A novel distributed privacy‐preserving control and data collection method for IoT‐centric microgrids
The privacy of electricity consumers has become one of the most critical subjects in designing smart meters and their proliferation. In this work, a multilayer architecture has been proposed for anonymous data collection from smart meters, which provides: (1) The anonymity of information for third‐p...
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Published in | IET generation, transmission & distribution Vol. 17; no. 10; pp. 2249 - 2259 |
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Main Authors | , , , |
Format | Journal Article |
Language | English |
Published |
Wiley
01.05.2023
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Abstract | The privacy of electricity consumers has become one of the most critical subjects in designing smart meters and their proliferation. In this work, a multilayer architecture has been proposed for anonymous data collection from smart meters, which provides: (1) The anonymity of information for third‐party data consumers; (2) Secure communication to utility provider network for billing purposes; (3) Online control of data sharing for end‐users; (4) Low communication costs based on available Internet of things (IoT) communication protocols. The core elements of this architecture are, first, the digital twin equivalent of the cyber‐physical system and, second, the Tangle distributed ledger network with IOTA cryptocurrency. In this architecture, digital twin models are updated in real‐time by information received from trusted nodes of the Tangle distributed network anonymously. A small‐scale laboratory prototype based on this architecture has been developed using the dSPACE SCALEXIO real‐time simulator and open‐source software tools to prove the feasibility of the proposed solution. The numerical results confirm that after a few seconds of anomaly detection, the microgrid was fully stabilized around its operating point with less than 5% deviation during the transition time.
In this paper, a multilayer architecture has been proposed for anonymous data collection from smart meters, which provides: (1) The anonymity of information for third‐party data consumers; (2) Secure communication to utility provider network for billing purposes; (3) Online control of data sharing for end‐ users; (4) Low communication costs based on available IoT communication protocols. |
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AbstractList | Abstract The privacy of electricity consumers has become one of the most critical subjects in designing smart meters and their proliferation. In this work, a multilayer architecture has been proposed for anonymous data collection from smart meters, which provides: (1) The anonymity of information for third‐party data consumers; (2) Secure communication to utility provider network for billing purposes; (3) Online control of data sharing for end‐users; (4) Low communication costs based on available Internet of things (IoT) communication protocols. The core elements of this architecture are, first, the digital twin equivalent of the cyber‐physical system and, second, the Tangle distributed ledger network with IOTA cryptocurrency. In this architecture, digital twin models are updated in real‐time by information received from trusted nodes of the Tangle distributed network anonymously. A small‐scale laboratory prototype based on this architecture has been developed using the dSPACE SCALEXIO real‐time simulator and open‐source software tools to prove the feasibility of the proposed solution. The numerical results confirm that after a few seconds of anomaly detection, the microgrid was fully stabilized around its operating point with less than 5% deviation during the transition time. The privacy of electricity consumers has become one of the most critical subjects in designing smart meters and their proliferation. In this work, a multilayer architecture has been proposed for anonymous data collection from smart meters, which provides: (1) The anonymity of information for third‐party data consumers; (2) Secure communication to utility provider network for billing purposes; (3) Online control of data sharing for end‐users; (4) Low communication costs based on available Internet of things (IoT) communication protocols. The core elements of this architecture are, first, the digital twin equivalent of the cyber‐physical system and, second, the Tangle distributed ledger network with IOTA cryptocurrency. In this architecture, digital twin models are updated in real‐time by information received from trusted nodes of the Tangle distributed network anonymously. A small‐scale laboratory prototype based on this architecture has been developed using the dSPACE SCALEXIO real‐time simulator and open‐source software tools to prove the feasibility of the proposed solution. The numerical results confirm that after a few seconds of anomaly detection, the microgrid was fully stabilized around its operating point with less than 5% deviation during the transition time. The privacy of electricity consumers has become one of the most critical subjects in designing smart meters and their proliferation. In this work, a multilayer architecture has been proposed for anonymous data collection from smart meters, which provides: (1) The anonymity of information for third‐party data consumers; (2) Secure communication to utility provider network for billing purposes; (3) Online control of data sharing for end‐users; (4) Low communication costs based on available Internet of things (IoT) communication protocols. The core elements of this architecture are, first, the digital twin equivalent of the cyber‐physical system and, second, the Tangle distributed ledger network with IOTA cryptocurrency. In this architecture, digital twin models are updated in real‐time by information received from trusted nodes of the Tangle distributed network anonymously. A small‐scale laboratory prototype based on this architecture has been developed using the dSPACE SCALEXIO real‐time simulator and open‐source software tools to prove the feasibility of the proposed solution. The numerical results confirm that after a few seconds of anomaly detection, the microgrid was fully stabilized around its operating point with less than 5% deviation during the transition time. In this paper, a multilayer architecture has been proposed for anonymous data collection from smart meters, which provides: (1) The anonymity of information for third‐party data consumers; (2) Secure communication to utility provider network for billing purposes; (3) Online control of data sharing for end‐ users; (4) Low communication costs based on available IoT communication protocols. |
Author | Mehran, Kamyar Alavi, Seyed Amir Rahimian, Ardavan Javadipour, Mehrnaz |
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References_xml | – volume: 10 start-page: 23186 year: 2022 end-page: 23197 article-title: Reliable deep learning and iot‐based monitoring system for secure computer numerical control machines against cyber‐attacks with experimental verification publication-title: IEEE Access – volume: 194 start-page: 137 year: 2022 end-page: 151 article-title: An optimal network constraint‐based joint expansion planning model for modern distribution networks with multi‐types intermittent rers publication-title: Renew. Energy – volume: 14 start-page: 1262 issue: 3 year: 2018 end-page: 1274 article-title: The internet of microgrids: A cloud‐based framework for wide area networked microgrids publication-title: IEEE Trans. Ind. Inf. – volume: 10 start-page: 282 issue: 1 year: 2019 end-page: 292 article-title: A distributed finite‐time secondary average voltage regulation and current sharing controller for DC microgrids publication-title: IEEE Trans. Smart Grid – volume: 49 start-page: 2326 issue: 11 year: 2019 end-page: 2339 article-title: Double auction with hidden user information: Application to energy transaction in microgrid publication-title: IEEE Trans. Syst. Man Cybern.: Syst. – start-page: 4145 year: 2019 end-page: 4150 article-title: Microgrid optimal state estimation over IoT wireless sensor networks with event‐based measurements – volume: 68 start-page: 347 issue: 1 year: 2021 end-page: 357 article-title: Distributionally robust chance‐constrained transactive energy framework for coupled electrical and gas microgrids publication-title: IEEE Trans. Ind. Electron. – volume: 9 start-page: 6815 issue: 6 year: 2018 end-page: 6828 article-title: Event‐based distributed active power sharing control for interconnected AC and DC microgrids publication-title: IEEE Trans. Smart Grid – volume: 16 start-page: 6857 issue: 11 year: 2020 end-page: 6867 article-title: Two‐stage robust stochastic model scheduling for transactive energy based renewable microgrids publication-title: IEEE Trans. Ind. Inf. – volume: 10 start-page: 4025 issue: 10 year: 2022 end-page: 4043 article-title: Optimal scheduling of dg and ev parking lots simultaneously with demand response based on self‐adjusted pso and k‐means clustering publication-title: Energy Sci. Eng. – volume: 8 start-page: 144362 year: 2020 end-page: 144372 article-title: Energy transaction for multi‐microgrids and internal microgrid based on blockchain publication-title: IEEE Access – volume: 2018 start-page: 1 year: 2018 end-page: 4 article-title: An IoT‐based data collection platform for situational awareness‐centric microgrids – volume: 10 start-page: 71091 year: 2022 end-page: 71106 article-title: Effective transmission congestion management via optimal dg capacity using hybrid swarm optimization for contemporary power system operations publication-title: IEEE Access – volume: 11 start-page: 4883 issue: 6 year: 2020 end-page: 4890 article-title: Agent‐based privacy preserving transactive control for managing peak power consumption publication-title: IEEE Trans. Smart Grid – volume: 35 start-page: 395 issue: 1 year: 2020 end-page: 404 article-title: A transactive energy framework for coordinated energy management of networked microgrids with distributionally robust optimization publication-title: IEEE Trans. Power Syst. – volume: 13 start-page: 2241 issue: 5 year: 2017 end-page: 2250 article-title: Multiagent‐Based Transactive Energy Framework for Distribution Systems with Smart Microgrids publication-title: IEEE Trans. Ind. Inf. – volume: 68 start-page: 4300 issue: 11 year: 2019 end-page: 4312 article-title: Design and accuracy analysis of multilevel state estimation based on smart metering infrastructure publication-title: IEEE Trans. Instrum. Meas – volume: 8 start-page: 143777 year: 2020 end-page: 143786 article-title: A blockchain‐enhanced transaction model for microgrid energy trading publication-title: IEEE Access – year: 2020 – start-page: 1 year: 2011 end-page: 7 article-title: DC microgrids in buildings and data centers – volume: 6 start-page: 35001 year: 2018 end-page: 35011 article-title: Reconstruction of signals from level‐crossing samples using implicit information publication-title: IEEE Access – volume: 8 start-page: 24 issue: 6 year: 2019 end-page: 27 article-title: DC microgrid for wind and solar power integration publication-title: Int. J. Eng. Adv. Technol. – volume: 16 start-page: 267 issue: 2 year: 2021 end-page: 281 article-title: Multilayer event‐based distributed control system for dc microgrids with non‐uniform delays and directional communication publication-title: IET Gener. Transm. Distrib. – volume: 68 start-page: 11318 issue: 11 year: 2021 end-page: 11327 article-title: Optimal observer synthesis for microgrids with adaptive send‐on‐delta sampling over IoT communication networks publication-title: IEEE Trans. Ind. Electron. – volume: 11 start-page: 184 issue: 1 year: 2020 end-page: 193 article-title: An interconnected microgrids‐based transactive energy system with multiple electric springs publication-title: IEEE Trans. Smart Grid – ident: e_1_2_12_23_1 doi: 10.1109/TIE.2020.3034853 – ident: e_1_2_12_18_1 doi: 10.1109/TII.2017.2679808 – ident: e_1_2_12_6_1 doi: 10.1109/ACCESS.2020.3012389 – ident: e_1_2_12_27_1 doi: 10.1109/INTLEC.2011.6099725 – ident: e_1_2_12_11_1 doi: 10.1109/TSG.2017.2724062 – ident: e_1_2_12_5_1 doi: 10.1109/TPWRS.2019.2933180 – ident: e_1_2_12_14_1 doi: 10.1109/ACCESS.2022.3187723 – ident: e_1_2_12_16_1 doi: 10.1109/ACCESS.2022.3153471 – ident: e_1_2_12_13_1 doi: 10.1016/j.renene.2022.05.068 – ident: e_1_2_12_12_1 doi: 10.1109/TII.2017.2785317 – ident: e_1_2_12_3_1 doi: 10.1109/TSG.2020.2997314 – ident: e_1_2_12_15_1 doi: 10.1002/ese3.1264 – ident: e_1_2_12_26_1 doi: 10.1049/gtd2.12284 – ident: e_1_2_12_21_1 doi: 10.1109/TSMC.2018.2800006 – ident: e_1_2_12_17_1 doi: 10.1109/ACCESS.2020.2968402 – ident: e_1_2_12_19_1 doi: 10.1109/ACCESS.2020.3014520 – ident: e_1_2_12_10_1 doi: 10.1109/IECON.2019.8927727 – ident: e_1_2_12_22_1 doi: 10.1109/TII.2020.2973740 – volume: 8 start-page: 24 issue: 6 year: 2019 ident: e_1_2_12_4_1 article-title: DC microgrid for wind and solar power integration publication-title: Int. 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Snippet | The privacy of electricity consumers has become one of the most critical subjects in designing smart meters and their proliferation. In this work, a multilayer... Abstract The privacy of electricity consumers has become one of the most critical subjects in designing smart meters and their proliferation. In this work, a... |
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SubjectTerms | Distributed system IOTA Microgrid Privacy Smart meter Tangle |
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Title | A novel distributed privacy‐preserving control and data collection method for IoT‐centric microgrids |
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