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Visual word spatial arrangement for image retrieval and classification
Affiliation:1. RECOD Lab, Institute of Computing (IC), University of Campinas (Unicamp) – Av. Albert Einstein, 1251, Campinas 13083-852, SP, Brazil;2. Department of Computer Engineering and Industrial Automation (DCA), School of Electrical and Computer Engineering (FEEC), University of Campinas (Unicamp) – Av. Albert Einstein, 400, Campinas 13083-852, SP, Brazil;3. Paris-Est University, IGN/SR, MATIS Lab, 73 avenue de Paris, 94160 Saint-Mandé, France;4. CNAM, CEDRIC Lab, 292 rue Saint-Martin, 75141 Paris Cedex 03, France;1. Department of Electrical and Computer Engineering, Duke University, USA;2. Instituto de Ingeniería Eléctrica, Facultad de Ingeniería, Universidad de la República, Uruguay;3. CNRS - LTCI UMR5141, Telecom ParisTech, France;4. Departamento de Computación, Facultad de Ciencias Exactas y Naturales, Universidad de Buenos Aires, Argentina;1. University of Bristol, Bristol, UK;2. University of Bath, Bath, UK
Abstract:We present word spatial arrangement (WSA), an approach to represent the spatial arrangement of visual words under the bag-of-visual-words model. It lies in a simple idea which encodes the relative position of visual words by splitting the image space into quadrants using each detected point as origin. WSA generates compact feature vectors and is flexible for being used for image retrieval and classification, for working with hard or soft assignment, requiring no pre/post processing for spatial verification. Experiments in the retrieval scenario show the superiority of WSA in relation to Spatial Pyramids. Experiments in the classification scenario show a reasonable compromise between those methods, with Spatial Pyramids generating larger feature vectors, while WSA provides adequate performance with much more compact features. As WSA encodes only the spatial information of visual words and not their frequency of occurrence, the results indicate the importance of such information for visual categorization.
Keywords:Visual words  Spatial arrangement  Image retrieval  Image classification
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