Publication | Closed Access
An Experimental Study of Context-Free Path Query Evaluation Methods
12
Citations
5
References
2019
Year
Unknown Venue
EngineeringRegular Path QueriesGraph DatabaseSemantic WebGraph ProcessingNatural Language ProcessingInformation RetrievalData ScienceData MiningGraph Query LanguageManagementData IntegrationGraph AnalyticsSearch TechnologyContext-free Path QueriesKnowledge DiscoveryComputer ScienceQuery AnalysisQuery OptimizationGraph TheoryExperimental StudySemantic Graph
Context-free path queries extend regular path queries for increased expressiveness. A context-free grammar is used to recognize accepted paths by their label strings, or traces. Such queries arise naturally in graph analytics, e.g., in bioinformatics applications. Currently, the practical performance of methods for context-free path query evaluation is not well understood. In this work, we study three state of the art context-free path query evaluation methods. We measure the performance of these methods on diverse query workloads on various data sets and compare their results. We showcase how these evaluation methods scale as graphs get bigger and queries become larger or more ambiguous. We conclude that state of the art solutions are not able to cope with large graphs as found in practice.
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