Title :
Analysis of optimal CT spectrum for PET attenuation correction
Author :
Xue Rui ; Yong Long ; Asma, Evren ; Alessio, Arcangelo ; Kinahan, Paul ; De Man, Bruno
Author_Institution :
CT Syst. & Applic. Lab., GE Global Res. Center, Niskayuna, NY, USA
fDate :
Oct. 27 2013-Nov. 2 2013
Abstract :
One advantage of a combined PET/CT scanner is that a fast CT acquisition provides a high quality attenuation correction map for PET reconstruction. A diagnostic CT system typically operates in a voltage range from 80 kVp to 140 kVp. The choice of optimal spectrum depends on the specific application. In diagnostic imaging, contrast, noise and dose all play important roles. The designated CT scan for PET attenuation correction has different image quality requirements compared to diagnostic CT. For example, at 511 keV, the contrast between different materials reduces significantly and there is typically no interest in distinguishing small contrast variations. On the other hand, it is important that the error on the attenuation map is small, and especially bias in the CT attenuation correction (CTAC) map could introduce significant artifacts in PET images which may affect clinical diagnosis. We are interested in operating the CT scanner at the lowest possible dose while still providing accurate attenuation correction. However, at these very low dose levels, the effects of electronic noise can become significant. In the study presented here, we analyzed the impacts of the X-ray tube voltage, current and filtration by metal filter on the quality of the CTAC by evaluating noise variance and bias at various dose levels.
Keywords :
X-ray tubes; image denoising; image reconstruction; image resolution; medical image processing; positron emission tomography; CT attenuation correction map; PET attenuation correction; PET reconstruction; X-ray tube voltage; clinical diagnosis; combined PET-CT scanner; diagnostic computerised tomography system; diagnostic contrast; diagnostic dose; diagnostic imaging; diagnostic noise; dose levels; electronic noise; fast computerised tomography acquisition; filtration; high quality attenuation correction map; image quality requirements; metal filter; noise variance; optimal computerised tomography spectrum analysis; Attenuation; Computed tomography; Materials; Noise; Noise measurement; Photonics; Positron emission tomography;
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.2013.6829122