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首页> 外文期刊>International journal of web information systems >Ontology-based activity recognition in intelligent pervasive environments
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Ontology-based activity recognition in intelligent pervasive environments

机译:智能普适环境中基于本体的活动识别

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Purpose - This paper aims to serve two main purposes. In the first instance it aims to it provide an overview addressing the state-of-the-art in the area of activity recognition, in particular, in the area of object-based activity recognition. This will provide the necessary material to inform relevant research communities of the latest developments in this area in addition to providing a reference for researchers and system developers who ware working towards the design and development of activity-based context aware applications. In the second instance this paper introduces a novel approach to activity recognition based on the use of ontological modeling, representation and reasoning, aiming to consolidate and improve existing approaches in terms of scalability, applicability and easy-of-use. Design/methodology/approach - The paper initially reviews the existing approaches and algorithms, which have been used for activity recognition in a number of related areas. From each of these, their strengths and weaknesses are discussed with particular emphasis being placed on the application domain of sensor enabled intelligent pervasive environments. Based on an analysis of existing solutions, the paper then proposes an integrated ontology-based approach to activity recognition. The proposed approach adopts ontologies for modeling sensors, objects and activities, and exploits logical semantic reasoning for the purposes of activity recognition. This enables incremental progressive activity recognition at both coarse-grained and fine-grained levels. The approach has been considered within the realms of a real world activity recognition scenario in the context of assisted living within Smart Home environments.rnFindings - Existing activity recognition methods are mainly based on probabilistic reasoning, which inherently suffer from a number of limitations such as ad hoc static models, data scarcity and scalability. Analysis of the state-of-the-art has helped to identify a major gap between existing approaches and the need for novel recognition approaches posed by the emerging multimodal sensor technologies and context-aware personalised activity-based applications in intelligent pervasive environments. The proposed ontology based approach to activity recognition is believed to be the first of its kind, which provides an integrated framework-based on the unified conceptual backbone, i.e. activity ontologies, addressing the lifecycle of activity recognition. The approach allows easy incorporation of domain knowledge and machine understandability, which facilitates interoperability, reusability and intelligent processing at a higher level of automation.rnOriginality/value - The comprehensive overview and critiques on existing work on activity recognition provide a valuable reference for researchers and system developers in related research communities. The proposed ontology-based approach to activity recognition, in particular the recognition algorithm has been built on description logic based semantic reasoning and offers a promising alternative to traditional probabilistic methods. In addition, activities of daily living (ADL) activity ontologies in the context of smart homes have not been, to the best of one's knowledge, been produced elsewhere.
机译:目的-本文旨在达到两个主要目的。首先,它旨在提供概述,以解决活动识别领域,尤其是基于对象的活动识别领域中的最新技术。除了为致力于基于活动的上下文感知应用程序的设计和开发的研究人员和系统开发人员提供参考之外,这还将提供必要的材料来向相关研究社区通报该领域的最新发展。在第二个实例中,本文介绍了一种基于本体建模,表示和推理的活动识别新方法,旨在在可伸缩性,适用性和易用性方面巩固和改进现有方法。设计/方法/方法-本文首先回顾了现有的方法和算法,这些方法已在许多相关领域用于活动识别。从以上每个方面,都讨论了它们的优点和缺点,并特别强调了启用传感器的智能普及环境的应用领域。在对现有解决方案进行分析的基础上,本文提出了一种基于本体的集成的活动识别方法。所提出的方法采用本体对传感器,对象和活动进行建模,并利用逻辑语义推理来进行活动识别。这样就可以在粗粒度和细粒度级别上逐步进行渐进式活动识别。在智能家居环境中的辅助生活环境下,已在现实世界中的活动识别方案的范围内考虑了该方法。rn发现-现有的活动识别方法主要基于概率推理,其固有地受许多限制(例如广告)的影响hoc静态模型,数据稀缺性和可伸缩性。对最新技术的分析已帮助确定了现有方法与新兴的多模态传感器技术和智能普及环境中基于情境感知的个性化基于活动的应用对新颖识别方法的需求之间的重大差距。据信,所提出的基于本体的活动识别方法是第一类,其提供了基于统一概念主干即活动本体的集成框架,从而解决了活动识别的生命周期。该方法可以轻松整合领域知识和机器可理解性,从而在更高的自动化水平上促进互操作性,可重用性和智能处理。原始性/价值-有关活动识别的现有工作的全面概述和评论为研究人员和系统提供了有价值的参考相关研究社区的开发人员。所提出的基于本体的活动识别方法,特别是基于基于描述逻辑的语义推理的识别算法,为传统的概率方法提供了有希望的替代方法。此外,就智能家居而言,就其他方面而言,还没有产生过智能家居中的日常生活活动本体。

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