Title :
Magnetic particle imaging: Model and reconstruction
Author :
Schomberg, Hermann
Author_Institution :
Philips Res. Eur., Hamburg, Germany
Abstract :
Magnetic Particle Imaging is an emerging reconstructive imaging method that can create images of the spatial distribution of magnetizable nanoparticles in an object. A magnetic particle image is reconstructed by solving a discrete approximation to a linear integral equation that models the data acquisition. So far, an explicit formula for the kernel of this integral equation has been missing, forcing one to determine the matrix of the linear equation to be solved by time consuming measurements. Also, this matrix is huge and dense so that the reconstruction times tend to be long. Here, we present an explicit formula for the kernel of the modeling integral operator, transform this operator into a spatial convolution operator, and point out fast reconstruction algorithms that make use of Nonuniform Fast Fourier Transforms.
Keywords :
biomagnetism; data acquisition; fast Fourier transforms; image reconstruction; integral equations; magnetic particles; medical image processing; nanobiotechnology; nanoparticles; data acquisition; linear integral equation; magnetic particle imaging; magnetizable nanoparticle spatial distribution; modeling integral operator kernel; nonuniform fast Fourier transform; reconstructive imaging method; spatial convolution operator; Convolution; Data acquisition; Fast Fourier transforms; Image reconstruction; Integral equations; Kernel; Linear approximation; Magnetic particles; Nanoparticles; Time measurement; Magnetic Particle Imaging; Nonuniform Fast Fourier Transform; convolution operator;
Conference_Titel :
Biomedical Imaging: From Nano to Macro, 2010 IEEE International Symposium on
Conference_Location :
Rotterdam
Print_ISBN :
978-1-4244-4125-9
Electronic_ISBN :
1945-7928
DOI :
10.1109/ISBI.2010.5490155