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Renewable Energy Management Using Action Dependent Heuristic Dynamic Programming

  • Nazarbayev University

Результат исследований

Аннотация

With increases in global energy demand and the rapid consumption of fossil fuels, the use of green energy and more efficient energy management approaches are receiving serious attention. Our focus is on improving energy resource scheduling in smart buildings and homes to minimize cost, while meeting energy demand. Here, we present an approach using Action Dependent Heuristic Dynamic Programming (ADHDP) optimization for a smart home set-up using solar panels, wind turbines, and a storage battery.In this work, we trained and evaluated our ADHDP approach using different simulation scenarios with various amounts of available renewable energy. We then demonstrated via computer simulation that our approach is more effective in cost minimization compared to a standard rule-based method. A correlation between optimization improvement and available renewable energy was also confirmed by computer simulation in all scenarios.

Язык оригиналаEnglish
Название основной публикации2018 IEEE International Smart Cities Conference, ISC2 2018
ИздательInstitute of Electrical and Electronics Engineers Inc.
ISBN (электронное издание)9781538659595
DOI
СостояниеPublished - февр. 28 2019
Событие2018 IEEE International Smart Cities Conference, ISC2 2018 - Kansas City
Продолжительность: сент. 16 2018сент. 19 2018

Серия публикаций

Название2018 IEEE International Smart Cities Conference, ISC2 2018

Conference

Conference2018 IEEE International Smart Cities Conference, ISC2 2018
Страна/TерриторияUnited States
ГородKansas City
Период9/16/189/19/18

ЦУР ООН

Работа этого автора способствует достижению следующих Целей устойчивого развития

  1. Affordable and clean energy
    Affordable and clean energy

ASJC Scopus subject areas

  • Urban Studies
  • Computer Science Applications
  • Computer Networks and Communications

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