Title :
An interior point iterative maximum-likelihood reconstruction algorithm incorporating upper and lower bounds with application to SPECT transmission imaging
Author :
Narayanan, Manoj V. ; Byrne, Charles L. ; King, Michael A.
Author_Institution :
Div. of Nucl. Med., Massachusetts Univ. Med. Center, Worcester, MA, USA
fDate :
4/1/2001 12:00:00 AM
Abstract :
The algorithm we consider here is a block-iterative (or ordered subset) version of the inferior point algorithm for transmission reconstruction. Our algorithm is an interior point method because each vector of the iterative sequence {x k}, k= 0, 1, 2,..., satisfies the constraints a j j k j, j=1,..., J. Because it is a block-iterative algorithm that reconstructs the transmission attenuation map and places constraints above and below the pixel values of the reconstructed image, we call it the BITAB method. Computer simulations using the three-dimensional mathematical cardiac and torso phantom, reveal that the BITAB algorithm in conjunction with reasonably selected prior upper and lower bounds has the potential to improve the accuracy of the reconstructed attenuation coefficients from truncated fan beam transmission projections. By suitably selecting the bounds, it is possible to restrict the over estimation of coefficients outside the fully sampled region. that results from reconstructing truncated fan beam projections with iterative transmission algorithms such as the maximum-likelihood gradient type algorithm.
Keywords :
cardiology; image reconstruction; iterative methods; maximum likelihood sequence estimation; medical image processing; single photon emission computed tomography; BITAB algorithm; BITAB method; SPECT transmission imaging; block-iterative algorithm; block-iterative version; computer simulations; interior point iterative maximum-likelihood reconstruction algorithm; interior point method; iterative sequence; iterative transmission algorithms; lower bounds; maximum-likelihood gradient type algorithm; ordered subset version; pixel values; reconstructed attenuation coefficients; reconstructed image; three-dimensional mathematical cardiac phantom; torso phantom; transmission attenuation map; transmission reconstruction; truncated fan beam transmission projections; upper bounds; Attenuation; Computer simulation; Image reconstruction; Imaging phantoms; Iterative algorithms; Iterative methods; Maximum likelihood estimation; Pixel; Reconstruction algorithms; Torso; Algorithms; Computer Simulation; Female; Heart; Humans; Image Processing, Computer-Assisted; Likelihood Functions; Phantoms, Imaging; Thorax; Tomography, Emission-Computed, Single-Photon;
Journal_Title :
Medical Imaging, IEEE Transactions on