PPSF: A Privacy-Preserving and Secure Framework Using Blockchain-Based Machine-Learning for IoT-Driven Smart Cities
With the evolution of the Internet of Things (IoT), smart cities have become the mainstream of urbanization. IoT networks allow distributed smart devices to collect and process data within smart city infrastructure using an open channel, the Internet. Thus, challenges such as centralization, securit...
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Published in: | IEEE transactions on network science and engineering Vol. 8; no. 3; pp. 2326 - 2341 |
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Main Authors: | , , , , , , |
Format: | Journal Article |
Language: | English |
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01-07-2021
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Abstract | With the evolution of the Internet of Things (IoT), smart cities have become the mainstream of urbanization. IoT networks allow distributed smart devices to collect and process data within smart city infrastructure using an open channel, the Internet. Thus, challenges such as centralization, security, privacy (e.g., performing data poisoning and inference attacks), transparency, scalability, and verifiability limits faster adaptations of smart cities. Motivated by the aforementioned discussions, we present a Privacy-Preserving and Secure Framework (PPSF) for IoT-driven smart cities. The proposed PPSF is based on two key mechanisms: a two-level privacy scheme and an intrusion detection scheme. First, in a two-level privacy scheme, a blockchain module is designed to securely transmit the IoT data and Principal Component Analysis (PCA) technique is applied to transform raw IoT information into a new shape. In the intrusion detection scheme, a Gradient Boosting Anomaly Detector (GBAD) is applied for training and evaluating the proposed two-level privacy scheme based on two IoT network datasets, namely ToN-IoT and BoT-IoT. We also suggest a blockchain-InterPlanetary File System (IPFS) integrated Fog-Cloud architecture to deploy the proposed PPSF framework. Experimental results demonstrate the superiority of the PPSF framework over some recent approaches in blockchain and non-blockchain systems. |
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AbstractList | With the evolution of the Internet of Things (IoT), smart cities have become the mainstream of urbanization. IoT networks allow distributed smart devices to collect and process data within smart city infrastructure using an open channel, the Internet. Thus, challenges such as centralization, security, privacy (e.g., performing data poisoning and inference attacks), transparency, scalability, and verifiability limits faster adaptations of smart cities. Motivated by the aforementioned discussions, we present a Privacy-Preserving and Secure Framework (PPSF) for IoT-driven smart cities. The proposed PPSF is based on two key mechanisms: a two-level privacy scheme and an intrusion detection scheme. First, in a two-level privacy scheme, a blockchain module is designed to securely transmit the IoT data and Principal Component Analysis (PCA) technique is applied to transform raw IoT information into a new shape. In the intrusion detection scheme, a Gradient Boosting Anomaly Detector (GBAD) is applied for training and evaluating the proposed two-level privacy scheme based on two IoT network datasets, namely ToN-IoT and BoT-IoT. We also suggest a blockchain-InterPlanetary File System (IPFS) integrated Fog-Cloud architecture to deploy the proposed PPSF framework. Experimental results demonstrate the superiority of the PPSF framework over some recent approaches in blockchain and non-blockchain systems. |
Author | Xiong, Neal N. Kumar, Randhir Srivastava, Gautam Kumar, Prabhat Gadekallu, Thippa Reddy Tripathi, Rakesh Gupta, Govind P. |
Author_xml | – sequence: 1 givenname: Prabhat orcidid: 0000-0002-0723-0752 surname: Kumar fullname: Kumar, Prabhat email: pkumar.phd2019.it@nitrr.ac.in organization: National Institute of Technology, Raipur, India – sequence: 2 givenname: Randhir orcidid: 0000-0001-9375-2970 surname: Kumar fullname: Kumar, Randhir email: rkumar.phd2018.it@nitrr.ac.in organization: National Institute of Technology, Raipur, India – sequence: 3 givenname: Gautam orcidid: 0000-0001-9851-4103 surname: Srivastava fullname: Srivastava, Gautam email: srivastavag@brandonu.ca organization: Department of Mathematics and Computer Science, Brandon University, Brandon, MB, Canada – sequence: 4 givenname: Govind P. surname: Gupta fullname: Gupta, Govind P. email: gpgupta.it@nitrr.ac.in organization: National Institute of Technology, Raipur, India – sequence: 5 givenname: Rakesh orcidid: 0000-0002-6032-1514 surname: Tripathi fullname: Tripathi, Rakesh email: rtripathi.it@nitrr.ac.in organization: National Institute of Technology, Raipur, India – sequence: 6 givenname: Thippa Reddy orcidid: 0000-0003-0097-801X surname: Gadekallu fullname: Gadekallu, Thippa Reddy email: thippareddy.g@vit.ac.in organization: Vellore Institute of Technology, Vellore, Tamil Nadu, India – sequence: 7 givenname: Neal N. orcidid: 0000-0002-0394-4635 surname: Xiong fullname: Xiong, Neal N. email: xiong31@nsuok.edu organization: Department of Mathematics and Computer Science, Northeastern State University, OK, USA |
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Snippet | With the evolution of the Internet of Things (IoT), smart cities have become the mainstream of urbanization. IoT networks allow distributed smart devices to... |
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SubjectTerms | Blockchain Cloud computing Computer architecture Cryptography Electronic devices Fog-Cloud architecture Intelligent Blockchain Intelligent sensors Internet of Things Intrusion detection Intrusion Detection System Intrusion detection systems Machine Learning Open channels Peer-to-peer computing Principal components analysis Privacy Privacy-Preservation Security Smart cities Urbanization |
Title | PPSF: A Privacy-Preserving and Secure Framework Using Blockchain-Based Machine-Learning for IoT-Driven Smart Cities |
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