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      KCI등재 SCIE SCOPUS

      MobiRPL: Adaptive, Robust, and RSSI-based Mobile Routing in Low Power and Lossy Networks

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      https://www.riss.kr/link?id=A108185992

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      다국어 초록 (Multilingual Abstract)

      This paper tackles the mobile routing issues in lowpowerand lossy networks (LLNs). The IPv6 standard routingprotocol for LLNs, termed IPv6 routing protocol for low-powerand lossy networks (RPL), has mostly been investigated in staticLLNs and it has no...

      This paper tackles the mobile routing issues in lowpowerand lossy networks (LLNs). The IPv6 standard routingprotocol for LLNs, termed IPv6 routing protocol for low-powerand lossy networks (RPL), has mostly been investigated in staticLLNs and it has no explicit mechanism to support mobility. Inaddition, there is no mobile routing protocol that works well inmobile LLNs. Considering the importance of mobility supportin many LLN applications, this work designs and implementsMobiRPL, an adaptive, robust, and received signal strengthindicator (RSSI)-based mobile routing scheme based on theRPL standard. To cope with network dynamics, the MobiRPLdesign focuses more on maintaining reliable routing topologythan on minimizing energy consumption. This design choicesignificantly improves reliability while maintaining the acceptableenergy consumption of mobile LLNs. We implement MobiRPLon Contiki OS, and evaluate its effectiveness extensively throughCooja simulation and testbed experiments. Our results fromthe testbed show that MobiRPL improves mobile nodes’ packetdelivery ratio by 11.3% compared to RPL and reduces the energyconsumption of mobile nodes by 73.3% compared to the baselinescheme, i.e.,the lightweight on-demand ad-hoc distance-vectorrouting protocol - next generation (LOADng).

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      참고문헌 (Reference)

      1 H. Fotouhi, "mRPL+: A mobility management framework in RPL/6LoWPAN vol. 104" Elsevier 34-54, 2017

      2 H. Fotouhi, "mRPL : Boosting mobility in the Internet of things" 26 : 17-35, 2015

      3 J. Ko, "Wireless sensor networks for healthcare" 98 (98): 1947-1960, 2010

      4 H.-S. Kim, "Thread/OpenThread: A compromise in low-power wireless multihop network architecture for the Internet of things" 57 (57): 55-61, 2019

      5 P. Levis, "The trickle algorithm"

      6 O. Gnawali, "The minimum rank with hysteresis objective function"

      7 T. Clausen, "The lightweight on-demand Ad hoc distance-vector routing protocol - Next generation (LOADng)"

      8 D. Johnson, "The dynamic source routing protocol (DSR) for mobile Ad Hoc networks for IPv4" 2007

      9 A. Dunkels, "The Contikimac radio duty cycling protocol"

      10 P. O. Kamgueu, "Survey on RPL enhancements : A focus on topology, security and mobility" 120 : 10-21, 2018

      1 H. Fotouhi, "mRPL+: A mobility management framework in RPL/6LoWPAN vol. 104" Elsevier 34-54, 2017

      2 H. Fotouhi, "mRPL : Boosting mobility in the Internet of things" 26 : 17-35, 2015

      3 J. Ko, "Wireless sensor networks for healthcare" 98 (98): 1947-1960, 2010

      4 H.-S. Kim, "Thread/OpenThread: A compromise in low-power wireless multihop network architecture for the Internet of things" 57 (57): 55-61, 2019

      5 P. Levis, "The trickle algorithm"

      6 O. Gnawali, "The minimum rank with hysteresis objective function"

      7 T. Clausen, "The lightweight on-demand Ad hoc distance-vector routing protocol - Next generation (LOADng)"

      8 D. Johnson, "The dynamic source routing protocol (DSR) for mobile Ad Hoc networks for IPv4" 2007

      9 A. Dunkels, "The Contikimac radio duty cycling protocol"

      10 P. O. Kamgueu, "Survey on RPL enhancements : A focus on topology, security and mobility" 120 : 10-21, 2018

      11 M. Dohler, "Routing requirements for urban low-power and lossy networks"

      12 Z. Shah, "Routing protocols for mobile Internet of things (IoT): A survey on challenges and solutions" 10 (10): 2320-2021, 2021

      13 K. Levis, "RSSI is under appreciated" 2006

      14 T. Winter, "RPL: IPv6 routing protocol for low-power and lossy networks"

      15 O. Gaddour, "Quality-of-service aware routing for static and mobile IPv6-based low-power and lossy sensor networks using RPL" 33 : 233-256, 2015

      16 I. Rabet, "Pushing IoT mobility management to the edge: Granting RPL accurate localization and routing" 2021

      17 J. Tripathi, "Proactive versus reactive routing in low power and lossy networks : Performance analysis and scalability improvements" 23 : 121-144, 2014

      18 J. Tripathi, "Proactive versus reactive revisited:IPv6 routing for low power lossy networks" 2013

      19 M. Vucinic, "Performance comparison of the RPL and LOADng routing protocols in a home automation scenario" 2013

      20 T. Clausen, "Optimized link state routing protocol (OLSR)" 2003

      21 S. Hoghooghi, "Mobility-aware parent selection for routing protocol in wireless sensor networks using RPL" 2019

      22 J. Wang, "Mobility support enhancement for RPL" 2017

      23 I. El Korbi, "Mobility enhanced RPL for wireless sensor networks" 2012

      24 J. Ko, "MoMoRo: Providing mobility support for lowpower wireless applications" 9 (9): 585-594, 2015

      25 H.-S. Kim, "MarketNet:An asymmetric transmission power-based wireless system for managing e-Price tags in markets" 2015

      26 정승범 ; 박은정 ; 우동연 ; 김형신 ; 백정엽 ; 박세웅, "MAPLE: Mobility Support using Asymmetric Transmit Power in Low-Power and Lossy Networks" 한국통신학회 20 (20): 414-424, 2018

      27 A. Oliveira, "Low-power and lossy networks under mobility: A survey" 107 : 339-352, 2016

      28 H.-S. Kim, "Load balancing under heavy traffic in RPL routing protocol for low power and lossy networks" 16 (16): 964-979, 2016

      29 T. Clausen, "Lightweight on-demand Ad hoc distance-vector routing-next generation(LOADng) : Protocol, extension, and applicability" 126 : 125-140, 2017

      30 T. Clausen, J. Yi, "LOADng: Towards AODV version 2" 2012

      31 C. Cobârzan, "Integrating mobility in RPL" 2015

      32 A. Elsts, "Instant: A TSCH schedule for data collection from mobile nodes" 35-46, 2019

      33 K. Pister, "Industrial routing requirements in low-power and lossy networks"

      34 "IEEE standard for local and metropolitan area networks–Part 15.4:Low-rate wireless personal area networks (LR-WPANs) amendment 1:MAC sublayer"

      35 A. Brandt, "Home automation routing requirements in low-power and lossy networks"

      36 C. E. Perkins, "Highly dynamic destination-sequenced distance-vector routing (DSDV) for mobile computers" 24 (24): 234-244, 1994

      37 G. Violettas, "Evolutionary software defined networking-inspired routing control strategies for the Internet of things" 7 : 132 173-132 192, 2019

      38 J. Yi, T. Clausen, "Evaluation of routing protocol for low power and lossy networks: LOADng and RPL" 2013

      39 M. Bouaziz, "EMA-RPL: Energy and mobility aware routing for the Internet of mobile things" 97 : 247-258, 2019

      40 M. Bouaziz, "EKF-MRPL: Advanced mobility support routing protocol for Internet of mobile things: Movement prediction approach" 93 : 822-832, 2019

      41 D. B. Johnson, "Dynamic source routing in ad hoc wireless networks"

      42 O. Tavallaie, "Design and optimization of traffic-aware TSCH scheduling for mobile 6TiSCH networks" 2021

      43 F. Osterlind, "Crosslevel sensor network simulation with COOJA" 2006

      44 Riham Elhabyan ; Wei Shi ; Marc St-Hilaire, "Coverage Protocols for Wireless Sensor Networks: Review and Future Directions" 한국통신학회 21 (21): 45-60, 2019

      45 A. Dunkels, "Contiki - a lightweight and flexible operating system for tiny networked sensors" 2004

      46 J. Yi, "Collection tree extension of reactive routing protocol for low-power and lossy networks" 10 (10): 352421-, 2014

      47 H.-S. Kim, "Challenging the IPv6routing protocol for low-power and lossy networks (RPL): A survey" 19 (19): 2502-2525, 2017

      48 J. Martocci, "Building automation routing requirements in low-power and lossy networks"

      49 K. Srinivasan, "An empirical study of low-power wireless" 6 (6): 1-49, 2010

      50 J. Park, "An algorithm for timely transmission of solicitation messages in RPL for energy-efficient node mobility" 17 (17): 899-, 2017

      51 M. Barcelo, "Addressing mobility in RPL with position assisted metrics" 16 (16): 2151-2161, 2015

      52 C. Perkins, "Ad hoc on-demand distance vector (AODV) routing"

      53 S. Lin, "ATPC: Adaptive transmission power control for wireless sensor networks" 12 (12): 6-, 2016

      54 A. Mohammadsalehi, "ARMOR : A reliable and mobility-aware RPL for mobile Internet of things infrastructures" 9 (9): 1503-1516, 2021

      55 C. Zhu, "A survey on coverage and connectivity issues in wireless sensor networks" 35 (35): 619-632, 2012

      56 E. M. Royer, "A review of current routing protocols for ad hoc mobile wireless networks" 6 (6): 46-55, 1999

      57 H. Kharrufa, "A game theoretic optimization of RPL for mobile Internet of things applications" 18 (18): 2520-2530, 2018

      58 S. Elyengui, "A comparative performance study of the routing protocols RPL, LOADng and LOADng-CTP with bidirectional traffic for AMI scenario" 2015

      59 U. Herberg, "A comparative performance study of the routing protocols LOAD and RPL with bi-directional traffic in lowpower and lossy networks(LLN)" 2011

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      학술지 이력

      학술지 이력
      연월일 이력구분 이력상세 등재구분
      2023 평가예정 해외DB학술지평가 신청대상 (해외등재 학술지 평가)
      2020-01-01 평가 등재학술지 유지 (해외등재 학술지 평가) KCI등재
      2005-01-01 평가 SCI 등재 (등재후보1차) KCI등재
      2004-01-01 평가 등재후보학술지 유지 (등재후보2차) KCI등재후보
      2003-01-01 평가 등재후보 1차 PASS (등재후보1차) KCI등재후보
      2001-07-01 평가 등재후보학술지 선정 (신규평가) KCI등재후보
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      학술지 인용정보

      학술지 인용정보
      기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
      2016 0.74 0.09 0.53
      KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
      0.42 0.34 0.264 0.02
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