DocumentCode :
3273441
Title :
Arbitrary factor image interpolation by convolution kernel constrained 2-D autoregressive modeling
Author :
Ketan Tang ; Au, Oscar C. ; Yuanfang Guo ; Jiahao Pang ; Jiali Li ; Lu Fang
Author_Institution :
Hong Kong Univ. of Sci. & Technol., Hong Kong, China
fYear :
2013
fDate :
15-18 Sept. 2013
Firstpage :
996
Lastpage :
1000
Abstract :
Among existing interpolation methods, convolution-based methods are able to perform arbitrary factor interpolation but the results are usually blurry or jaggy, adaptive interpolation methods usually can reduce the blurry and jaggy artifacts but cannot handle arbitrary factor interpolation. In this paper we propose an arbitrary factor adaptive interpolation algorithm by combining 2-D piecewise autoregressive (PAR) modeling and convolution kernel constraint. PAR model ensures local geometries are well preserved thus the resultant image is not blurry or jaggy. Convolution kernel constraint ensures the recovered high resolution image consistent with the low resolution image, and also provides the flexibility to handle arbitrary interpolation factor. Experiment results show that our algorithm achieves state-of-the-art performance for any interpolation factor.
Keywords :
autoregressive processes; convolution; image resolution; interpolation; 2D piecewise autoregressive modeling; PAR modeling; adaptive interpolation methods; arbitrary factor adaptive interpolation algorithm; arbitrary factor image interpolation; arbitrary factor interpolation; arbitrary interpolation factor; convolution kernel constrained 2D autoregressive modeling; convolution kernel constraint; high resolution image recovery; local geometries; low resolution image; Adaptation models; Convolution; Gain; Image edge detection; Interpolation; Kernel; PSNR; arbitrary factor; autoregressive model; interpolation;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Image Processing (ICIP), 2013 20th IEEE International Conference on
Conference_Location :
Melbourne, VIC
Type :
conf
DOI :
10.1109/ICIP.2013.6738206
Filename :
6738206
Link To Document :
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