DocumentCode
1719015
Title
Comparative assessment of energy-based methods of compensating for scatter and lead X-rays in Ga-67 SPECT imaging
Author
Moore, S.C. ; El Fakhri, G. ; Maksud, P.
Author_Institution
Harvard Med. Sch., Boston, MA, USA
Volume
4
fYear
2001
fDate
6/23/1905 12:00:00 AM
Firstpage
2197
Lastpage
2198
Abstract
Two energy-based methods of compensating for scatter, high-energy contamination, and lead X-rays in Ga-67 SPECT images were optimized and compared on the basis of their performance in least-squares estimation of tumor activity uptake. The artificial neural network (ANN) and linear, general spectral (GS) correction methods developed in our group both make use of images stored in many energy windows to estimate the primary, unscattered counts attributable to each of the principal photopeaks of Ga-67 at 93, 185, and 300-keV. Projection images of an anthropomorphic phantom containing background organ uptake and spherical ´tumors´ of different size and activity in 14 possible locations typical of 72-hour Ga-67 lymphoma studies were simulated in 55 energy windows spaced irregularly in the range, 60-370 keV. Seven of the sphere data sets were used for optimizing the correction methods, while 12 Poisson noise realizations of each of the other seven sphere data sets were used for performance evaluation. The ANN method was trained to minimize the mean-squared error of corrected pixel values, while the GS method was optimized specifically for the tumor activity estimation task
Keywords
cancer; gallium; lead; least squares approximations; medical image processing; neural nets; random noise; single photon emission computed tomography; tumours; 185 keV; 300 keV; 60 to 370 keV; 72 hour; 93 keV; 67Ga SPECT imaging; Ga; Pb; Pb X-rays; Poisson noise realizations; anthropomorphic phantom; artificial neural network; comparative assessment; energy-based methods; high-energy contamination; least-squares estimation; lymphoma studies; performance evaluation; scatter compensation; single photon emission computed tomography; spectral correction methods; sphere data sets; tumor activity estimation task; tumor activity uptake; Artificial neural networks; Contamination; Electromagnetic scattering; Imaging phantoms; Lungs; Neoplasms; Optimization methods; Particle scattering; Single photon emission computed tomography; X-ray scattering;
fLanguage
English
Publisher
ieee
Conference_Titel
Nuclear Science Symposium Conference Record, 2001 IEEE
Conference_Location
San Diego, CA
ISSN
1082-3654
Print_ISBN
0-7803-7324-3
Type
conf
DOI
10.1109/NSSMIC.2001.1009260
Filename
1009260
Link To Document