Super-Resolution Reconstruction in Frequency-Domain Optical-Coherence Tomography Using the Finite-Rate-of-Innovation Principle
Data(s) |
2014
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Resumo |
The standard approach to signal reconstruction in frequency-domain optical-coherence tomography (FDOCT) is to apply the inverse Fourier transform to the measurements. This technique offers limited resolution (due to Heisenberg's uncertainty principle). We propose a new super-resolution reconstruction method based on a parametric representation. We consider multilayer specimens, wherein each layer has a constant refractive index and show that the backscattered signal from such a specimen fits accurately in to the framework of finite-rate-of-innovation (FRI) signal model and is represented by a finite number of free parameters. We deploy the high-resolution Prony method and show that high-quality, super-resolved reconstruction is possible with fewer measurements (about one-fourth of the number required for the standard Fourier technique). To further improve robustness to noise in practical scenarios, we take advantage of an iterated singular-value decomposition algorithm (Cadzow denoiser). We present results of Monte Carlo analyses, and assess statistical efficiency of the reconstruction techniques by comparing their performance against the Cramer-Rao bound. Reconstruction results on experimental data obtained from technical as well as biological specimens show a distinct improvement in resolution and signal-to-reconstruction noise offered by the proposed method in comparison with the standard approach. |
Formato |
application/pdf |
Identificador |
http://eprints.iisc.ernet.in/50010/1/ieee_tra_sig_pro_62_19_5020_2014.pdf Seelamantula, Chandra Sekhar and Mulleti, Satish (2014) Super-Resolution Reconstruction in Frequency-Domain Optical-Coherence Tomography Using the Finite-Rate-of-Innovation Principle. In: IEEE TRANSACTIONS ON SIGNAL PROCESSING, 62 (19). pp. 5020-5029. |
Relação |
http://dx.doi.org/ 10.1109/TSP.2014.2340811 http://eprints.iisc.ernet.in/50010/ |
Palavras-Chave | #Electrical Engineering |
Tipo |
Journal Article PeerReviewed |