skip to main content
10.1145/3485730.3493358acmconferencesArticle/Chapter ViewAbstractPublication PagessensysConference Proceedingsconference-collections
demonstration

Demonstration of an Energy-Aware Task Scheduler for Battery-Less IoT Devices

Published:15 November 2021Publication History

ABSTRACT

Tiny energy harvesting battery-less devices present a promising alternative to battery-powered devices for a sustainable Internet of Things (IoT) vision. The use of small capacitors as energy storage, along with a dynamic and unpredictable harvesting environment, leads these devices to exhibit intermittent on-off behavior. As the traditional computing models cannot handle this behavior, in this demo we present and demonstrate an energy-aware task scheduler for battery-less IoT devices based on task dependencies and priorities, which can intelligently schedule the application tasks avoiding power failures.

References

  1. Pieter De Mil, Bart Jooris, Lieven Tytgat, Ruben Catteeuw, Ingrid Moerman, Piet Demeester, and Ad Kamerman. 2010. Design and Implementation of a Generic Energy-Harvesting Framework Applied to the Evaluation of a Large-Scale Electronic Shelf-Labeling Wireless Sensor Network. EURASIP J. Wirel. Commun. Netw. 2010, Article 7 (2010), 12 pages. https://doi.org/10.1155/2010/343690Google ScholarGoogle Scholar
  2. Carmen Delgado and Jeroen Famaey. 2021. Optimal energy-aware task scheduling for batteryless IoT devices. IEEE Transactions on Emerging Topics in Computing (2021), 1--1. https://doi.org/10.1109/TETC.2021.3086144Google ScholarGoogle ScholarCross RefCross Ref
  3. Josiah Hester, Kevin Storer, and Jacob Sorber. 2017. Timely Execution on Intermittently Powered Batteryless Sensors. In Proceedings of the 15th ACM Conference on Embedded Network Sensor Systems (Delft, Netherlands) (SenSys '17). Association for Computing Machinery, New York, NY, USA, Article 17, 13 pages. https://doi.org/10.1145/3131672.3131673Google ScholarGoogle ScholarDigital LibraryDigital Library
  4. Nordic Semiconductor. 2021. nRF52840 DK - nordicsemi.com. Retrieved September 7, 2021 from https://www.nordicsemi.com/Products/Development-hardware/nrf52840-dkGoogle ScholarGoogle Scholar
  5. Kasim Sinan Yildrim, Amjad Yousef Majid, Dimitris Patoukas, Koen Schaper, Przemyslaw Pawelczak, and Josiah Hester. 2018. InK: Reactive Kernel for Tiny Batteryless Sensors. In Proceedings of the 16th ACM Conference on Embedded Networked Sensor Systems (Shenzhen, China) (SenSys '18). Association for Computing Machinery, New York, NY, USA, 41--53. https://doi.org/10.1145/3274783.3274837Google ScholarGoogle ScholarDigital LibraryDigital Library

Index Terms

  1. Demonstration of an Energy-Aware Task Scheduler for Battery-Less IoT Devices

          Recommendations

          Comments

          Login options

          Check if you have access through your login credentials or your institution to get full access on this article.

          Sign in
          • Published in

            cover image ACM Conferences
            SenSys '21: Proceedings of the 19th ACM Conference on Embedded Networked Sensor Systems
            November 2021
            686 pages
            ISBN:9781450390972
            DOI:10.1145/3485730

            Copyright © 2021 Owner/Author

            Permission to make digital or hard copies of part or all of this work for personal or classroom use is granted without fee provided that copies are not made or distributed for profit or commercial advantage and that copies bear this notice and the full citation on the first page. Copyrights for third-party components of this work must be honored. For all other uses, contact the Owner/Author.

            Publisher

            Association for Computing Machinery

            New York, NY, United States

            Publication History

            • Published: 15 November 2021

            Check for updates

            Qualifiers

            • demonstration
            • Research
            • Refereed limited

            Acceptance Rates

            SenSys '21 Paper Acceptance Rate25of139submissions,18%Overall Acceptance Rate174of867submissions,20%

          PDF Format

          View or Download as a PDF file.

          PDF

          eReader

          View online with eReader.

          eReader