Publication | Closed Access
Efficient query refinement for image retrieval
94
Citations
11
References
2002
Year
Unknown Venue
Machine VisionInformation RetrievalData ScienceImage AnalysisImage RetrievalPattern RecognitionMachine LearningPowerful Image RepresentationsMultiple Image FeaturesImage FeatureImage DatabaseComputer ScienceEngineeringContent-based Image RetrievalImage SearchEfficient Query RefinementComputer VisionMultimedia Search
Although powerful image representations have been proposed for content-based image retrieval, most of the current systems are "rigid", i.e. they retrieve a fixed set of images as response to a given query and an image feature. In this paper, our goal is to introduce tools for making image retrieval systems more flexible. More precisely, we use multiple image features, and present in details a new relevance feedback technique that integrates the positive and negative examples provided by the user. Experimental results on various large databases show that the proposed technique is more performant than the standard relevance feedback approach.
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