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Assessment of a three-dimensional line-of-response probability density function system matrix for PET

  • Rutao Yao
  • , Ranjith M. Ramachandra
  • , Neeraj Mahajan
  • , Vinay Rathod
  • , Noel Gunasekar
  • , Ashish Panse
  • , Tianyu Ma
  • , Yiqiang Jian
  • , Jianhua Yan
  • , Richard E. Carson
  • SUNY Buffalo
  • Tsinghua University
  • Yale University

Research output: Contribution to journalArticlepeer-review

17 Scopus citations

Abstract

To achieve optimal PET image reconstruction through better system modeling, we developed a system matrix that is based on the probability density function for each line of response (LOR-PDF). The LOR-PDFs are grouped by LOR-to-detector incident angles to form a highly compact system matrix. The system matrix was implemented in the MOLAR list mode reconstruction algorithm for a small animal PET scanner. The impact of LOR-PDF on reconstructed image quality was assessed qualitatively as well as quantitatively in terms of contrast recovery coefficient (CRC) and coefficient of variance (COV), and its performance was compared with a fixed Gaussian (iso-Gaussian) line spread function. The LOR-PDFs of three coincidence signal emitting sources, (1) ideal positron emitter that emits perfect back-to-back γ rays (γγ) in air; (2) fluorine-18 ( 18F) nuclide in water; and (3) oxygen-15 ( 15O) nuclide in water, were derived, and assessed with simulated and experimental phantom data. The derived LOR-PDFs showed anisotropic and asymmetric characteristics dependent on LOR-detector angle, coincidence emitting source, and the medium, consistent with common PET physical principles. The comparison of the iso-Gaussian function and LOR-PDF showed that: (1) without positron range and acollinearity effects, the LOR-PDF achieved better or similar trade-offs of contrast recovery and noise for objects of 4mm radius or larger, and this advantage extended to smaller objects (e.g. 2mm radius sphere, 0.6mm radius hot-rods) at higher iteration numbers; and (2) with positron range and acollinearity effects, the iso-Gaussian achieved similar or better resolution recovery depending on the significance of positron range effect. We conclude that the 3D LOR-PDF approach is an effective method to generate an accurate and compact system matrix. However, when used directly in expectation-maximization based list-mode iterative reconstruction algorithms such as MOLAR, its superiority is not clear. For this application, using an iso-Gaussian function in MOLAR is a simple but effective technique for PET reconstruction.

Original languageEnglish
Pages (from-to)6827-6848
Number of pages22
JournalPhysics in Medicine and Biology
Volume57
Issue number21
DOIs
StatePublished - Nov 7 2012

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