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Enabling signal processing over data streams

Abstract:
Internet of Things applications analyze the data coming from large networks of sensor devices using relational and signal processing operations and running the same query logic over groups of sensor signals. To support such increasingly important scenarios, many data management systems integrate with numerical frameworks like R. Such solutions, however, incur significant performance penalties as relational data processing engines and numerical tools operate on fundamentally different data models with expensive intercommunication mechanisms. In addition, none of these solutions supports efficient real-time and incremental analysis. In this paper, we advocate a deep integration of signal processing operations and general-purpose query processors. We aim to reconcile the disparate data models and provide a common query language that allows users to seamlessly interleave tempo-relational and signal operations for both online and offline processing. Our approach is extensible and offers frameworks for quick and easy integration of user-defined operations while supporting incremental computation. Our system that deeply integrates relational and signal operations, called TRILLDSP, achieves up to two orders of magnitude better performance than popular loosely-coupled data management systems on grouped signal processing workflows.
Publication status:
Published
Peer review status:
Peer reviewed

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Publisher copy:
10.1145/3035918.3035935

Authors

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Institution:
University of Oxford
Division:
MPLS
Department:
Computer Science
Role:
Author


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Funding agency for:
Nikolic, M
Grant:
279804


Publisher:
Association for Computing Machinery
Host title:
SIGMOD '17 Proceedings of the 2017 ACM International Conference on Management of Data
Pages:
95-108
Publication date:
2017-05-14
Acceptance date:
2017-03-02
DOI:
ISSN:
0730-8078
ISBN:
9781450341974


Pubs id:
pubs:683805
UUID:
uuid:80e5729d-398d-4ead-800d-721720ad3c73
Local pid:
pubs:683805
Source identifiers:
683805
Deposit date:
2017-03-02
ARK identifier:

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