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作者:

Qi, Na (Qi, Na.) | Shi, Yunhui (Shi, Yunhui.) (学者:施云惠) | Sun, Xiaoyan (Sun, Xiaoyan.) | Wang, Jingdong (Wang, Jingdong.) | Ding, Wenpeng (Ding, Wenpeng.)

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摘要:

An analysis sparse model represents an image signal by multiplying it using an analysis dictionary, leading to a sparse outcome. It transforms an image (two dimensional signal) into a one-dimensional (1D) vector. However, this 1D model ignores the two dimensional property and breaks the local spatial correlation inside images. In this paper, we propose a two dimensional (2D) analysis sparse model. Our 2D model uses two analysis dictionaries to efficiently exploit the horizontal and vertical features simultaneously. The corresponding sparse coding and dictionary learning algorithm are also presented in this paper. The 2D sparse model is further evaluated for image denoising. Experimental results demonstrate our 2D analysis sparse model outperforms a state-of-the-art 1D analysis model in terms of both denoising ability and memory usage. © 2013 IEEE.

关键词:

Image analysis Image denoising Learning algorithms

作者机构:

  • [ 1 ] [Qi, Na]Beijing Key Laboratory of Multimedia and Intelligent Software Technology, Beijing University of Technology, Beijing, China
  • [ 2 ] [Shi, Yunhui]Beijing Key Laboratory of Multimedia and Intelligent Software Technology, Beijing University of Technology, Beijing, China
  • [ 3 ] [Sun, Xiaoyan]Microsoft Research Asia, Beijing, China
  • [ 4 ] [Wang, Jingdong]Microsoft Research Asia, Beijing, China
  • [ 5 ] [Ding, Wenpeng]Beijing Key Laboratory of Multimedia and Intelligent Software Technology, Beijing University of Technology, Beijing, China

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年份: 2013

页码: 310-314

语种: 英文

被引次数:

WoS核心集被引频次: 0

SCOPUS被引频次: 10

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