Title :
Update on HE vs UHE collimation for focal total-activity quantification in I-131 SPECT using 3D OSEM
Author :
Koral, Kenneth F. ; Yendiki, Anastasia ; Lin, Victor ; Dewaraja, Yuni K. ; Fessler, Jeffrey A.
Author_Institution :
Dept. of Radiol., Michigan Univ., Ann Arbor, MI, USA
Abstract :
We calibrated a scintillation camera for the counts-to-activity conversion factor, CF, by measuring a phantom consisting of a sphere containing a known 131-I activity placed within an elliptical cylinder. Within a 3D OSEM reconstruction algorithm, we employed a depth-dependent detector-response model based on smooth fits to the point-source-response function. Using the ultra-high-energy (UHE) collimator and 100 iterations, the recovery coefficient, RC, appeared to be 1 for any sphere volume down to 20 cm3. The CF changed only a small amount as the background-over-target activity concentration ratio, b, increased for both UHE and high-energy (HE) collimation. Tests of activity quantification were carried out with an anthropomorphic phantom simulating a 100 cm3 spherical tumor centrally located inferior to the lungs. With 3D OSEM reconstruction, using the global-average CF and no RC-based correction, mean bias in the simulated-tumor activity estimate over 20 realizations was -7.4% with UHE collimation, and -9.4% with HE collimation. For comparison, with 1D SAGE reconstruction, using the CF corresponding to the experimental estimate of b and RC-based correction, the mean bias was worse, -10.7% for UHE collimation, but better, -4.3 %, for HE collimation.
Keywords :
calibration; collimators; image reconstruction; lung; phantoms; scintillation counters; single photon emission computed tomography; tumours; 1D SAGE reconstruction; 3D OSEM reconstruction algorithm; HE collimation; I; I-131 SPECT; RC-based correction; UHE collimation; anthropomorphic phantom; background-over-target activity concentration ratio; calibration; counts-to-activity conversion factor; depth-dependent detector-response model; elliptical cylinder; focal total-activity quantification; high-energy collimation; lungs; point-source-response function; recovery coefficient; scintillation camera; simulated-tumor activity; spherical tumor; ultrahigh-energy collimator; Calibration; Cameras; Collimators; Helium; High-resolution imaging; Image reconstruction; Imaging phantoms; Optical imaging; Radiology; Testing;
Conference_Titel :
Nuclear Science Symposium Conference Record, 2003 IEEE
Print_ISBN :
0-7803-8257-9
DOI :
10.1109/NSSMIC.2003.1352492