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首页> 外文期刊>International Journal of Contemporary Hospitality Management >Evaluating a guest satisfaction model through data mining
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Evaluating a guest satisfaction model through data mining

机译:通过数据挖掘评估客户满意度模型

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PurposeThis paper aims to propose a data mining approach to evaluate a conceptual model in tourism, encompassing a large data set characterized by dimensions grounded on existing literature.Design/methodology/approachThe approach is tested using a guest satisfaction model encompassing nine dimensions. A large data set of 84 k online reviews and 31 features was collected from TripAdvisor. The review score granted was considered a proxy of guest satisfaction and was defined as the target feature to model. A sequence of data understanding and preparation tasks led to a tuned set of 60k reviews and 29 input features which were used for training the data mining model. Finally, the data-based sensitivity analysis was adopted to understand which dimensions most influence guest satisfaction.FindingsPrevious user's experience with the online platform, individual preferences, and hotel prestige were the most relevant dimensions concerning guests' satisfaction. On the opposite, homogeneous characteristics among the Las Vegas hotels such as the hotel size were found of little relevance to satisfaction.Originality/valueThis study intends to set a baseline for an easier adoption of data mining to evaluate conceptual models through a scalable approach, helping to bridge between theory and practice, especially relevant when dealing with Big Data sources such as the social media. Thus, the steps undertaken during the study are detailed to facilitate replication to other models.
机译:目的旨在提出一种数据采矿方法来评估旅游中的概念模型,包括尺寸以现有文学为基础的大规模数据集.Design/methodology/Approach方法使用包括九个维度的客人满意模型进行测试。来自TripAdvisor的大型数据集84 k在线评论和31个功能。授予的审核评分被视为客人满意的代理,被定义为模型的目标功能。一系列数据理解和准备任务导致了调整的60千万的评论和29个输入功能,用于训练数据挖掘模型。最后,采用基于数据的敏感性分析来了解最多影响的尺寸最受影响的客户满意度.FindingsPrevious用户在线平台,个人偏好和酒店声望的体验是嘉宾满意度的最相关的尺寸。在相反的是,酒店大小的拉斯维加斯酒店之间的同质特征被发现与满意度很少相关。敏捷/ valeethis学习意图设定一个易于采用的数据挖掘来评估通过可扩展方法来评估概念模型的基线,帮助在理论与实践之间桥梁,特别是在处理社交媒体等大数据来源时相关的。因此,研究期间进行的步骤详细促进对其他模型的复制。

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