DocumentCode :
708869
Title :
Simultaneous relaxation estimation and image reconstruction in MPI
Author :
Onuker, Gamze ; Saritas, Emine Ulku
Author_Institution :
Dept. of Electr. & Electron. Eng., Bilkent Univ., Ankara, Turkey
fYear :
2015
fDate :
26-28 March 2015
Firstpage :
1
Lastpage :
1
Abstract :
Blurring of the images due to the relaxation effects of the magnetic nanoparticles is one of the important issues in Magnetic Particle Imaging (MPI)[1-4]. In x-space reconstructed images, relaxation blurs the image along the scanning direction, and deteriorates both the resolution and the signal-to-noise ratio (SNR) of the image[5]. Hence, removing the effects of relaxation without distorting the underlying image is crucial for increasing the efficiency of the MPI technique. Theoretically, relaxation is modelled as an exponential function r(t) = (1/τ)exp(-t/τ)u(t) using the first-order Debye process, where r(t) is then convolved with the adiabatic MPI signal[5]. Previous studies have looked into estimating the relaxation time constant, τ, using a calibration scan on a point source or using an MPI relaxometer setup[5]. In theory, if one can estimate the relaxation time constant, a deconvolution technique could be employed to obtain the underlying adiabatic MPI signal, which would yield an image unaffected by the relaxation blur. In this work, we propose a solution for blind estimation of τ directly from the MPI signal, without using a calibration scan and without the knowledge of the Langevin response of the nanoparticles.
Keywords :
deconvolution; image reconstruction; image resolution; magnetic particles; magnetic relaxation; medical image processing; nanomagnetics; nanomedicine; nanoparticles; noise; parameter estimation; MPI efficiency; MPI relaxometer setup; adiabatic MPI signal; blind τ estimation; calibration scan; deconvolution technique; exponential function; first-order Debye process; image SNR; image blurring; image distortion; image reconstruction; image resolution; image signal-to-noise ratio; magnetic nanoparticle relaxation effect removal; magnetic particle imaging; nanoparticle Langevin response; point source; relaxation estimation; relaxation modelling; relaxation time constant estimation; scanning direction; x-space reconstructed image; Estimation; Image reconstruction; Image resolution; Imaging; Magnetic particles; Nanoparticles; Signal to noise ratio;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Magnetic Particle Imaging (IWMPI), 2015 5th International Workshop on
Conference_Location :
Istanbul
Print_ISBN :
978-1-4799-7269-2
Type :
conf
DOI :
10.1109/IWMPI.2015.7107042
Filename :
7107042
Link To Document :
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