Published April 2021 | Version v1
Journal article

Impact of aperture-thickness on the real-time imaging characteristics of coded-aperture gamma cameras

  • 1. Jeju National University, Jeju (Korea, Republic of)
  • 2. University of Michigan-Ann Arbor, Arbor (United States)

Description

The mask parameters of a coded aperture are critical design features when optimizing the performance of a gamma-ray camera. In this paper, experiments and Monte Carlo simulations were performed to derive the minimum detectable activity (MDA) when one seeks a real-time imaging capability. First, the impact of the thickness of the modified uniformly redundant array (MURA) mask on the image quality is quantified, and the imaging of point, line, and surface radiation sources is demonstrated using both cross-correlation (CC) and maximum likelihood expectation maximization (MLEM) methods. Second, the minimum detectable activity is also derived for real-time imaging by altering the factors used in the image quality assessment, consisting of the peak-to-noise ratio (PSNR), the normalized mean square error (NMSE), the spatial resolution (full width at half maximum; FWHM), and the structural similarity (SSIM), all evaluated as a function of energy and mask thickness. Sufficiently sharp images were reconstructed when the mask thickness was approximately 2 cm for a source energy between 30 keV and 1.5 MeV and the minimum detectable activity for real-time imaging was 23.7 MBq at 1 m distance for a 1 s collection time

Additional details

Publishing Information

Journal Title
Nuclear Engineering and Technology
Journal Volume
53
Journal Issue
4
Series
17 refs, 15 figs, 2 tabs
Journal Page Range
p. 1266-1276
ISSN
1738-5733