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首页> 外文期刊>International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences >ON THE CHALLENGE OF SERVICE RECOMMENDATION TO MOBILE USERS IN SMART CITIES: CONTEXT AND ARCHITECTURE
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ON THE CHALLENGE OF SERVICE RECOMMENDATION TO MOBILE USERS IN SMART CITIES: CONTEXT AND ARCHITECTURE

机译:关于智能城市移动用户的服务推荐挑战:背景和架构

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The industrial and academic interest of the research on mobile service recommendation systems based on a wide range of potential applications has significantly increased, owing to the rapid progress of mobile technologies. These systems aim to recommend the right product, service or information to the right mobile users at anytime and anywhere. In smart cities, recommending such services becomes more interesting but also more challenging due to the wide range of information that can be obtained on the user and his surrounding. This quantity and variety of information create problems in terms of processing as well as the problem of choosing the right information to use to offer services. We consider that to provide personalized mobile services in a smart city and know which information is relevant for the recommendation process, identifying and understanding the context of the mobile user is the key.This paper aims to address the issue of recommending personalized mobile services in smart cities by considering two steps: defining the context of the mobile user and designing an architecture of a system that can collect and process context data. Firstly, we propose an UML-based context model to show the contextual parameters to consider in recommending mobile services in a smart city. The model is based on three main classes from which others are divided: the user, his device and the environment. Secondly, we describe a general architecture based on the proposed context model for the collection and processing of context data.
机译:由于移动技术的快速进展,基于各种潜在应用的移动服务推荐系统研究的工业和学术兴趣显着增加。这些系统旨在在随时随地向右移动用户推荐合适的产品,服务或信息。在智能城市中,由于可以在用户和周围获得的广泛信息,建议这些服务变得更加有趣,但也更具挑战性。此数量和各种信息在处理方面产生问题以及选择用于提供服务的正确信息的问题。我们认为,在智能城市提供个性化的移动服务,并知道哪些信息与推荐过程相关,识别和了解移动用户的上下文是关键。本文旨在解决智能推荐个性化移动服务的问题通过考虑两个步骤:定义移动用户的上下文并设计可以收集和处理上下文数据的系统的架构。首先,我们提出了一种基于UML的上下文模型,以显示在智能城市推荐移动服务时要考虑的上下文参数。该模型基于其他三个主要类,其中其他主要类是:用户,设备和环境。其次,我们基于所提出的上下文模型来描述一个常规架构,用于收集和处理上下文数据。

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