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Employing temporal self-similarity across the entire time domain in computed tomography reconstruction
Author(s) -
Daniil Kazantsev,
G. Van Eyndhoven,
William Lionheart,
Philip J. Withers,
Katherine J. Dobson,
Samuel McDonald,
Robert Atwood,
Peter Lee
Publication year - 2015
Publication title -
philosophical transactions of the royal society a mathematical physical and engineering sciences
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.074
H-Index - 169
eISSN - 1471-2962
pISSN - 1364-503X
DOI - 10.1098/rsta.2014.0389
Subject(s) - computer science , temporal resolution , image resolution , redundancy (engineering) , iterative reconstruction , artificial intelligence , computer vision , frame (networking) , pattern recognition (psychology) , telecommunications , physics , operating system , quantum mechanics
There are many cases where one needs to limit the X-ray dose, or the number of projections, or both, for high frame rate (fast) imaging. Normally, it improves temporal resolution but reduces the spatial resolution of the reconstructed data. Fortunately, the redundancy of information in the temporal domain can be employed to improve spatial resolution. In this paper, we propose a novel regularizer for iterative reconstruction of time-lapse computed tomography. The non-local penalty term is driven by the available prior information and employs all available temporal data to improve the spatial resolution of each individual time frame. A high-resolution prior image from the same or a different imaging modality is used to enhance edges which remain stationary throughout the acquisition time while dynamic features tend to be regularized spatially. Effective computational performance together with robust improvement in spatial and temporal resolution makes the proposed method a competitive tool to state-of-the-art techniques.

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