Visual Investigation Using Circular Partitioning of Abstract Images

Abdolah Chalechale, Golshah A. Naghdy, Alfred Mertins · 2003

Abstract. This paper presents a novel approach for sketch-based image retrieval based on low-level features. The approach enables measuring the similarity between a full color image and a simple black and white sketched query and needs no cost intensive image segmentation. The proposed method can cope with images containing several complex objects in an inhomogeneous background. Two abstract images are obtained using strong edges of the model image and thinned images is used to extract new compact and effective features. The extracted features are scale and rotation invariant and tolerate small translations. The major contribution of the paper is in rotation invariance property of the proposed approach. A collection of paintings and sketches (ART BANK) is used for testing the proposed method. The results are compared with three other well-known approaches within the literature. Experimental results show signi£cant improvement in the Recall ratio using the proposed features. 1

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