基于本体的神经网络和DEA发现酒店服务的不足

IF 4.1 4区 计算机科学 Q2 COMPUTER SCIENCE, ARTIFICIAL INTELLIGENCE International Journal on Semantic Web and Information Systems Pub Date : 2022-01-01 DOI:10.4018/ijswis.306748
T. Chiang, Z. Che, Yi-Ling Huang, Chang-You Tsai
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引用次数: 4

摘要

公司可以通过挖掘社交媒体获得对客户需求和服务评估的关键实时洞察。为了获取酒店服务绩效,改善酒店服务不足,本研究提出了基于基准的酒店服务绩效评价模型,使酒店管理者能够对酒店服务绩效进行评估。在非基准服务酒店的情况下,非基准标准的识别和改进模型可以识别和分析非基准标准的绩效改进所需的数量。为了了解服务不足的原因,本研究通过对网上帖子的挖掘,建立了酒店服务不足的层次本体。提出了一种基于层次本体的神经网络来自动识别服务缺陷的原因。本研究以网络论坛为案例,对服务不足原因的识别准确率达到92.68%。分析结果证明了该方法的有效性和实用价值。
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Using an Ontology-Based Neural Network and DEA to Discover Deficiencies of Hotel Services
Companies can gain critical real-time insights into customer requirements and service evaluation by mining social media. To acquire the service performance and improve the service deficiencies for hotels, this research proposes a benchmark-based performance evaluation model for hotel service to enable hotel managers to assess the service performance. In the case of non-benchmark service hotels, the identification and improvement model for non-benchmark criteria can recognize and analyze the required quantities of performance improvements for non-benchmark criteria. For understanding the causes of service deficiencies, this research mines the online posts and creates a hierarchical ontology of service deficiencies for hotels. A hierarchical ontology-based neural network is proposed to automatically identify the causes of service deficiencies. This study employs an online forum as a case to achieve the identification accuracy of causes of service deficiencies of 92.68%. The analytical result can demonstrate the significant effectiveness and practical value of the proposed methodology.
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来源期刊
CiteScore
6.20
自引率
12.50%
发文量
51
审稿时长
20 months
期刊介绍: The International Journal on Semantic Web and Information Systems (IJSWIS) promotes a knowledge transfer channel where academics, practitioners, and researchers can discuss, analyze, criticize, synthesize, communicate, elaborate, and simplify the more-than-promising technology of the semantic Web in the context of information systems. The journal aims to establish value-adding knowledge transfer and personal development channels in three distinctive areas: academia, industry, and government.
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