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Batch matching of conjunctive triple patterns over linked data streams in the internet of things

Research output: Chapter in Book or Conference Publication/ProceedingConference Publicationpeer-review

Abstract

The Internet of Things (IoT) envisions smart objects collecting and sharing data at a global scale via the Internet. One challenging issue is how to disseminate data to relevant consumers efficiently. This paper leverages semantic technologies, such as Linked Data, which can facilitate machineto-machine (M2M) communications to build an efficient information dissemination system for semantic IoT. The system integrates Linked Data streams generated from various data collectors and disseminates matched data to relevant data consumers based on conjunctive triple pattern queries registered in the system by the consumers. We also design a new data structure, CTP-automata, to meet the high performance needs of Linked Data dissemination. We evaluate our system using a real-world dataset generated from a Smart Building Project. With CTP-automata, the proposed system can disseminate Linked Data at a speed of an order of magnitude faster than the existing approach with thousands of registered conjunctive queries.
Original languageEnglish (Ireland)
Title of host publication27th International Conference on Scientific and Statistical Database Management (SSDBM 2015)
Publication statusPublished - 1 Jan 2015

Authors (Note for portal: view the doc link for the full list of authors)

  • Authors
  • Qin, Yongrui;Sheng, Quan Z.;Falkner, Nickolas J. G.;Shemshadi, Ali;Curry, Edward

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