DocumentCode
30864
Title
High-Resolution Mesoscopic Fluorescence Molecular Tomography Based on Compressive Sensing
Author
Fugang Yang ; Ozturk, M.S. ; Lingling Zhao ; Wenxiang Cong ; Ge Wang ; Intes, X.
Author_Institution
Shandong Inst. of Bus. & Technol., Yantai, China
Volume
62
Issue
1
fYear
2015
fDate
Jan. 2015
Firstpage
248
Lastpage
255
Abstract
Mesoscopic fluorescence molecular tomography (MFMT) is new imaging modality aiming at 3-D imaging of molecular probes in a few millimeter thick biological samples with high-spatial resolution. In this paper, we develop a compressive sensing-based reconstruction method with l1-norm regularization for MFMT with the goal of improving spatial resolution and stability of the optical inverse problem. Three-dimensional numerical simulations of anatomically accurate microvasculature and real data obtained from phantom experiments are employed to evaluate the merits of the proposed method. Experimental results show that the proposed method can achieve 80 μm spatial resolution for a biological sample of 3 mm thickness and more accurate quantifications of concentrations and locations for the fluorophore distribution than those of the conventional methods.
Keywords
biochemistry; biomedical optical imaging; blood vessels; compressed sensing; dyes; feature extraction; fluorescence; image reconstruction; image resolution; inverse problems; medical image processing; optical tomography; phantoms; spectrochemical analysis; 3D molecular probe imaging; MFMT; anatomically accurate microvasculature; biological sample thickness; compressive sensing-based reconstruction; fluorophore concentration quantification; fluorophore distribution location quantification; high-resolution mesoscopic fluorescence molecular tomography; imaging modality; l1-norm regularization; optical inverse problem; phantom experiment data; size 3 mm; spatial resolution; spatial stability; three-dimensional numerical simulation; Biomedical measurement; Biomedical optical imaging; Detectors; Image reconstruction; Jacobian matrices; Optical imaging; Bioprinting; Monte Carlo (MC); compressive sensing (CS); fluorescence imaging; image reconstruction; l1-norm regularization; laminar optical tomography (LOT); mesoscopic fluorescence molecular tomography (MFMT); molecular imaging;
fLanguage
English
Journal_Title
Biomedical Engineering, IEEE Transactions on
Publisher
ieee
ISSN
0018-9294
Type
jour
DOI
10.1109/TBME.2014.2347284
Filename
6879329
Link To Document