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Optimal Task Allocation and Coding Design for Secure Coded Edge Computing

  • Chunming Cao
  • , Jin Wang*
  • , Jianping Wang
  • , Kejie Lu
  • , Jingya Zhou
  • , Admela Jukan
  • , Wei Zhao
  • *Corresponding author for this work

Research output: Chapters, Conference Papers, Creative and Literary WorksRGC 32 - Refereed conference paper (with host publication)peer-review

Abstract

In recent years, edge computing has attracted increasing attention for its capability of facilitating delay-sensitive applications. In the implementation of edge computing, however, data confidentiality has been raised as a major concern because edge devices may be untrustable. In this paper, we propose a design of secure and efficient edge computing by linear coding. In general, linear coding can achieve data confidentiality by adding random information to the original data before they are distributed to edge devices. To this end, it is important to carefully design code such that the user can successfully decode the final result while achieving security requirements. Meanwhile, task allocation, which selects a set of edge devices to participate in a computation task, affects not only the total resource consumption, including computation, storage, and communication, but also coding design. In this paper, we study task allocation and coding design, two highly-coupled problems in secure coded edge computing, in a unified framework. In particular, we take matrix multiplication, a fundamental building block of many distributed machine learning algorithms, as the representative computation task, and study optimal task allocation and coding design to minimize resource consumption while achieving information-theoretic security. ©2019 IEEE.
Original languageEnglish
Title of host publication2019 39th IEEE International Conference on Distributed Computing Systems ICDCS 2019
Subtitle of host publicationProceedings
PublisherIEEE
Pages1083-1093
ISBN (Electronic)978-1-7281-2519-0
ISBN (Print)978-1-7281-2520-6
DOIs
Publication statusPublished - 2019
Event39th IEEE International Conference on Distributed Computing Systems (ICDCS 2019) - Richardson, United States
Duration: 7 Jul 20199 Jul 2019
https://theory.utdallas.edu/ICDCS2019/index.html

Publication series

NameInternational Conference on Distributed Computing Systems Proceedings
PublisherIEEE
ISSN (Print)1063-6927
ISSN (Electronic)2575-8411

Conference

Conference39th IEEE International Conference on Distributed Computing Systems (ICDCS 2019)
Abbreviated titleICDCS 2019
PlaceUnited States
CityRichardson
Period7/07/199/07/19
Internet address

Research Keywords

  • Edge computing
  • Linear coding
  • Resource consumption
  • Security
  • Task allocation

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