作者
CS Sastry, Ashish Mishra
发表日期
2009/8/23
期刊
World Academy of Science, Engineering and Technology
卷号
56
期号
145
页码范围
801-804
简介
Image retrieval is a topic where scientific interest is currently high. The important steps associated with image retrieval system are the extraction of discriminative features and a feasible similarity metric for retrieving the database images that are similar in content with the search image. Gabor filtering is a widely adopted technique for feature extraction from the texture images. The recently proposed sparsity promoting l1-norm minimization technique finds the sparsest solution of an under-determined system of linear equations. In the present paper, the l1-norm minimization technique as a similarity metric is used in image retrieval. It is demonstrated through simulation results that the l1-norm minimization technique provides a promising alternative to existing similarity metrics. In particular, the cases where the l1-norm minimization technique works better than the Euclidean distance metric are singled out.
引用总数
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学术搜索中的文章
CS Sastry, A Mishra - World Academy of Science, Engineering and …, 2009