Methods capable of correcting for head motion in all six degrees of freedom have been proposed for PET brain imaging but not yet demonstrated in human studies. These methods rely on the accurate measurement of motion in a coordinate frame aligned with the scanner. We present methodology for the direct calibration of an optical motion tracking system to the reconstruction coordinate frame using paired coordinate measurements obtained simultaneously from a PET scanner and tracking system. We also describe the implementation of motion correction, based on the multiple acquisition frame method originally described by Picard and Thompson, using data provided by the motion tracking system. Effective compensation for multiple six degree-of-freedom...
Head motion is a major source of image artefacts in neuroimaging studies and can lead to degradation...
Head motion is a major source of image artefacts in neuroimaging studies and can lead to degradation...
Objective: Positron emission tomography (PET) scans of imaging receptors require 60–90-min dynamic a...
Abstract—Positron emission tomography (PET) is a relatively lengthy brain imaging method. Because it...
Head motion during PET scanning is widely regarded as a source of image degradation and resolution l...
In positron emission tomography (PET) rigid motion correction, erroneous tracking information transl...
In positron emission tomography (PET) rigid motion correction, erroneous tracking information transl...
Abstract: Objective. In positron emission tomography (PET) rigid motion correction, erroneous tracki...
Marker-less head motion correction methods have been well-studied, but no report has discussed poten...
Abstract — Motion correction (MC) in positron emission tomography (PET) brain imaging become of high...
PURPOSE: Head motion during PET brain imaging can cause significant degradation of image quality. Se...
<div><p>Positron Emission Tomography (PET) images are prone to motion artefacts due to the long acqu...
Positron Emission Tomography (PET) images are prone to motion artefacts due to the long acquisition ...
Positron Emission Tomography (PET) images are prone to motion artefacts due to the long acquisition ...
Head motion is a major source of image artefacts in neuroimaging studies and can lead to degradation...
Head motion is a major source of image artefacts in neuroimaging studies and can lead to degradation...
Head motion is a major source of image artefacts in neuroimaging studies and can lead to degradation...
Objective: Positron emission tomography (PET) scans of imaging receptors require 60–90-min dynamic a...
Abstract—Positron emission tomography (PET) is a relatively lengthy brain imaging method. Because it...
Head motion during PET scanning is widely regarded as a source of image degradation and resolution l...
In positron emission tomography (PET) rigid motion correction, erroneous tracking information transl...
In positron emission tomography (PET) rigid motion correction, erroneous tracking information transl...
Abstract: Objective. In positron emission tomography (PET) rigid motion correction, erroneous tracki...
Marker-less head motion correction methods have been well-studied, but no report has discussed poten...
Abstract — Motion correction (MC) in positron emission tomography (PET) brain imaging become of high...
PURPOSE: Head motion during PET brain imaging can cause significant degradation of image quality. Se...
<div><p>Positron Emission Tomography (PET) images are prone to motion artefacts due to the long acqu...
Positron Emission Tomography (PET) images are prone to motion artefacts due to the long acquisition ...
Positron Emission Tomography (PET) images are prone to motion artefacts due to the long acquisition ...
Head motion is a major source of image artefacts in neuroimaging studies and can lead to degradation...
Head motion is a major source of image artefacts in neuroimaging studies and can lead to degradation...
Head motion is a major source of image artefacts in neuroimaging studies and can lead to degradation...
Objective: Positron emission tomography (PET) scans of imaging receptors require 60–90-min dynamic a...