywords: Ensemble average propagator, q-Space, Diffusion spectrum imaging, High angular resolution diffusion imaging, Laplace’s equation

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 A preliminary version of this paper appears in the proceedings of the Information Processing in Medical Imaging (IPMI) conference, Virginia, USA, Lecture Notes in Computer Science (LNCS) 5636, Pages 1–13, July 2009.

PII: S1361-8415(10)00093-9

doi:10.1016/j.media.2010.07.001

Medical Image Analysis
Volume 15, Issue 4 , Pages 603-621, August 2011