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首页> 外文期刊>Smart Grid, IEEE Transactions on >Observe, Learn, and Adapt (OLA)—An Algorithm for Energy Management in Smart Homes Using Wireless Sensors and Artificial Intelligence
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Observe, Learn, and Adapt (OLA)—An Algorithm for Energy Management in Smart Homes Using Wireless Sensors and Artificial Intelligence

机译:观察,学习和适应(OLA)-使用无线传感器和人工智能在智能家居中进行能量管理的算法

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摘要

The need for energy efficient and intelligent systemic solutions, has lead many researchers around the world to investigate and evaluate the existing technologies in order to create solutions that would be adopted for the near future intelligent homes and buildings, aiding in smart grid initiatives. In this paper an algorithm based on the adaptable learning system principles is presented. The proposed algorithm utilizes the adaptable learning system concepts. The Observe, Learn, and Adapt (OLA) algorithm proposed is the result of integration of wireless sensors and artificial intelligence concepts towards the same objective: adding more intelligence to a programmable communicating thermostat (PCT), for better energy management and conservation in smart homes. A house simulator was developed and used as an “expert system shell” to assist in implementation and verification of the OLA algorithm. The role of PCT is to provide consumer with a means to manage and reduce energy use, while accommodating their every day schedules, preferences and needs. In this paper, the actual results of learning and adaptability of a PCT equipped with OLA, as a result of the occupant's pattern/schedule changes, and in general, the overall system improvements with respect to energy consumption and savings are demonstrated via simulation for the zone controlled home equipped with OLA and Knowledge Base, versus a home without zone control, Knowledge Base nor OLA.
机译:对能源高效和智能系统解决方案的需求,已导致世界各地许多研究人员对现有技术进行调查和评估,以创建可在不久的将来实现智能家居和建筑物采用的解决方案,以支持智能电网计划。本文提出了一种基于自适应学习系统原理的算法。所提出的算法利用了自适应学习系统的概念。提出的观察,学习和适应(OLA)算法是无线传感器和人工智能概念朝着同一目标集成的结果:为可编程通信恒温器(PCT)添加更多智能,以实现智能家居中的更好能源管理和节能。开发了房屋模拟器并将其用作“专家系统外壳”,以协助实施和验证OLA算法。 PCT的作用是为消费者提供一种管理和减少能源使用的方法,同时适应他们每天的时间表,喜好和需求。在本文中,由于乘员的模式/时间表的变化,配备了OLA的PCT的学习和适应性的实际结果,以及总体上,通过仿真模拟展示了整个系统在能耗和节约方面的改进。装有OLA和知识库的区域控制房屋,而没有区域控制,知识库或OLA的房屋。

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