Securing Next Generation Multinodal Leadless Cardiac Pacemaker System: A Proof of Concept in a Single Animal

As the next generation of implanted medical devices for cardiac rhythm management moves towards multi-nodal leadless systems that do without the limitations of transvenous leads, new security threats arise from the wireless communication between the systems' nodes. Key management and the key di...

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Main Authors: Muhammad Faheem Awan, Rafael Cordero, Kimmo Kansanen, Delphine Feuerstein
Format: Article
Language:English
Published: IEEE 2020-01-01
Series:IEEE Access
Subjects:
Online Access:https://ieeexplore.ieee.org/document/9170497/
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spelling doaj-c3be415247eb44e59c86be9da5deb0052021-03-30T04:09:10ZengIEEEIEEE Access2169-35362020-01-01815130715131510.1109/ACCESS.2020.30175539170497Securing Next Generation Multinodal Leadless Cardiac Pacemaker System: A Proof of Concept in a Single AnimalMuhammad Faheem Awan0https://orcid.org/0000-0002-2783-8167Rafael Cordero1Kimmo Kansanen2Delphine Feuerstein3Department of Electronic Systems, Norwegian University of Science and Technology, Trondheim, NorwayCentre de Nanosciences et de Nanotechnologies, Université Paris-Sud, Paris, FranceDepartment of Electronic Systems, Norwegian University of Science and Technology, Trondheim, NorwayClinical Research, MicroPort CRM, Clamart, FranceAs the next generation of implanted medical devices for cardiac rhythm management moves towards multi-nodal leadless systems that do without the limitations of transvenous leads, new security threats arise from the wireless communication between the systems' nodes. Key management and the key distribution problem used in traditional cryptographic methods are considered to be too computationally expensive for small implanted medical devices. Instead, inherent human biometrics could provide a reliable alternative. In this work, we tested the key generation process across different nodes of a mimicked dual-chamber leadless cardiac pacemaker system and a subcutaneous implantable relay (S-relay). The proposed key generation process utilizes the randomness available from inter beat intervals (IBIs). A pre-clinical in-vivo experiment was performed in one dog in order to validate the concept by implanting conventional bipolar cardiac pacemaker leads in the right atrium, the right ventricle and the subcutaneous space. Based on the available randomness and entropy of recorded IBIs, 3-bits were extracted per IBI by approximating a sequence of intervals with a normal distribution. This allowed for the generation of a 128-bit key string across the nodes with an average bit mismatch rate of about 3%. Parity check methods were used to reconciliate the keys across the multiple nodes of a multi-nodal leadless pacemaker and subcutaneous device system. The findings are encouraging and demonstrate that IBIs can be used to generate secure keys for data encryption across different nodes of a leadless pacemaker system and S-relay.https://ieeexplore.ieee.org/document/9170497/Physiological signalssecurity and privacymulti-nodal leadless cardiac pacemakerWBANphysical layer securitykey generation
collection DOAJ
language English
format Article
sources DOAJ
author Muhammad Faheem Awan
Rafael Cordero
Kimmo Kansanen
Delphine Feuerstein
spellingShingle Muhammad Faheem Awan
Rafael Cordero
Kimmo Kansanen
Delphine Feuerstein
Securing Next Generation Multinodal Leadless Cardiac Pacemaker System: A Proof of Concept in a Single Animal
IEEE Access
Physiological signals
security and privacy
multi-nodal leadless cardiac pacemaker
WBAN
physical layer security
key generation
author_facet Muhammad Faheem Awan
Rafael Cordero
Kimmo Kansanen
Delphine Feuerstein
author_sort Muhammad Faheem Awan
title Securing Next Generation Multinodal Leadless Cardiac Pacemaker System: A Proof of Concept in a Single Animal
title_short Securing Next Generation Multinodal Leadless Cardiac Pacemaker System: A Proof of Concept in a Single Animal
title_full Securing Next Generation Multinodal Leadless Cardiac Pacemaker System: A Proof of Concept in a Single Animal
title_fullStr Securing Next Generation Multinodal Leadless Cardiac Pacemaker System: A Proof of Concept in a Single Animal
title_full_unstemmed Securing Next Generation Multinodal Leadless Cardiac Pacemaker System: A Proof of Concept in a Single Animal
title_sort securing next generation multinodal leadless cardiac pacemaker system: a proof of concept in a single animal
publisher IEEE
series IEEE Access
issn 2169-3536
publishDate 2020-01-01
description As the next generation of implanted medical devices for cardiac rhythm management moves towards multi-nodal leadless systems that do without the limitations of transvenous leads, new security threats arise from the wireless communication between the systems' nodes. Key management and the key distribution problem used in traditional cryptographic methods are considered to be too computationally expensive for small implanted medical devices. Instead, inherent human biometrics could provide a reliable alternative. In this work, we tested the key generation process across different nodes of a mimicked dual-chamber leadless cardiac pacemaker system and a subcutaneous implantable relay (S-relay). The proposed key generation process utilizes the randomness available from inter beat intervals (IBIs). A pre-clinical in-vivo experiment was performed in one dog in order to validate the concept by implanting conventional bipolar cardiac pacemaker leads in the right atrium, the right ventricle and the subcutaneous space. Based on the available randomness and entropy of recorded IBIs, 3-bits were extracted per IBI by approximating a sequence of intervals with a normal distribution. This allowed for the generation of a 128-bit key string across the nodes with an average bit mismatch rate of about 3%. Parity check methods were used to reconciliate the keys across the multiple nodes of a multi-nodal leadless pacemaker and subcutaneous device system. The findings are encouraging and demonstrate that IBIs can be used to generate secure keys for data encryption across different nodes of a leadless pacemaker system and S-relay.
topic Physiological signals
security and privacy
multi-nodal leadless cardiac pacemaker
WBAN
physical layer security
key generation
url https://ieeexplore.ieee.org/document/9170497/
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