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Model-based system matrix for iterative reconstruction in sub-diffuse angular-domain fluorescence optical projection tomography
Author(s) -
Veronica C. Torres,
Chengyue Li,
Jovan G. Brankov,
Kenneth M. Tichauer
Publication year - 2021
Publication title -
biomedical optics express
Language(s) - Uncategorized
Resource type - Journals
SCImago Journal Rank - 1.362
H-Index - 86
ISSN - 2156-7085
DOI - 10.1364/boe.414404
Subject(s) - iterative reconstruction , projection (relational algebra) , image quality , iterative method , optics , computer vision , monte carlo method , tomography , artificial intelligence , image resolution , computer science , matrix (chemical analysis) , diffuse optical imaging , algorithm , physics , mathematics , image (mathematics) , materials science , statistics , composite material
This work concerns a fluorescence optical projection tomography system for low scattering tissue, like lymph nodes, with angular-domain rejection of highly scattered photons. In this regime, filtered backprojection (FBP) image reconstruction has been shown to provide reasonable quality images, yet here a comparison of image quality between images obtained by FBP and iterative image reconstruction with a Monte Carlo generated system matrix, demonstrate measurable improvements with the iterative method. Through simulated and experimental phantoms, iterative algorithms consistently outperformed FBP in terms of contrast and spatial resolution. Moreover, when projection number was reduced, in order to reduce total imaging time, iterative reconstruction suppressed artifacts that hampered the performance of FBP reconstruction (structural similarity of the reconstructed images with "truth" was improved from 0.15 ± 1.2 × 10 -3 to 0.66 ± 0.02); and although the system matrix was generated for homogenous optical properties, when heterogeneity (62.98 cm -1 variance in µ s ) was introduced to simulated phantoms, the results were still comparable (structural similarity homo: 0.67 ± 0.02 vs hetero: 0.66 ± 0.02).

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