Image Retrieval by Edge Features Using Higher Order Autocorrelation in a SOM Environment(Image Processing, Image Pattern Recognition)
スポンサーリンク
概要
- 論文の詳細を見る
This paper proposes a technique for indexing, clustering and retrieving images based on their edge features. In this technique, images are decomposed into several frequency bands using the Haar wavelet transform. From the one-level decomposition sub-bands an edge image is formed. Next, the higher order auto-correlation function is applied on the edge image to extract the edge features. These higher order autocorrelation features are normalized to generate a compact feature vector, which is invariant to shift, image size. We used direction cosine as measure of distance not to be influenced by difference of each image's luminance. Then, these feature vectors are clustered by a self-organizing map (SOM) based on their edge feature similarity. The performed experiments show higher precision and recall of this technique than traditional ways in clustering and retrieving images in a large image database environment.
- 社団法人電子情報通信学会の論文
- 2003-08-01
著者
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Makinouchi Akifumi
Graduate School of Information Science and Electrical Engineering, Department of Intelligent Systems
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Aghbari Zaher
Graduate School Of Information Science And Electrical Engineering Department Of Intelligent Systems
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Aghbari Zaher
Graduate School Of Information Science And Electrical Engineering Department Of Intelligent System K
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Makinouchi Akifumi
Graduate School Of Information Science And Electrical Engineering Department Of Intelligent System K
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Makinouchi Akifumi
Graduate School Of Information Science And E.e. Kyushu University
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KUBO Masaaki
Graduate School of Information Science and Electrical Engineering, Department of Intelligent System,
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OH Kun
Department of Digital Media, Division of Information Technology, Kwangju Helth College
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Oh Kun
Department Of Digital Media Division Of Information Technology Kwangju Helth College
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Kubo Masaaki
Graduate School Of Information Science And Electrical Engineering Department Of Intelligent System K
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AGHBARI Zaher
Graduate School of Information Science and E.E., Kyushu University
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