DocumentCode :
1080035
Title :
Improved Spatial Resolution in PET Scanners Using Sampling Techniques
Author :
Surti, Suleman ; Scheuermann, Ryan ; Werner, Matthew E. ; Karp, Joel S.
Author_Institution :
Dept. of Radiol., Univ. of Pennsylvania, Philadelphia, PA
Volume :
56
Issue :
3
fYear :
2009
fDate :
6/1/2009 12:00:00 AM
Firstpage :
596
Lastpage :
601
Abstract :
Increased focus towards improved detector spatial resolution in PET has led to the use of smaller crystals in some form of light sharing detector design. In this work we evaluate two sampling techniques that can be applied during calibrations for pixelated detector designs in order to improve the reconstructed spatial resolution. The inter-crystal positioning technique utilizes sub-sampling in the crystal flood map to better sample the Compton scatter events in the detector. The Compton scatter rejection technique, on the other hand, rejects those events that are located further from individual crystal centers in the flood map. We performed Monte Carlo simulations followed by measurements on two whole-body scanners for point source data. The simulations and measurements were performed for scanners using scintillators with Zeff ranging from 46.9 to 63 for LaBr3 and LYSO, respectively. Our results show that near the center of the scanner, inter-crystal positioning technique leads to a gain of about 0.5-mm in reconstructed spatial resolution (FWHM) for both scanner designs. In a small animal LYSO scanner the resolution improves from 1.9-mm to 1.6-mm with the inter-crystal technique. The Compton scatter rejection technique shows higher gains in spatial resolution but at the cost of reduction in scanner sensitivity. The inter-crystal positioning technique represents a modest acquisition software modification for an improvement in spatial resolution, but at a cost of potentially longer data correction and reconstruction times. The Compton scatter rejection technique, while also requiring a modest acquisition software change with no increased data correction and reconstruction times, will be useful in applications where the scanner sensitivity is very high and larger improvements in spatial resolution are desirable.
Keywords :
Compton effect; Monte Carlo methods; biomedical equipment; calibration; image scanners; position sensitive particle detectors; positron emission tomography; solid scintillation detectors; Compton scatter; LYSO; LaBr3; Monte Carlo simulations; acquisition software modification; calibrations; clinical PET scanners; crystal flood map; data correction; image quality; inter-crystal positioning technique; light sharing detector design; pixelated detector designs; sampling techniques; scintillators; spatial resolution; Calibration; Costs; Crystals; Detectors; Floods; Light scattering; Performance evaluation; Positron emission tomography; Sampling methods; Spatial resolution; PET; pixelated detector; positioning; sampling; spatial resolution;
fLanguage :
English
Journal_Title :
Nuclear Science, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9499
Type :
jour
DOI :
10.1109/TNS.2009.2013389
Filename :
5076098
Link To Document :
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