DocumentCode :
686659
Title :
Coincidence Time Correction (CTC) method for TOF-PET scanners with correction to account for misalignment of calibration phantom
Author :
Uribe, Jorge ; McDaniel, D.L. ; Stearns, C.W.
Author_Institution :
GE Healthcare, Waukesha, WI, USA
fYear :
2013
fDate :
Oct. 27 2013-Nov. 2 2013
Firstpage :
1
Lastpage :
3
Abstract :
The Coincidence Time Correction (CTC) calibration of PET scanners is required to detect coincident events and reduce random events. CTC is usually performed using a centrally located radioactive source. High timing resolution TOF PET scanners are sensitive to deviation of the reference source from the scanner´s central line. We have developed an iterative CTC algorithm that corrects on a Line of Response (LOR) basis for shift of the reference source. CTC values are calculated in an iterative process performed on a single data set (no need for multiple acquisitions). The CTC value for every crystal is gradually adjusted at every iteration “i” by a ΔCTCi. The final CTC value is the sum of adjustments from all iterations. For faster convergence we have separated a low-frequency component of ΔCTC, due mostly to differences in cable lengths, and a high-frequency component, due to the crystal´s individual delays. This separation of components improved convergence by requiring one half of the iterations required without component separation. We showed that a shift of 20 mm of the reference source, representing up to a 130 ps timing shift, is properly corrected by the algorithm.
Keywords :
biomedical equipment; calibration; coincidence techniques; convergence of numerical methods; delays; feature extraction; iterative methods; medical image processing; phantoms; positron emission tomography; ΔCTC low-frequency component separation; CTC adjustment sum; CTC calibration; LOR basis correction; TOF-PET scanners; cable length differences; calibration phantom misalignment correction; centrally located radioactive source; coincidence time correction; coincident event detection; convergence; final CTC value; gradual crystal CTC value adjustment; high-frequency component; individual delays; iterative CTC algorithm; iterative CTC value calculation; line of response; multiple acquisitions; random event reduction; reference source deviation sensitivity; scanner central line; single data set; time 130 ps; timing resolution; timing shift; Calibration; Convergence; Crystals; Detectors; Phantoms; Positron emission tomography; Timing;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Nuclear Science Symposium and Medical Imaging Conference (NSS/MIC), 2013 IEEE
Conference_Location :
Seoul
Print_ISBN :
978-1-4799-0533-1
Type :
conf
DOI :
10.1109/NSSMIC.2013.6829088
Filename :
6829088
Link To Document :
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