Positron range in PET imaging: an alternative approach for assessing and correcting the blurring
Creators
- 1. Department of Nuclear Medicine, Aalborg University Hospital (Denmark)
- 2. Laboratoire Modélisation, Simulation et Systèmes, DRT/LIST/DCSI/LM2S, CEA Saclay, Gif-sur-Yvette (France)
- 3. Laboratoire de Physique Moléculaire et des Collisions, Université Paul Verlaine-Metz (France)
Description
Positron range impairs resolution in PET imaging, especially for high-energy emitters and for small-animal PET. De-blurring in image reconstruction is possible if the blurring distribution is known. Furthermore, the percentage of annihilation events within a given distance from the point of positron emission is relevant for assessing statistical noise. This paper aims to determine the positron range distribution relevant for blurring for seven medically relevant PET isotopes, 18F, 11C, 13N, 15O, 68Ga, 62Cu and 82Rb, and derive empirical formulas for the distributions. This paper focuses on allowed-decay isotopes. It is argued that blurring at the detection level should not be described by the positron range r, but instead the 2D projected distance δ (equal to the closest distance between decay and line of response). To determine these 2D distributions, results from a dedicated positron track-structure Monte Carlo code, Electron and POsitron TRANsport (EPOTRAN), were used. Materials other than water were studied with PENELOPE. The radial cumulative probability distribution G2D(δ) and the radial probability density distribution g2D(δ) were determined. G2D(δ) could be approximated by the empirical function 1 – exp(–Aδ2 – Bδ), where A = 0.0266 (Emean)−1.716 and B = 0.1119 (Emean)−1.934, with Emean being the mean positron energy in MeV and δ in mm. The radial density distribution g2D(δ) could be approximated by differentiation of G2D(δ). Distributions in other media were very similar to water. The positron range is important for improved resolution in PET imaging. Relevant distributions for the positron range have been derived for seven isotopes. Distributions for other allowed-decay isotopes may be estimated with the above formulas. (paper)
Availability note (English)
Available from http://dx.doi.org/10.1088/0031-9155/57/12/3931Additional details
Identifiers
Publishing Information
- Journal Title
- Physics in Medicine and Biology
- Journal Volume
- 57
- Journal Issue
- 12
- Journal Page Range
- p. 3931-3943
- ISSN
- 0031-9155
- CODEN
- PHMBA7
INIS
- Country of Publication
- United Kingdom
- Country of Input or Organization
- International Atomic Energy Agency (IAEA)
- INIS RN
- 43114658
- Subject category
- S07: ISOTOPES AND RADIATION SOURCES; S62: RADIOLOGY AND NUCLEAR MEDICINE;
- Descriptors DEI
- ANIMALS; CARBON 11; COPPER 62; DETECTION; DISTRIBUTION; FLUORINE 18; GALLIUM 68; IMAGE PROCESSING; MONTE CARLO METHOD; NITROGEN 13; OXYGEN 15; POSITRONS; PROBABILITY; RUBIDIUM 82
- Descriptors DEC
- ANTILEPTONS; ANTIMATTER; ANTIPARTICLES; BETA DECAY RADIOISOTOPES; BETA-PLUS DECAY RADIOISOTOPES; CALCULATION METHODS; CARBON ISOTOPES; COPPER ISOTOPES; ELECTRON CAPTURE RADIOISOTOPES; ELEMENTARY PARTICLES; EVEN-ODD NUCLEI; FERMIONS; FLUORINE ISOTOPES; GALLIUM ISOTOPES; HOURS LIVING RADIOISOTOPES; INTERMEDIATE MASS NUCLEI; ISOMERIC TRANSITION ISOTOPES; ISOTOPES; LEPTONS; LIGHT NUCLEI; MATTER; MINUTES LIVING RADIOISOTOPES; NANOSECONDS LIVING RADIOISOTOPES; NITROGEN ISOTOPES; NUCLEI; ODD-EVEN NUCLEI; ODD-ODD NUCLEI; OXYGEN ISOTOPES; PROCESSING; RADIOISOTOPES; RUBIDIUM ISOTOPES