Back to Search Start Over

Privacy‐preserving cloud‐based billing with lightweight homomorphic encryption for sensor‐enabled smart grid infrastructure.

Authors :
Alabdulatif, Abdulatif
Kumarage, Heshan
Khalil, Ibrahim
Atiquzzaman, Mohammed
Yi, Xun
Source :
IET Wireless Sensor Systems (Wiley-Blackwell); Dec2017, Vol. 7 Issue 6, p182-190, 9p
Publication Year :
2017

Abstract

Sensors are gaining a ubiquitous status over many application domains with regard to enabling data‐driven decision making and smart functionality. Integration of sensors with cloud‐based data storage and analysis has the potential to significantly enhance the efficiencies, resilience and adaptability of managing smart infrastructure management. In this context, a standout application is smart grid, which provides an electricity delivery service with the ability to monitor, protect and optimize various operations of its connected elements from service provider to consumer. An ability to read and manage smart grid measurements remotely using wireless sensors is an important advantage that allows the grid operators to balance loads effectively and enable on‐demand services for various entities. However, the adoption of cloud infrastructure to manage sensor data in a smart grid poses significant risks to data security and consumers privacy. The data maybe exposed to malicious or unwarranted parties, with the potential for various security attacks that may impact data integrity, availability and accountability. We propose a secure and practical billing model using homomorphic encryption within a cloud‐based data processing framework. Moving billing management into the cloud securely, with on‐demand data retrieval and statistical computations is a major strength of the proposed framework. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
20436386
Volume :
7
Issue :
6
Database :
Complementary Index
Journal :
IET Wireless Sensor Systems (Wiley-Blackwell)
Publication Type :
Academic Journal
Accession number :
148456748
Full Text :
https://doi.org/10.1049/iet-wss.2017.0061