[go: up one dir, main page]
More Web Proxy on the site http://driver.im/ skip to main content
research-article

NDN-based IoT with Edge computing

Published: 09 July 2024 Publication History

Abstract

The Internet of Things (IoT) consists of smart devices that can capture and sense real-time information for monitoring. IoT is typically applied in some delay-sensitive fields, so it is significant to achieve efficient IoT-based data communications. IoT works based on the IP-based end-to-end data delivery mechanism, but this end-to-end mechanism is inefficient in the IoT scenarios. The Named Data Networking (NDN) is a new data communication paradigm and its advantages might help improve IoT-based data communication efficiency. However, IoT and NDN have different architectures and IoT devices have limited resources, so it is hard to directly deploy NDN in IoT. To exploit the advantages of NDN to improve IoT-based data communication efficiency, we are motivated to integrate IoT with Edge computing and clustering (IoTE) so that edge devices and cluster heads can help achieve request aggregation and in-network caching in NDN. Based on the idea, we propose an NDN-based IoTE (NIoTE) framework so that IoT devices can employ the advantages of NDN to retrieve data from the nearest provider via one data communication process. The experimental results verify the advantages of NIoTE, and demonstrate that NIoTE effectively decreases data communication latency and costs.

Highlights

IoT is integrated with edge computing to overcome resource limitations of IoT devices.
Clustering is employed to achieve the following objectives: Share resources and collaborate to collect data; Help establish FIB; Help perform request aggregation.
The advantages of NDN are exploited to accomplish the following goals: Edge devices caches data to reduce the distance to IoT devices; Multiple IoT devices can perform request aggregation to retrieve data from an optimal edge device via one data communication process; IoT devices can share data from an intermediate device performing request aggregation.

References

[1]
Mick T., Tourani R., Misra S., Laser: Lightweight authentication and secured routing for ndn iot in smart cities, IEEE Internet Things J. 5 (2) (2017) 755–764.
[2]
Wang X., Cai S., Secure healthcare monitoring framework integrating NDN-based IoT with edge cloud, Future Gener. Comput. Syst. 112 (2020) 320–329.
[3]
Lee E.V., Lee K.Y., Gerla M., Oh S.Y., Vehicular cloud networking: Architecture and design principles, IEEE Commun. Mag. 52 (2) (2014) 148–155.
[4]
Wang X., Vehicular cloud construction and content acquisition, IEEE Intell. Trans. Syst. Mag. 10 (3) (2018) 135–145.
[5]
Wang X., Li Y., Content retrieval based on vehicular cloud in internet of vehicles, IEEE Trans. Comput. Soc. Syst. 6 (3) (2019) 582–591.
[6]
Zhao W., Liu J., Guo H., Hara T., Etc-iot: Edge-node-assisted transmitting for the cloud-centric internet of things, IEEE Netw. 32 (3) (2018) 101–107.
[7]
Omoniwa B., Hussain R., Javed M.A., Bouk S.H., Malik S.A., Fog/Edge computing-based IoT (FECIoT): Architecture, applications, and research issues, IEEE Internet Things J. (2018).
[8]
Yu J.Y., Chong P.H.J., A survey of clustering schemes for mobile ad hoc networks, IEEE Commun. Surv. Tutor. 7 (1) (2005) 32–48.
[9]
Jiang C., Yuan D., Zhao Y., Towards clustering algorithms in wireless sensor networks-a survey, in: 2009 IEEE Wireless Communications and Networking Conference, IEEE, 2009, pp. 1–6.
[10]
Gao D., Sun Q., Hu B., Zhang S., A framework for agricultural pest and disease monitoring based on internet-of-things and unmanned aerial vehicles, Sensors 20 (5) (2020) 1487–1504.
[11]
Wang X., Wang X., Vehicular content-centric networking framework, IEEE Syst. J. 13 (1) (2019) 519–529.
[12]
Jacobson V., Smetters D.K., Thornton J.D., Plass M.F., Briggs N.H., Braynard R.L., Networking named content, Commun. ACM 55 (1) (2012) 117–124.
[13]
Li Z., Xu Y., Zhang B., Yan L., Liu K., Packet forwarding in named data networking requirements and survey of solutions, IEEE Commun. Surv. Tutor. 21 (2) (2018) 1950–1987.
[14]
Arshad S., Azam M.A., Rehmani M.H., Loo J., Recent advances in information-centric networking-based internet of things (ICN-IoT), IEEE Internet Things J. 6 (2) (2019) 2128–2158.
[15]
Fang C., Yao H., Wang Z., Wu W., Jin X., Yu F.R., A survey of mobile information-centric networking: Research issues and challenges, IEEE Commun. Surv. Tutor. 20 (3) (2018) 2353–2371.
[16]
Wang X., Qian H., Constructing a 6loWPAN wireless sensor network based on a cluster tree, IEEE Trans. Veh. Technol. 61 (3) (2012) 1398–1405.
[17]
Wang X., Yanli Li, Vehicular named data networking framework, IEEE Trans. Intell. Transp. Syst. (99) (2019) 1–10.
[18]
Naqvi H.A., Hertiana S.N., Negara R.M., Enabling multipath routing for unicast traffic in ethernet network, in: International Conference on Information and Communication Technology, IEEE, 2015.
[19]
Yang Y., Wang X., Sun Q., Wang D., A route optimisation scheme for 6lowpan nested mobile networks, Int. J. Mob. Netw. Des. Innov. 6 (3) (2016) 131–141.
[20]
Li Y., Wang X., Dou Z., K-anycast data acquisition in multi-hop IoV, J. High Speed Netw. 25 (2) (2019) 173–180.
[21]
Wang X., Data acquisition in vehicular ad hoc networks, Commun. ACM 61 (5) (2018) 83–88.
[22]
McPherson D., Oran D., Thaler D., Osterweil E., Architectural considerations of IP anycast, in: RFC 7094, 2014.
[23]
Khelifi H., Luo S., Nour B., Moungla H., Faheem Y., Hussain R., Ksentini A., Named data networking in vehicular ad hoc networks: State-of-the-art and challenges, IEEE Commun. Surv. Tutor. (2019).
[24]
Bastos I.V., Moraes I.M., A diversity-based search-and-routing approach for named-data networking, Comput. Netw. 157 (2019) 11–23.
[25]
Gupta A., Shankarananda B.M., Fast interest recovery in content centric networking under lossy environment, in: 2015 IEEE CCNC, IEEE, 2015, pp. 802–807.
[26]
Bouk S.H., Ahmed S.H., Park K.J., Eun Y., Interest broadcast suppression scheme for named data wireless sensor networks, IEEE Access 7 (2019) 51799–51809.
[27]
Iqbal S.M.A., Adaptive forwarding strategies to reduce redundant interests and data in named data networks, J. Netw. Comput. Appl. 106 (2018) 33–47.
[29]
Part 11: Wireless LAN Medium Access Control (MAC) and Physical Layer (PHY) Specifications, ANSI/IEEE Std. 802.11, 2016.
[30]
Dou Z., Wang X., Li Y., Coordinate-based addressing for MANET, Telecommun. Syst. 71 (1) (2019) 121–139.
[31]
Li Y., Wang X., A novel and efficient address configuration for MANET, Int. J. Commun. Syst. (2019).

Recommendations

Comments

Please enable JavaScript to view thecomments powered by Disqus.

Information & Contributors

Information

Published In

cover image Future Generation Computer Systems
Future Generation Computer Systems  Volume 115, Issue C
Feb 2021
880 pages

Publisher

Elsevier Science Publishers B. V.

Netherlands

Publication History

Published: 09 July 2024

Author Tags

  1. Named data networking
  2. Internet of things
  3. Edge computing
  4. Request aggregation
  5. Forwarding interest base

Qualifiers

  • Research-article

Contributors

Other Metrics

Bibliometrics & Citations

Bibliometrics

Article Metrics

  • 0
    Total Citations
  • 0
    Total Downloads
  • Downloads (Last 12 months)0
  • Downloads (Last 6 weeks)0
Reflects downloads up to 05 Jan 2025

Other Metrics

Citations

View Options

View options

Media

Figures

Other

Tables

Share

Share

Share this Publication link

Share on social media