DocumentCode :
1445174
Title :
Mesh Simplification Based on Edge Collapsing Could Improve Computational Efficiency in Near Infrared Optical Tomographic Imaging
Author :
Thomas, Dilip Mathew ; Yalavarthy, Phaneendra K. ; Karkala, Deepak ; Natarajan, Vijay
Author_Institution :
Dept. of Comput. Sci. & Autom., Indian Inst. of Sci., Bangalore, India
Volume :
18
Issue :
4
fYear :
2012
Firstpage :
1493
Lastpage :
1501
Abstract :
The diffusion equation-based modeling of near infrared light propagation in tissue is achieved by using finite-element mesh for imaging real-tissue types, such as breast and brain. The finite-element mesh size (number of nodes) dictates the parameter space in the optical tomographic imaging. Most commonly used finite-element meshing algorithms do not provide the flexibility of distinct nodal spacing in different regions of imaging domain to take the sensitivity of the problem into consideration. This study aims to present a computationally efficient mesh simplification method that can be used as a preprocessing step to iterative image reconstruction, where the finite-element mesh is simplified by using an edge collapsing algorithm to reduce the parameter space at regions where the sensitivity of the problem is relatively low. It is shown, using simulations and experimental phantom data for simple meshes/domains, that a significant reduction in parameter space could be achieved without compromising on the reconstructed image quality. The maximum errors observed by using the simplified meshes were less than 0.27% in the forward problem and 5% for inverse problem.
Keywords :
biological tissues; biomedical optical imaging; brain; finite element analysis; image reconstruction; infrared imaging; medical image processing; optical tomography; phantoms; biological tissue; brain; breast; diffusion equation-based modeling; edge collapsing algorithm; efficient mesh simplification method; finite element mesh size; finite element meshing algorithm; image reconstruction; mesh simplification; near infrared light propagation; near infrared optical tomographic imaging; phantom data; real-tissue type; reconstructed image quality; Image reconstruction; Mathematical model; Optical imaging; Optical scattering; Optical sensors; Sensitivity; 3-D imaging; Diffuse optical tomography; image reconstruction; mesh simplification; near infrared imaging;
fLanguage :
English
Journal_Title :
Selected Topics in Quantum Electronics, IEEE Journal of
Publisher :
ieee
ISSN :
1077-260X
Type :
jour
DOI :
10.1109/JSTQE.2012.2187276
Filename :
6150998
Link To Document :
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