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Adaptive Power Management for Environmentally Powered Systems

Published: 01 April 2010 Publication History

Abstract

Recently, there has been a substantial interest in the design of systems that receive their energy from regenerative sources such as solar cells. In contrast to approaches that minimize the power consumption subject to performance constraints, we are concerned with optimizing the performance of an application while respecting the limited and time-varying amount of available power. In this paper, we address power management of, e.g., wireless sensor nodes which receive their energy from solar cells. Based on a prediction of the future available energy, we adapt parameters of the application in order to maximize the utility in a long-term perspective. The paper presents a formal model of the corresponding optimization problem including constraints concerning buffer sizes, timing, and rates. Instead of solving the optimization problem online which may be prohibitively complex in terms of running time and energy consumption, we apply multiparametric programming to precompute the application parameters offline for different environmental conditions and system states. In order to guarantee sustainable operation, we propose a hierarchical software design which comprises a worst-case prediction of the incoming energy. As a further contribution, we suggest a new method for approximate multiparametric linear programming which substantially lowers the computational demand and memory requirement of the embedded software. Our approaches are evaluated using long-term measurements of solar energy in an outdoor environment.

Cited By

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  • (2023)Solar-powered Parking Analytics System Using Deep Reinforcement LearningACM Transactions on Sensor Networks10.1145/358494919:4(1-27)Online publication date: 21-Feb-2023
  • (2022)Dataflow Driven Partitioning of Machine Learning Applications for Optimal Energy Use in Batteryless SystemsACM Transactions on Embedded Computing Systems10.1145/352013521:5(1-29)Online publication date: 9-Dec-2022
  • (2021)Energy-efficient parking analytics system using deep reinforcement learningProceedings of the 8th ACM International Conference on Systems for Energy-Efficient Buildings, Cities, and Transportation10.1145/3486611.3486660(81-90)Online publication date: 17-Nov-2021
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Published In

cover image IEEE Transactions on Computers
IEEE Transactions on Computers  Volume 59, Issue 4
April 2010
143 pages

Publisher

IEEE Computer Society

United States

Publication History

Published: 01 April 2010

Author Tags

  1. Embedded systems
  2. energy harvesting
  3. multiparametric linear programming.
  4. power management

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Cited By

View all
  • (2023)Solar-powered Parking Analytics System Using Deep Reinforcement LearningACM Transactions on Sensor Networks10.1145/358494919:4(1-27)Online publication date: 21-Feb-2023
  • (2022)Dataflow Driven Partitioning of Machine Learning Applications for Optimal Energy Use in Batteryless SystemsACM Transactions on Embedded Computing Systems10.1145/352013521:5(1-29)Online publication date: 9-Dec-2022
  • (2021)Energy-efficient parking analytics system using deep reinforcement learningProceedings of the 8th ACM International Conference on Systems for Energy-Efficient Buildings, Cities, and Transportation10.1145/3486611.3486660(81-90)Online publication date: 17-Nov-2021
  • (2021)Differential evolution optimized fuzzy controller for wireless sensor network energy management2016 IEEE International Conference on Fuzzy Systems (FUZZ-IEEE)10.1109/FUZZ-IEEE.2016.7737708(352-358)Online publication date: 11-Mar-2021
  • (2020)ACESACM Transactions on Sensor Networks10.1145/340419116:4(1-31)Online publication date: 31-Jul-2020
  • (2020)Harvesting-Aware Optimal Communication Scheme for Infrastructure-Less SensingACM Transactions on Internet of Things10.1145/33959281:4(1-26)Online publication date: 21-Jun-2020
  • (2020)EmberProceedings of the 18th Conference on Embedded Networked Sensor Systems10.1145/3384419.3430734(503-516)Online publication date: 16-Nov-2020
  • (2020)Runtime Adaptation in Wireless Sensor Nodes Using Structured LearningACM Transactions on Cyber-Physical Systems10.1145/33721534:4(1-28)Online publication date: 6-Jul-2020
  • (2019)Machine learning based optimal renewable energy allocation in sustained wireless sensor networksWireless Networks10.1007/s11276-018-01929-w25:7(3953-3981)Online publication date: 1-Oct-2019
  • (2018)Scaling configuration of energy harvesting sensors with reinforcement learningProceedings of the 6th International Workshop on Energy Harvesting & Energy-Neutral Sensing Systems10.1145/3279755.3279760(7-13)Online publication date: 4-Nov-2018
  • Show More Cited By

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