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      KCI등재 SCIE SCOPUS

      A Robust Energy Saving Data Dissemination Protocol for IoT-WSNs = A Robust Energy Saving Data Dissemination Protocol for IoT-WSNs

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      https://www.riss.kr/link?id=A106017257

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      다국어 초록 (Multilingual Abstract)

      In Wireless Sensor Networks (WSNs) for Internet of Things (IoT) environment, fault tolerance is a most fundamental issue due to strict energy constraint of sensor node. In this paper, a robust energy saving data dissemination protocol for IoT-WSNs is ...

      In Wireless Sensor Networks (WSNs) for Internet of Things (IoT) environment, fault tolerance is a most fundamental issue due to strict energy constraint of sensor node. In this paper, a robust energy saving data dissemination protocol for IoT-WSNs is proposed. Minimized energy consumption and dissemination delay time based on signal strength play an important role in our scheme. The representative dissemination protocol SPIN (Sensor Protocols for Information via Negotiation) overcomes overlapped data problem of the classical Flooding scheme. However, SPIN never considers distance between nodes, thus the issue of dissemination energy consumption is becoming more important problem. In order to minimize the energy consumption, the shortest path between sensors should be considered to disseminate the data through the entire IoT-WSNs. SPMS (Shortest Path Mined SPIN) scheme creates routing tables using Bellman Ford method and forwards data through a multi-hop manner to optimize power consumption and delay time. Due to these properties, it is very hard to avoid heavy traffic when routing information is updated. Additionally, a node failure of SPMS would be caused by frequently using some sensors on the shortest path, thus network lifetime might be shortened quickly. In contrast, our scheme is resilient to these failures because it employs energy aware concept. The dissemination delay time of the proposed protocol without a routing table is similar to that of shortest path-based SPMS. In addition, our protocol does not require routing table, which needs a lot of control packets, thus it prevents excessive control message generation. Finally, the proposed scheme outperforms previous schemes in terms of data transmission success ratio, therefore our protocol could be appropriate for IoT-WSNs environment.

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      참고문헌 (Reference)

      1 M. Bhardwaj, "Upper Bound on the Lifetime of Sensor Network" 2001

      2 S. Li, "The internet of things : a survey" Springer 17 (17): 243-259, 2015

      3 M. Elappila, "Survivable Path Routing in WSN for IoT applications" Elsevier 43 : 49-63, 2018

      4 A. S. Rostami, "Survey on clustering in heterogeneous and homogeneous wireless sensor networks" 74 (74): 277-323, 2018

      5 "Scalable Network Technologies web site"

      6 S. Park, "RESS : A Data Dissemination Protocol Using Residual Energy and Signal Strength for Wireless Sensor Networks" 205-214, 2010

      7 V. B. Krishna, "REMAX : Reachability-Maximizing P2P Detection of Erroneous Readings in Wireless Sensor Networks" 321-332, 2017

      8 R. Khosla, "Performance Comparison of SPIN based Push-Pull Protocols" 3993-3998, 2007

      9 I. Shin, "On Generating Backbone Trees through Robust Multi-hop Clusters in Wireless Sensor Networks" 30-39, 2008

      10 J. Kulik, "Negotiation-Based Protocols for Disseminating Information in Wireless Sensor Networks" 8 (8): 169-185, 2002

      1 M. Bhardwaj, "Upper Bound on the Lifetime of Sensor Network" 2001

      2 S. Li, "The internet of things : a survey" Springer 17 (17): 243-259, 2015

      3 M. Elappila, "Survivable Path Routing in WSN for IoT applications" Elsevier 43 : 49-63, 2018

      4 A. S. Rostami, "Survey on clustering in heterogeneous and homogeneous wireless sensor networks" 74 (74): 277-323, 2018

      5 "Scalable Network Technologies web site"

      6 S. Park, "RESS : A Data Dissemination Protocol Using Residual Energy and Signal Strength for Wireless Sensor Networks" 205-214, 2010

      7 V. B. Krishna, "REMAX : Reachability-Maximizing P2P Detection of Erroneous Readings in Wireless Sensor Networks" 321-332, 2017

      8 R. Khosla, "Performance Comparison of SPIN based Push-Pull Protocols" 3993-3998, 2007

      9 I. Shin, "On Generating Backbone Trees through Robust Multi-hop Clusters in Wireless Sensor Networks" 30-39, 2008

      10 J. Kulik, "Negotiation-Based Protocols for Disseminating Information in Wireless Sensor Networks" 8 (8): 169-185, 2002

      11 M. Kim, "Multipath Energy-Aware Routing Protocol in Wireless Sensor Networks" 127-130, 2008

      12 I. Shin, "MCBT : Multi-hop Cluster Based Stable Backbone Trees for Data Collection and Dissemination in WSNs" MDPI 9 (9): 6028-6045, 2009

      13 P. P. Ray, "Internet of Things for Disaster Management : State-of-the-Art and Prospects" 5 : 18818-18835, 2017

      14 I. Yaqoob, "Internet of Things Architecture : Recent Advances, Taxonomy, Requirements, and Open Challenges" 24 (24): 10-16, 2017

      15 S. K. Lee, "Future of IoT Networks : Survey" MDPI 7 (7): 1072-, 2017

      16 J. Chudzikiewicz, "Fault-tolerant techniques for the Internet of Military Things" 496-501, 2015

      17 G. Khanna, "Fault Tolerant Energy Aware Data Dissemination Protocol in Sensor Networks" IEEE Dependable Systems and Networks (DSN) 739-748, 2004

      18 A. Zarrad, "Evaluating network test scenarios for network simulators systems" 13 (13): 2017

      19 G. Abdul-Salaam, "Energy-Efficient Data Reporting for Navigation in Position-Free Hybrid Wireless Sensor Networks" 17 (17): 2017

      20 M. Z. Hasan, "Energy-Aware Data Delivery Framework for Safety-Oriented Mobile IoT" 17 (17): 6463-6473, 2017

      21 M. H. Anisi, "Energy harvesting and battery power based routing in wireless sensor networks" Springer 23 (23): 249-266, 2017

      22 T. Rault, "Energy efficiency in wireless sensor networks : A top-down survey" Elsevier 67 : 104-122, 2014

      23 J. Seo, "EDAS : Energy and Distance Aware Protocol Based on SPIN for Wireless Sensor Networks" 5730 : 115-130, 2009

      24 C. -Y. Chang, "Design and Implementation of an IoT Access Point for Smart Home" MDPI 5 (5): 1882-1903, 2015

      25 P. Gonizzi, "Data dissemination scheme for distributed storage for IoT observation systems at large scale" Elsevier 22 : 16-25, 2015

      26 M. Kim, "An Energy-aware Multipath Routing Algorithm in Wireless Sensor Networks" E91-D (E91-D): 2419-2427, 2008

      27 V. B. Krishna, "An Energy-Efficient P2P Protocol for Validating Measurements in Wireless Sensor Networks" University of Illinois at Urbana-Champaign 2016

      28 J. Seo, "An Energy and Distance Aware Data Dissemination Protocol Based on SPIN in Wireless Sensor Networks" 928-937, 2008

      29 Y. Peng, "An Efficient Network Coding-Based Fault-Tolerant Mechanism in WBAN for Smart Healthcare Monitoring Systems" MDPI 7 (7): 817-, 2017

      30 W. R. Heinzelman, "Adaptive protocols for information dissemination in wireless sensor networks" 174-185, 1999

      31 H. Yetgin, "A Survey of Network Lifetime Maximization Techniques in Wireless Sensor Networks" 19 (19): 828-854, 2017

      32 A. Mouapi, "A New Approach to Design Autonomous Wireless Sensor Node Based on RF Energy Harvesting System" MDPI 18 (18): 133-, 2018

      33 M. Kim, "A Dissemination Protocol to Guarantee Data Accessibility within N-hops for Wireless Sensor Networks" 1-8, 2009

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      연월일 이력구분 이력상세 등재구분
      학술지등록 한글명 : KSII Transactions on Internet and Information Systems
      외국어명 : KSII Transactions on Internet and Information Systems
      2023 평가예정 해외DB학술지평가 신청대상 (해외등재 학술지 평가)
      2020-01-01 평가 등재학술지 유지 (해외등재 학술지 평가) KCI등재
      2013-10-01 평가 등재학술지 선정 (기타) KCI등재
      2011-01-01 평가 등재후보학술지 유지 (기타) KCI등재후보
      2009-01-01 평가 SCOPUS 등재 (신규평가) KCI등재후보
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      기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
      2016 0.45 0.21 0.37
      KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
      0.32 0.29 0.244 0.03
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