Title :
Fast Acquisition and Reconstruction of Optical Coherence Tomography Images via Sparse Representation
Author :
Leyuan Fang ; Shutao Li ; McNabb, Ryan P. ; Qing Nie ; Kuo, Anthony N. ; Toth, Cynthia A. ; Izatt, Joseph A. ; Farsiu, Sina
Author_Institution :
Coll. of Electr. & Inf. Eng., Hunan Univ., Changsha, China
Abstract :
In this paper, we present a novel technique, based on compressive sensing principles, for reconstruction and enhancement of multi-dimensional image data. Our method is a major improvement and generalization of the multi-scale sparsity based tomographic denoising (MSBTD) algorithm we recently introduced for reducing speckle noise. Our new technique exhibits several advantages over MSBTD, including its capability to simultaneously reduce noise and interpolate missing data. Unlike MSBTD, our new method does not require an a priori high-quality image from the target imaging subject and thus offers the potential to shorten clinical imaging sessions. This novel image restoration method, which we termed sparsity based simultaneous denoising and interpolation (SBSDI), utilizes sparse representation dictionaries constructed from previously collected datasets. We tested the SBSDI algorithm on retinal spectral domain optical coherence tomography images captured in the clinic. Experiments showed that the SBSDI algorithm qualitatively and quantitatively outperforms other state-of-the-art methods.
Keywords :
biomedical optical imaging; eye; image denoising; image enhancement; image reconstruction; image representation; interpolation; medical image processing; optical tomography; MSBTD; SBSDI; compressive sensing; fast image acquisition; image enhancement; image reconstruction; image restoration; interpolation; multidimensional image data; multiscale sparsity based tomographic denoising algorithm; noise reduction; optical coherence tomography images; retinal spectral domain OCT; sparse representation; sparse representation dictionaries; sparsity based simultaneous denoising-and-interpolation; Dictionaries; Image reconstruction; Image resolution; Interpolation; Noise reduction; Tomography; Training; Fast retina scanning; image enhancement; optical coherence tomography; simultaneous denoising and interpolation; sparse representation; Algorithms; Animals; Humans; Image Processing, Computer-Assisted; Macular Degeneration; Mice; Optic Nerve; Retina; Tomography, Optical Coherence;
Journal_Title :
Medical Imaging, IEEE Transactions on
DOI :
10.1109/TMI.2013.2271904