DocumentCode :
3340805
Title :
Incorporating count-rate dependence into model-based PET scatter estimation
Author :
Stearns, Charles W. ; Manjeshwar, Ravindra M.
Author_Institution :
PET Syst. Eng., GE Healthcare, Waukesha, WI, USA
fYear :
2011
fDate :
23-29 Oct. 2011
Firstpage :
3745
Lastpage :
3747
Abstract :
Pile-up in a PET detector changes the sensitivity of the detector to unscattered and scattered annihilation photons differently. If the detection of a 511 keV photon is confounded by the arrival of a second photon during signal integration, it may be lost by failing the upper energy threshold, so its detection probability decreases as activity increases. If, however, the first photon is a scattered photon of energy less than the lower energy threshold, pile-up may lead to an energy signal that lies within the energy window; detection probability for this photon increases as activity increases. As a result, the measured scatter fraction will increase as activity increases in a PET scanner. This effect is readily observed in the NEMA NU 2-2007 Scatter Fraction and Count Losses test as an increase in measured scatter fraction, and a broadening of the scatter tails, as activity in the phantom increases. We incorporate this phenomenon into the model-based scatter estimate through a function, parameterized by a measurement of the detectors busy time, which modifies the detection probability matrix for the scattered and unscattered photons in the model. The function was determined by Monte Carlo simulation of the pileup performance of the block, and is therefore a function of the block configuration, the scintillator decay time and the signal integration time in the detector electronics, and the energy window used in the acquisition. The function is fit by a polynomial from 170 to 511 keV, the possible energy range for a single scattered annihilation photon. The resulting scatter model demonstrates a count rate dependence that better matches the scatter tails from the NEMA count rate experiment, and improves the quality of the scatter correction in certain high count rate patient studies.
Keywords :
Monte Carlo methods; nuclear electronics; phantoms; positron emission tomography; probability; scintillation counters; Monte Carlo simulation; NEMA count rate experiment; PET scanner; count-rate dependence; detection probability matrix; detector electronics; electron volt energy 170 keV to 511 keV; model-based PET scatter estimation; phantom; scatter correction; scintillator decay time; signal integration time; single scattered annihilation photon;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Nuclear Science Symposium and Medical Imaging Conference (NSS/MIC), 2011 IEEE
Conference_Location :
Valencia
ISSN :
1082-3654
Print_ISBN :
978-1-4673-0118-3
Type :
conf
DOI :
10.1109/NSSMIC.2011.6153708
Filename :
6153708
Link To Document :
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