Enhanced Beacons Dynamic Transmission over TSCH

Author:

Ortiz Guerra Erik1ORCID,Martínez Morfa Mario2ORCID,García Algora Carlos Manuel13ORCID,Cruz-Enriquez Hector1ORCID,Steenhaut Kris3ORCID,Montejo-Sánchez Samuel4ORCID

Affiliation:

1. Department of Electronics and Telecommunications, Universidad Central “Marta Abreu” de Las Villas, Santa Clara 54830, Cuba

2. Departamento de Ingeniería Telemática, Universidad Politécnica de Cataluña, 08034 Barcelona, Spain

3. Department of Electronics and Informatics, Vrije Universiteit Brussel, 1050 Brussels, Belgium

4. Instituto Universitario de Investigación y Desarrollo Tecnológico, Universidad Tecnológica Metropolitana, Santiago 8940577, Chile

Abstract

Time slotted channel hopping (TSCH) has become the standard multichannel MAC protocol for low-power lossy networks. The procedure for associating nodes in a TSCH-based network is not included in the standard and has been defined in the minimal 6TiSCH configuration. Faster network formation ensures that data packet transmission can start sooner. This paper proposes a dynamic beacon transmission schedule over the TSCH mechanism that achieves a shorter network formation time than the default minimum 6TiSCH static schedule. A theoretical model is derived for the proposed mechanism to estimate the expected time for a node to get associated with the network. Simulation results obtained with different network topologies and channel conditions show that the proposed mechanism reduces the average association time and average power consumption during network formation compared to the default minimal 6TiSCH configuration.

Funder

ANID FONDECYT Regular

VLIRUOS

Publisher

MDPI AG

Reference36 articles.

1. Internet of Things (IoT) for Next-Generation Smart Systems: A Review of Current Challenges, Future Trends and Prospects for Emerging 5G-IoT Scenarios;Shafique;IEEE Access,2020

2. A Review of Internet of Things—Resource Allocation;Li;IEEE Internet Things J.,2021

3. The Internet of Things: A Review of Enabled Technologies and Future Challenges;Guizani;IEEE Access,2019

4. Kandris, D., Nakas, C., Vomvas, D., and Koulouras, G. (2020). Applications of Wireless Sensor Networks: An Up-to-Date Survey. Appl. Syst. Innov., 3.

5. (2009). IEEE Standard for Information Technology, Part 15.4: Wireless Medium Access Control (MAC) and Physical Layer (PHY) Specifications for Low-Rate Wireless Personal Area Networks (LRWPANS). Standard No. 802.15.4c-2009.

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