DocumentCode
138374
Title
Combined heat and privacy: Preventing occupancy detection from smart meters
Author
Dong Chen ; Irwin, David ; Shenoy, Prashant ; Albrecht, John
Author_Institution
Univ. of Massachusetts Amherst, Amherst, MA, USA
fYear
2014
fDate
24-28 March 2014
Firstpage
208
Lastpage
215
Abstract
Electric utilities are rapidly deploying smart meters that record and transmit electricity usage in real-time. As prior research shows, smart meter data indirectly leaks sensitive, and potentially valuable, information about a home´s activities. An important example of the sensitive information smart meters reveal is occupancy-whether or not someone is home and when. As prior work also shows, occupancy is surprisingly easy to detect, since it highly correlates with simple statistical metrics, such as power´s mean, variance, and range. Unfortunately, prior research that uses chemical energy storage, e.g., batteries, to prevent appliance power signature detection is prohibitively expensive when applied to occupancy detection. To address this problem, we propose preventing occupancy detection using the thermal energy storage of large elastic heating loads already present in many homes, such as electric water and space heaters. In essence, our approach, which we call Combined Heat and Privacy (CHPr), controls the power usage of these large loads to make it look like someone is always home. We design a CHPr-enabled water heater that regulates its energy usage to mask occupancy without violating its objective, e.g., to provide hot water on demand, and evaluate it in simulation and using a prototype. Our results show that a 50-gallon CHPr-enabled water heater decreases the Matthews Correlation Coefficient (a standard measure of a binary classifier´s performance) of a threshold-based occupancy detection attack in a representative home by 10x (from 0.44 to 0.045), effectively preventing occupancy detection at no extra cost.
Keywords
chemical energy conversion; electric heating; real-time systems; secondary cells; smart meters; thermal energy storage; CHPr; Matthews correlation coefficient; appliance power signature detection; batteries; binary classifier performance; chemical energy storage; combined heat and privacy; elastic heating loads; electric utility; electric water; electricity usage; occupancy detection; power usage control; real-time; representative home; smart meters; space heaters; statistical metrics; thermal energy storage; Batteries; Cogeneration; Electricity; Resistance heating; Space heating; Water heating;
fLanguage
English
Publisher
ieee
Conference_Titel
Pervasive Computing and Communications (PerCom), 2014 IEEE International Conference on
Conference_Location
Budapest
Type
conf
DOI
10.1109/PerCom.2014.6813962
Filename
6813962
Link To Document