Title :
Impact of out-of-field activity in MLAA estimation of lung attenuation for PET/MR
Author :
Berker, Yannick ; Salomon, Andre F. ; Kiessling, F. ; Schulz, V.
Author_Institution :
Dept. of Phys. of Mol. Imaging Syst., RWTH Aachen Univ., Aachen, Germany
fDate :
Oct. 27 2013-Nov. 2 2013
Abstract :
Attenuation correction of Positron Emission Tomography (PET) data using segmented Magnetic Resonance (MR) images is a promising approach to compensating for the lack of a transmission source in PET/MR and solving the problem of attenuation correction. However, the method is prone to errors in the choice of patient-individual lung attenuation coefficients (LAC), which are challenging to determine from MR data. Maximum-Likelihood reconstruction of Attenuation and Activity (MLAA) can be applied to reconstruct attenuation maps from PET emission data. We previously presented a constrained MLAA variant using segmentation of the lungs and tissue classification of the rest of the body to estimate mean LACs. In Monte-Carlo simulations restricted to the axial PET field of view (FOV), the mean LAC was found to be estimated with errors as low as five percent. In whole-body simulations, additional bias was observed and confirmed to be caused by uncorrected out-of-field (OOF) accidental coincidences. We have quantified the respective impact of uncorrected OOF scattered and OOF random coincidences. In this work, we discuss the prerequisites for clinical application of the proposed approach and propose potential improvements.
Keywords :
Monte Carlo methods; biomedical MRI; image reconstruction; image segmentation; lung; maximum likelihood estimation; medical image processing; positron emission tomography; FOV; LAC; MLAA estimation; Monte-Carlo simulations; OOF accidental coincidences; OOF random coincidences; OOF scattered coincidences; PET emission data; PET-MR images; axial PET field-of-view; clinical application; magnetic resonance image segmentation; maximum-likelihood reconstruction-of-attenuation-and-activity; out-of-field accidental coincidences; out-of-field activity; patient-individual lung attenuation coefficients; positron emission tomography; transmission source; whole-body simulations; Attenuation; Computed tomography; Estimation; Image reconstruction; Lungs; Positron emission tomography; Attenuation Correction; Lung Attenuation; MLAA; PET/MR; Whole-body PET;
Conference_Titel :
Nuclear Science Symposium and Medical Imaging Conference (NSS/MIC), 2013 IEEE
Conference_Location :
Seoul
Print_ISBN :
978-1-4799-0533-1
DOI :
10.1109/NSSMIC.2013.6829225