Publication | Closed Access
Off the Beaten Path
23
Citations
70
References
2016
Year
Unknown Venue
EngineeringSemantic SearchSemantic WebRetrieval PipelinesCorpus LinguisticsText MiningNatural Language ProcessingInformation RetrievalData ScienceLiterary CriticismData MiningEffective Retrieval PipelinesComputational LinguisticsQuery ExpansionComparative AnalysisKnowledge DiscoveryTerminology ExtractionComputer ScienceKeyword SearchBeaten PathHumanitiesRetrieval PipelineArtsSimilarity Search
Retrieval pipelines commonly rely on a term-based search to obtain candidate records, which are subsequently re-ranked. Some candidates are missed by this approach, e.g., due to a vocabulary mismatch. We address this issue by replacing the term-based search with a generic k-NN retrieval algorithm, where a similarity function can take into account subtle term associations. While an exact brute-force k-NN search using this similarity function is slow, we demonstrate that an approximate algorithm can be nearly two orders of magnitude faster at the expense of only a small loss in accuracy. A retrieval pipeline using an approximate k-NN search can be more effective and efficient than the term-based pipeline. This opens up new possibilities for designing effective retrieval pipelines. Our software (including data-generating code) and derivative data based on the Stack Overflow collection is available online.
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