Benefit of Time-of-Flight in PET: Experimental and Clinical Results
Top Cited Papers
Open Access
- 20 February 2008
- journal article
- Published by Society of Nuclear Medicine in Journal of Nuclear Medicine
- Vol. 49 (3) , 462-470
- https://doi.org/10.2967/jnumed.107.044834
Abstract
Significant improvements have made it possible to add the technology of time-of-flight (TOF) to improve PET, particularly for oncology applications. The goals of this work were to investigate the benefits of TOF in experimental phantoms and to determine how these benefits translate into improved performance for patient imaging. Methods: In this study we used a fully 3-dimensional scanner with the scintillator lutetium-yttrium oxyorthosilicate and a system timing resolution of ∼600 ps. The data are acquired in list-mode and reconstructed with a maximum-likelihood expectation maximization algorithm; the system model includes the TOF kernel and corrections for attenuation, detector normalization, randoms, and scatter. The scatter correction is an extension of the model-based single-scatter simulation to include the time domain. Phantom measurements to study the benefit of TOF include 27-cm- and 35-cm-diameter distributions with spheres ranging in size from 10 to 37 mm. To assess the benefit of TOF PET for clinical imaging, patient studies are quantitatively analyzed. Results: The lesion phantom studies demonstrate the improved contrast of the smallest spheres with TOF compared with non-TOF and also confirm the faster convergence of contrast with TOF. These gains are evident from visual inspection of the images as well as a quantitative evaluation of contrast recovery of the spheres and noise in the background. The gains with TOF are higher for larger objects. These results correlate with patient studies in which lesions are seen more clearly and with higher uptake at comparable noise for TOF than with non-TOF. Conclusion: TOF leads to a better contrast-versus-noise trade-off than non-TOF but one that is difficult to quantify in terms of a simple sensitivity gain improvement: A single gain factor for TOF improvement does not include the increased rate of convergence with TOF nor does it consider that TOF may converge to a different contrast than non-TOF. The experimental phantom results agree with those of prior simulations and help explain the improved image quality with TOF for patient oncology studies.Keywords
This publication has 27 references indexed in Scilit:
- First experimental results of time-of-flight reconstruction on an LSO PET scannerPhysics in Medicine & Biology, 2005
- Time of flight in PET revisitedIEEE Transactions on Nuclear Science, 2003
- Current trends in scintillator detectors and materialsNuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment, 2002
- List-mode maximum-likelihood reconstruction applied to positron emission mammography (PEM) with irregular samplingIEEE Transactions on Medical Imaging, 2000
- Time-of-flight PETSeminars in Nuclear Medicine, 1998
- List-mode likelihood: EM algorithm and image quality estimation demonstrated on 2-D PETIEEE Transactions on Medical Imaging, 1998
- Improving the performance of the SP-3000 PET detector modulesIEEE Transactions on Nuclear Science, 1992
- Physical characteristics of TTV03, a new high spatial resolution time-of-flight positron tomographIEEE Transactions on Nuclear Science, 1990
- PETT VIJournal of Computer Assisted Tomography, 1982
- Instrumentation trends in nuclear medicineSeminars in Nuclear Medicine, 1977