Showing posts with label privacy. Show all posts
Showing posts with label privacy. Show all posts

Monday, December 2, 2019

Privacy vs. NILM: Obfuscating your Power Consumption with Load Hiding

Load-based load hiding approach
With the development and introduction of smart metering, the energy information from costumers changes from infrequent manual meter readings to fine-grained energy consumption data. On the one hand, these measurements will lead to an improvement in costumers’ energy habits, but on the other hand, the fine-grained data produces information about a household and households’ inhabitants, which give rise to privacy issues because these monitoring results disclose user behavior which could be extracted by smart algorithms and techniques. The loss of privacy by load disaggregation and data mining is a huge upcoming smart grid and social issue which enforces the need for privacy-preserving techniques, which can be divided into the following three possibilities:
  1. Anonymization of metering data: The metering data and customer identity are separated by a third-party id
  2. Privacy-preserving metering data aggregation: Metering data is geographically encapsulated by aggregating the metering data of co-located consumers 
  3. Masking and obfuscation of metering data: Masking the power demand by adding or withdrawing the to the meter visible energy demand with the help of rechargeable batteries or controllable loads.

In the paper

D. Egarter, C. Prokop, and W. Elmenreich. Load hiding of household's power demand. In Proc. IEEE International Conference on Smart Grid Communications (SmartGridComm'14), Venice, Italy, 2014.

a state-of-the-art battery-based load hiding (BLH) technique, which uses a controllable battery to disguise the power consumption and a novel load hiding technique called load-based load hiding (LLH) are presented and compared. A load-based load hiding system controls appliances in a specific way to obfuscate a household’s power demand. For example, an electric water boiler could be instrumented to consume energy in a way that masks the power consumption of smaller household devices like coffee machines or a TV. There is no comfort loss expected for the customer: Overall, the boiler will consume a typical amount of energy and produce the expected amount of hot water.
Using this approach, however, reduces the predictability of your energy consumption, which is good for privacy, but a disadvantage for grid operators.

Monday, July 14, 2014

Load Hiding of Household's Power Demand

Our publication "Load Hiding of Household's Power Demand" is accepted at the IEEE SmartGridComm 2014. The SmartGridComm 2014 will take place in Venice, a fascinating and marvelous Italian city, on November 3-6, 2014.

Load Hiding of Household's Power Demand, Dominik Egarter, Christoph Prokop, Wilfried Elmenreich

With the development and introduction of smart metering, the energy information for costumers will change from infrequent manual meter readings to fine-grained energy consumption data. On the one hand these fine-grained measurements will lead to an improvement in costumers’ energy habits, but on the other hand the fined-grained data produces in- formation about a household and also households’ inhabitants, which are the basis for many future privacy issues. To ensure household privacy and smart meter information owned by the household inhabitants, load hiding techniques were introduced to obfuscate the load demand visible at the household energy meter. In this work, a state-of-the-art battery- based load hiding (BLH) technique, which uses a controllable battery to disguise the power consumption and a novel load hiding technique called load-based load hiding (LLH) are presented. An LLH system uses an controllable household appliance to obfuscate the household’s power demand. We evaluate and compare both load hiding techniques on real household data and show that both techniques can strengthen household privacy but only LLH can increase appliance level privacy.
An authors' version is available in arXiv: http://arxiv.org/abs/1406.2534


 

Tuesday, July 8, 2014

Call for Papers 1st Workshop on Middleware for a Smarter Use of Electric Energy

CALL FOR PAPERS

MidSEE 2015

1st Workshop on Middleware for a Smarter Use of Electric Energy

in conjunction with NetSys 2015, Cottbus, Germany



MOTIVATION & WORKSHOP SCOPE

Smart energy meters are increasingly installed in newly constructed buildings worldwide, as regulated by, e.g., the European Union's Energy Services Directive. Their combination with the vision of an Internet of Things, in which billions of embedded devices will continually monitor the environment, enables the fine-grained monitoring of household and office energy usage and hence a large range of novel services. While many such functions have been devised so far (e.g., advice how to save energy or the disaggregation of electricity bills), these solutions commonly rely on the availability of hard- and software systems by a single manufacturer. Interoperability, including the potential to integrate new energy metering devices, is mostly unsupported due to the wide variety of (non-compatible) standards and communication protocols.

This workshop provides a platform to present current research activities in communications and processing of energy consumption data, with its primary focus on electric energy usage. The scope of the workshop includes contributions that address the integration of energy metering equipment from different manufacturers into a single middleware system which operates on a building level, as well as novel means to collect, process and visualize these data. Accepted papers will not only present novel research results in these domains, but also comprise an evaluation in which their merits are assessed.

Topics of interest include, but are not limited to:
  • Novel energy metering hardware designs and experiences
  • Data collection and command distribution protocols for energy  management systems
  • Middleware systems for energy data, including novel local data processing algorithms
  • Control of alternative energy sources to increase their production efficiency
  • Innovative tools to model and visualize energy expenditure and production
  • Sensing and actuation of electrical loads
  • Privacy and security in energy management middleware systems
  • User interfaces for energy display, management and control


PAPER SUBMISSION

Authors are invited to submit papers of up to 6 pages in IEEE two-column format. Submissions must be original and should not have been published previously or be under consideration for publication while being evaluated for this workshop. Accepted papers will be published in the IEEE Xplore Digital Library. More details about the ubmission process can be found on the website.


IMPORTANT DATES

Submission:   Sep. 26th, 2014
Notification: Nov. 17th, 2014
Camera Ready: Dec. 10th, 2014
Workshop:     Mar. 12th, 2015


WORKSHOP ORGANIZERS

Andreas Reinhardt, The University of New South Wales, Australia
Christian Renner, Universität zu Lübeck, Germany
Delphine Christin, University of Bonn & Fraunhofer FKIE, Germany


PROGRAM COMMITTEE

Matteo Ceriotti, University of Duisburg-Essen, Germany
Alexander De Luca, LMU München, Germany
Paul Dunphy, Newcastle University, UK
Wilfried Elmenreich, Alpen-Adria-Universität Klagenfurt, Austria
Stefan Fischer, Universität zu Lübeck, Germany
Hannes Frey, University of Koblenz-Landau, Germany
Stefan Katzenbeisser, TU Darmstadt, Germany
Marco Ortolani, University of Palermo, Italy
Oliver Parson, University of Southampton, UK
Daniele Puccinelli, SUPSI, Switzerland
Christian Steger, TU Graz, Austria
Volker Turau, TU Hamburg-Harburg, Germany
Sebastian Zöller, TU Darmstadt, Germany

Friday, September 16, 2011

The smart grid challenge


The transformation of our energy system from fossil fuel resources to sustainable resources is one of the great challenges of our time, but opens also a great chance for establishing a more efficient and robust distribution of energy to the benefit of all its users. A way to do this is the intelligent integration of the behavior of all users (generators and consumers) of an electricity grid to optimize the operation of the system, e.g., by balancing energy consumption based on availability and demand.

In order to achieve this goal, we need to define innovative products and services together with intelligent monitoring, control, communication, and self-healing technologies: Electrical devices, generators, and energy storages will be integrated with local intelligence and a network interface. These smart meters will form a network that dynamically adapts pricing and distribution based on demand, supply, and network load. The emerging network will be a self-organizing smart grid which efficiently maintains existing services, allows for prediction of future energy and network requirements.

However, the challenge is not a mere technical one. A main characteristic of the smart grid is that it will allow consumers and suppliers to play an active role in optimizing the system. While this is a very positive aspect, it leads to new challenges such as social aspects like fairness and acceptance, economic aspects such as market stability and resilience against speculation attacks, and legal issues such as warranty, data security and privacy. Last but not least, the smart grid forms a complex system of interacting agents, which will require new models similar to those from physics, biology or economics.

The goals of the smart grid are ambitious. But considering the importance of energy to our society, there is no other chance than to work on it in a global cooperative effort. There is no time to wait.