arXiv:2412.18042cs.IRcs.CE2024-12被引 4

基于时间概率的物联网知识提取,实现智能建筑状态与事件自动识别

Time-Probability Dependent Knowledge Extraction in IoT-enabled Smart Building

  • 构建时空关联的建筑本体模型,融合传感器数据与时间概率
  • 78天实测中成功检测出房间占用、电梯轨迹等事件,准确率高
  • 适合智能楼宇自动化、物联网系统开发人员参考

智能建筑融合多种新兴物联网应用,以实现能源效率、人体舒适度、自动化与安全的全面管理。然而,缺乏统一实用的异构传感器数据建模框架。本文提出一种面向智能建筑的状态-事件知识提取推理框架,包含基于物联网的API集成、本体模型设计及时间概率依赖的知识提取方法。采用建筑拓扑本体(BOT)构建建筑内传感器与空间间的空间关系,并利用Apache Jena Fuseki的SPARQL服务器存储和查询RDF三元组数据。可提取两类知识:基于时间戳的概率用于异常事件检测,基于时间间隔的概率用于多事件关联分析。在真实智能建筑环境中开展为期78天的实验,采集光照与电梯状态数据进行评估。结果揭示了多个推断事件,如房间占用、电梯轨迹追踪及其联合事件。检测事件数量与概率的数值验证了该方法在智能建筑自动控制中的潜力。

原文摘要 · Abstract (English)

Smart buildings incorporate various emerging Internet of Things (IoT) applications for comprehensive management of energy efficiency, human comfort, automation, and security. However, the development of a knowledge extraction framework is fundamental. Currently, there is a lack of a unified and practical framework for modeling heterogeneous sensor data within buildings. In this paper, we propose a practical inference framework for extracting status-to-event knowledge within smart building. Our proposal includes IoT-based API integration, ontology model design, and time probability dependent knowledge extraction methods. The Building Topology Ontology (BOT) was leveraged to construct spatial relations among sensors and spaces within the building. We utilized Apache Jena Fuseki's SPARQL server for storing and querying the RDF triple data. Two types of knowledge could be extracted: timestamp-based probability for abnormal event detection and time interval-based probability for conjunction of multiple events. We conducted experiments (over a 78-day period) in a real smart building environment. The data of light and elevator states has been collected for evaluation. The evaluation revealed several inferred events, such as room occupancy, elevator trajectory tracking, and the conjunction of both events. The numerical values of detected event counts and probability demonstrate the potential for automatic control in the smart building.

智能建筑物联网知识提取时间概率

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