DocumentCode :
694805
Title :
An Improved Super-Resolution Reconstruction Algorithm Based on Regularization
Author :
Shuang Wang ; Bingliang Hu ; Xiaokun Dong ; Xingtao Yan
Author_Institution :
Xi´an Inst. of Opt. & Precision Mech. of CAS, Xian, China
fYear :
2013
fDate :
7-8 Dec. 2013
Firstpage :
716
Lastpage :
721
Abstract :
The traditional regularized super-resolution (SR) algorithms can reconstruct the high-resolution (HR) image to some extent. But the high frequency information of the image will lose seriously and the edges and details will become blurred. This paper presents an improved regularized SR algorithm. Firstly, a new interpolation algorithm is used to obtain the initial value of the HR image. Secondly, the trilateral filter is adopted as the regularization term to preserve the edge and details. Finally, the steepest descent method is taken as the iterative algorithm to gain the optimum solution. Simulated experiments are presented including the comparison with some existing reconstruction algorithms. Those results show that the proposed algorithm performs better than others. Furthermore, the edges and details of the image are well preserved.
Keywords :
filtering theory; gradient methods; image reconstruction; image resolution; interpolation; HR image; detail preservation; edge preservation; high-resolution image reconstruction; interpolation algorithm; iterative algorithm; regularization term; regularized SR algorithm; steepest descent method; super-resolution reconstruction algorithm; trilateral filter; Equations; Filtering algorithms; Image edge detection; Image reconstruction; Interpolation; Mathematical model; Signal processing algorithms; steepest descent method; super-resolution reconstruction trilateral filter;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Information Science and Cloud Computing Companion (ISCC-C), 2013 International Conference on
Conference_Location :
Guangzhou
Type :
conf
DOI :
10.1109/ISCC-C.2013.44
Filename :
6973676
Link To Document :
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