4.7 Article

Link-Delay-Aware Reinforcement Scheduling for Data Aggregation in Massive IoT

Journal

IEEE TRANSACTIONS ON COMMUNICATIONS
Volume 70, Issue 8, Pages 5353-5367

Publisher

IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
DOI: 10.1109/TCOMM.2022.3186407

Keywords

Data aggregation; Internet of Things; Delays; Scheduling; Wireless sensor networks; Receivers; Schedules; Data aggregation; Internet of Things; multichannel; duty cycle; wireless sensor networks

Funding

  1. Ministry of Science and ICT, BK21 FOUR [IITP-2022-20150-00742, IITP-2022-2020-0-01821, NRF-2020R1A2C2008447]
  2. AI Innovation Hub [2022-0-02068]

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This paper analyzes the problem of time-efficient data aggregation in multichannel duty-cycled IoT sensor networks. A novel approach called LInk-delay-aware REinforcement (LIRE) is proposed, which accelerates aggregation by leveraging active slots of sensors, reducing aggregation delay.
Over the past few years, the use of wireless sensor networks in a range of Internet of Things (IoT) scenarios has grown in popularity. Since IoT sensor devices have restricted battery power, a proper IoT data aggregation approach is crucial to prolong the network lifetime. To this end, current approaches typically form a virtual aggregation backbone based on a connected dominating set or maximal independent set to utilize independent transmissions of dominators. However, they usually have a fairly long aggregation delay because the dominators become bottlenecks for receiving data from all dominatees. The problem of time-efficient data aggregation in multichannel duty-cycled IoT sensor networks is analyzed in this paper. We propose a novel aggregation approach, named LInk-delay-aware REinforcement (LIRE), leveraging active slots of sensors to explore a routing structure with pipeline links, then scheduling all transmissions in a bottom-up manner. The reinforcement schedule accelerates the aggregation by exploiting unused channels and time slots left off at every scheduling round. LIRE is evaluated in a variety of simulation scenarios through theoretical analysis and performance comparisons with a state-of-the-art scheme. The simulation results show that LIRE reduces more than 80% aggregation delay compared to the existing scheme.

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