Algorithms for image saliency via sparse representation and multi-scale inputs image retargeting
Saliency detection is an important yet challenging task in computer vision. In this report we investigate the use of sparse coding over redundant dictionary for saliency detection. We attempt to present a small fraction of the growing knowledge regarding sparse representation over redundant dictiona...
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sg-ntu-dr.10356-505832023-03-04T00:48:24Z Algorithms for image saliency via sparse representation and multi-scale inputs image retargeting Hoang, Minh Chau Deepu Rajan School of Computer Engineering DRNTU::Engineering::Computer science and engineering::Computing methodologies::Image processing and computer vision Saliency detection is an important yet challenging task in computer vision. In this report we investigate the use of sparse coding over redundant dictionary for saliency detection. We attempt to present a small fraction of the growing knowledge regarding sparse representation over redundant dictionary and discuss some potential usage of this powerful tool for saliency detection task. We propose a new algorithm for saliency detection based on the likelihood that images patch can be encoded sparsely using a dictionary learned from other patches. Experimental results based on saliency ground of truth of 1000 real images shows a superior performance of the renew algorithm in comparison with other existing saliency algorithms. MASTER OF ENGINEERING (SCE) 2012-07-10T03:38:30Z 2012-07-10T03:38:30Z 2011 2011 Thesis Hoang, M. C. (2011). Algorithms for image saliency via sparse representation and multi-scale inputs image retargeting.Master’s thesis, Nanyang Technological University, Singapore. https://hdl.handle.net/10356/50583 10.32657/10356/50583 en 86 p. application/pdf |
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DRNTU::Engineering::Computer science and engineering::Computing methodologies::Image processing and computer vision Hoang, Minh Chau Algorithms for image saliency via sparse representation and multi-scale inputs image retargeting |
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Saliency detection is an important yet challenging task in computer vision. In this report we investigate the use of sparse coding over redundant dictionary for saliency detection. We attempt to present a small fraction of the growing knowledge regarding sparse representation over redundant dictionary and discuss some potential usage of this powerful tool for saliency detection task. We propose a new algorithm for saliency detection based on the likelihood that images patch can be encoded sparsely using a dictionary learned from other patches. Experimental results based on saliency ground of truth of 1000 real images shows a superior performance of the renew algorithm in comparison with other existing saliency algorithms. |
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Deepu Rajan |
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Deepu Rajan Hoang, Minh Chau |
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Theses and Dissertations |
author |
Hoang, Minh Chau |
author_sort |
Hoang, Minh Chau |
title |
Algorithms for image saliency via sparse representation and multi-scale inputs image retargeting |
title_short |
Algorithms for image saliency via sparse representation and multi-scale inputs image retargeting |
title_full |
Algorithms for image saliency via sparse representation and multi-scale inputs image retargeting |
title_fullStr |
Algorithms for image saliency via sparse representation and multi-scale inputs image retargeting |
title_full_unstemmed |
Algorithms for image saliency via sparse representation and multi-scale inputs image retargeting |
title_sort |
algorithms for image saliency via sparse representation and multi-scale inputs image retargeting |
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2012 |
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https://hdl.handle.net/10356/50583 |
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1759856070362136576 |