DocumentCode :
35389
Title :
Collimator Design for a Brain SPECT/MRI Insert
Author :
Salvado, Debora ; Erlandsson, Kjell ; Bousse, Alexandre ; Occhipinti, Michele ; Busca, Paolo ; Fiorini, Carlo ; Hutton, Brian F.
Author_Institution :
Inst. of Nucl. Med., Univ. Coll. London, London, UK
Volume :
62
Issue :
4
fYear :
2015
fDate :
Aug. 2015
Firstpage :
1716
Lastpage :
1724
Abstract :
This project´s goal is to design a SPECT insert for a clinical MRI system for simultaneous brain SPECT/MR imaging, with a high-sensitivity collimator and high-resolution detectors. We have compared eight collimator designs, four multi-pinhole and four multi-slit slit-slat configurations. The collimation was designed for a system with 2 rings of 25 5 × 5 cm detectors. We introduce the concept of 1/2-pinhole and 1/2-slit, which are transaxially shared between two adjacent detectors. Analytical geometric efficiency was calculated for an activity distribution corresponding to a human brain and a range of intrinsic detector resolutions Ri and target resolutions Rt at the centre of the FOV. Noise-free data were simulated with and without depth-of-interaction (DOI) information, 0.8 mm Ri and 10 mm Rt FWHM, and reconstructed for uniform, Defrise, Derenzo, and Zubal brain phantoms. Comparing the multi-pinhole and multi-slit slit-slat collimators, the former gives better reconstructed uniformity and transaxial resolution, while the latter gives better axial resolution. Although the 2 ×2-pinhole and 2-slit designs give the highest sensitivities, they result in a sub-optimal utilisation of the detector FOV. The best options are therefore the 5+ 2 1/2-pinhole and the 1 + 2 1/2-slit systems, with sensitivities of 1.8 ×10-4 and 3.2 ×10-4, respectively. Noiseless brain phantom reconstructions with the multi-pinhole collimator are slightly superior as compared to slit-slat, in terms of symmetry and accuracy of the activity distribution, but the same is not true when noise is included. DOI information reduces artefacts and improves uniformity in geometric phantoms. Further evaluation is needed with prototype collimators.
Keywords :
biomedical MRI; biomedical equipment; brain; collimators; image reconstruction; image resolution; medical image processing; phantoms; single photon emission computed tomography; Defrise brain phantoms; Derenzo brain phantoms; FWHM; Zubal brain phantoms; activity distribution; analytical geometric efficiency; axial resolution; brain SPECT-MRI insert; clinical MRI system; collimator design; depth-of-interaction information; detector FOV; geometric phantoms; high-resolution detectors; high-sensitivity collimator; human brain; intrinsic detector resolutions; multipinhole collimators; multislit slit-slat collimators; noise-free data; noiseless brain phantom reconstructions; single photon emission computed tomography; target resolutions; transaxial resolution; Collimators; Detectors; Image reconstruction; Magnetic resonance imaging; Phantoms; Single photon emission computed tomography; Collimator design; SPECT insert; multi-modality; pinhole; slit-slat; stationary system;
fLanguage :
English
Journal_Title :
Nuclear Science, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9499
Type :
jour
DOI :
10.1109/TNS.2015.2450017
Filename :
7181734
Link To Document :
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