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A system for energy conservation through personalized learning mechanism

机译:通过个性化学习机制实现节能的系统

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Several challenges exist in developing smart buildings such as the development of context aware algorithms and real-time control systems, the integration of numerous sensors to detect various parameters, integration changes in the existing electrical infrastructure, and high cost of deployment. Another major challenge is to optimize the energy usage in smart buildings without compromising the comfort level of individuals. However, the success of this task requires in depth knowledge of the individual and group behaviour inside the smart building. To solve the aforementioned challenges, we have designed and developed a Smart Personalised System for Energy Management (SPSE), a low cost context aware system integrated with personalized and collaborative learning capabilities to understand the real-time behaviour of individuals in a building for optimizing the energy usage in the building. The context aware system constitutes a wearable device and a wireless switchboard that can continuously monitor several functions such as the real-time monitoring and localization of the presence of the individual, real-time monitoring and detection of the usage of switch board and equipment, and their time of usage by each individual. Using the continuous data collected from the context aware system, personalized and group algorithms can be developed for optimizing the energy usage with minimum sensors. In this work, the context aware system was tested extensively for module performance and for complete integrated device performance. The study found the proposed system provides the opportunity to collect data necessary for developing a personalized system for smart buildings with minimum sensors.
机译:在开发智能建筑时,存在一些挑战,例如上下文感知算法和实时控制系统的开发,用于检测各种参数的大量传感器的集成,现有电气基础设施中的集成变化以及高昂的部署成本。另一个主要挑战是在不损害个人舒适度的前提下优化智能建筑中的能源使用。但是,此任务的成功需要深入了解智能建筑内部的个人和团体行为。为了解决上述挑战,我们设计并开发了智能个性化能源管理系统(SPSE),这是一种低成本的情境感知系统,集成了个性化和协作式学习功能,可以了解建筑物中个人的实时行为,从而优化能源管理。建筑中的能源消耗。情境感知系统由可穿戴设备和无线总机组成,它们可以连续监控多种功能,例如实时监控和定位个人的存在,实时监控和检测配电盘和设备的使用,以及每个人的使用时间。使用从情境感知系统收集的连续数据,可以开发个性化和分组算法,以使用最少的传感器优化能源使用。在这项工作中,对上下文感知系统进行了广泛的模块性能和完整集成设备性能测试。研究发现,拟议的系统为收集具有最少传感器的智能建筑个性化系统提供了必要的数据收集机会。

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