Publication | Closed Access
Approximate reverse k-nearest neighbor queries in general metric spaces
13
Citations
3
References
2006
Year
Unknown Venue
EngineeringMachine LearningGeneral Metric SpacesComputational ComplexityRange SearchingInformation RetrievalData ScienceData MiningPattern RecognitionSearch SpaceIntelligent SearchingHigh RecallCombinatorial OptimizationKnowledge DiscoveryComputer ScienceDimensionality ReductionArbitrary Metric SpacesSearch TechniqueSimilarity Search
In this paper, we propose an approach for efficient approximative RkNN search in arbitrary metric spaces where the value of k is specified at query time. Our method uses an approximation of the nearest-neighbor-distances in order to prune the search space. In several experiments, our solution scales significantly better than existing non-approximative approaches while producing an approximation of the true query result with a high recall.
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