Context Based- Tourism Recommender System: Towards Tourists' Context-Sensitive Preference Conceptual Model

Kusuma Adi Achmad, L. Nugroho, Achmad Diunaedi, Widyawan
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引用次数: 1

Abstract

With the fact that the Internet facilitates access to information, it will lead to creating information overload, particularly for travelers. It is hard for travelers to find the appropriate destination, and service providers to recommend the suitable destination. The paper aims to propose a context-sensitive preference conceptual model from the tourist's perspectives. Data collection was conducted by examining the literature review. The results show that the proposed solution is to filter information by using a recommender system. The system may need to be conducted by considering the tourists rating, collaboration, and products or services description. Further, the system should consider additional contextual information: location, time, social, and weather. Such a multidimensional context-based recommender system faces problems with the complexity of contextual data with many attributes used for filtering. Therefore, the additional contextual information on a context-based recommender system could be based on the expected contextual preferences. This model is derived from a contextual pre/post-filtering approach or contextual modeling.
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基于情境的旅游推荐系统:基于情境的游客偏好概念模型
由于互联网方便了人们获取信息,这将导致信息过载,尤其是对旅行者来说。旅行者很难找到合适的目的地,服务提供商也很难推荐合适的目的地。本文旨在从游客的角度提出一个语境敏感的偏好概念模型。通过文献综述进行资料收集。结果表明,本文提出的解决方案是利用推荐系统对信息进行过滤。该系统可能需要通过考虑游客评级、合作和产品或服务描述来执行。此外,系统应该考虑额外的上下文信息:位置、时间、社会和天气。这种基于上下文的多维推荐系统面临着上下文数据的复杂性问题,这些数据具有许多用于过滤的属性。因此,基于上下文的推荐系统上的附加上下文信息可以基于预期的上下文偏好。该模型派生自上下文前/后过滤方法或上下文建模。
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