Title of article :
Uncertainty Analysis in the Calibration of an Emission Tomography System for Quantitative Imaging
Author/Authors :
D’Arienzo, Marco National Institute of Ionizing Radiation Metrology - Via Anguillarese - Rome, Italy , Cox, Maurice National Physical Laboratory - Hampton Road - Teddington, UK
Abstract :
It is generally acknowledged that calibration of the imaging system (be it a SPECT or a PET scanner) is one of the critical components
associated with in vivo activity quantification in nuclear medicine. The system calibration is generally performed through the
acquisition of a source with a known amount of radioactivity. The decay-corrected calibration factor is the “output” quantity in a
measurement model for the process.This quantity is a function of a number of “input” variables, including total counts in the volume
of interest (VOI), radionuclide activity concentration, source volume, acquisition duration, radionuclide half-life, and calibration
time of the radionuclide. Uncertainties in the input variables propagate through the calculation to the “combined” uncertainty in
the output quantity. In the present study, using the general formula given in the GUM (Guide to the Expression of Uncertainty in
Measurement) for aggregating uncertainty components, we derive a practical relation to assess the combined standard uncertainty
for the calibration factor of an emission tomography system. At a time of increasing need for accuracy in quantification studies, the
proposed approach has the potential to be easily implemented in clinical practice.
Keywords :
Tomography , SPECT , System , GUM
Journal title :
Computational and Mathematical Methods in Medicine