DocumentCode
1349274
Title
A new reconstruction approach for reflection mode diffraction tomography
Author
Anastasio, Mark A. ; Pan, Xiaochuan
Author_Institution
Dept. of Radiol., Chicago Univ., IL, USA
Volume
9
Issue
7
fYear
2000
fDate
7/1/2000 12:00:00 AM
Firstpage
1262
Lastpage
1271
Abstract
Reflection mode diffraction tomography (RM DT) is an inversion scheme used to reconstruct the acoustical refractive index distribution of a scattering object. In this work, we reveal the existence of statistically complementary information inherent in the backscattered data and propose reconstruction algorithms that exploit this information for achieving a bias-free reduction of image variance in RM DT images. Such a reduction of image variance can potentially enhance the detectability of subtle image features when the signal-to-noise ratio of the measured scattered data is low in RM DT. The proposed reconstruction algorithms are mathematically identical, but they propagate noise and numerical errors differently. We investigate theoretically, and validate numerically, the noise properties of images reconstructed using one of the reconstruction algorithms for several different multifrequency sources and uncorrelated data noise
Keywords
acoustic tomography; acoustic wave scattering; feature extraction; image recognition; image reconstruction; inverse problems; refractive index; RM DT; acoustical refractive index distribution; backscattered data; bias-free reduction; image features; image variance; inversion scheme; multifrequency sources; reconstruction approach; reflection mode diffraction tomography; scattering object; signal-to-noise ratio; statistically complementary information; uncorrelated data noise; Acoustic diffraction; Acoustic reflection; Acoustic scattering; Image reconstruction; Noise measurement; Noise reduction; Reconstruction algorithms; Refractive index; Signal to noise ratio; Tomography;
fLanguage
English
Journal_Title
Image Processing, IEEE Transactions on
Publisher
ieee
ISSN
1057-7149
Type
jour
DOI
10.1109/83.847838
Filename
847838
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