Publication | Closed Access
Modeling LSH for performance tuning
140
Citations
20
References
2008
Year
Unknown Venue
EngineeringMachine LearningSimilarity MeasureInformation RetrievalData ScienceData MiningPattern RecognitionPerformance TuningModeling And SimulationLocality-sensitive HashingPerceptual HashingPerformance PredictionKnowledge DiscoveryComputer EngineeringHash FunctionComputer ScienceBig Data SearchSearch QualityAuto-tuningProcess ControlBusinessSimilarity Search
Although Locality-Sensitive Hashing (LSH) is a promising approach to similarity search in high-dimensional spaces, it has not been considered practical partly because its search quality is sensitive to several parameters that are quite data dependent. Previous research on LSH, though obtained interesting asymptotic results, provides little guidance on how these parameters should be chosen, and tuning parameters for a given dataset remains a tedious process.
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