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A multi-layer contextual model for recommender systems in digital libraries

机译:数字图书馆中推荐系统的多层上下文模型

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Purpose - The aim of this paper is to investigate contextual information that has an impact on the process of selection and decision making in recommender systems (RSs) in digital libraries. Design/methodology/approach - Using a grounded theory method of qualitative research, semi-structured interviews were carried out with 22 information specialists, and IT and computer engineering students and professors. Data resulting from interviews were analysed in two stages using open coding, followed by axial and selective coding. Findings - The central idea (concept) developed in this study, named scientific research ground (SRG), is an information ground users step into with scholarly purposes. Within SRG they start interacting with information systems. SRG has contexts which situate users in a range of situations while interacting with information systems. Users' characteristics such as purpose, activity, literacy, mental state, expectations, and assumptions, occupational and social status are some contexts that should be taken into account for making a recommendation. Research limitations/implications - This study sought to explore contextual information in the academic community and the academic contextual information cannot be generalized to RSs in other environments such as e-commerce. Practical implications - Identifying and implementing contextual information in information systems can help make better recommendations as well as improve interaction between users and information systems. Originality/value - Based on the SRG idea and its contexts, a multi-layer contextual model for a recommender system is proposed.
机译:目的-本文的目的是研究对数字图书馆推荐系统(RSs)的选择和决策过程有影响的上下文信息。设计/方法/方法-使用定性研究的扎实理论方法,对22位信息专家以及IT和计算机工程专业的学生和教授进行了半结构化访谈。访谈产生的数据使用开放编码分两个阶段进行分析,然后进行轴向编码和选择性编码。调查结果-本研究中提出的中心思想(概念)被称为科学研究场(SRG),是用户出于学术目的而进入的信息。在SRG中,他们开始与信息系统进行交互。 SRG的上下文使用户在与信息系统进行交互时处于各种情况下。用户的特征(例如目的,活动,素养,心理状态,期望和假设,职业和社会地位)是提出建议时应考虑的一些环境。研究局限性/含意-本研究试图在学术界中探索情境信息,并且学术情境信息不能推广到其他环境(例如电子商务)中的RS。实际的意义-在信息系统中识别和实现上下文信息可以帮助提出更好的建议,并改善用户与信息系统之间的交互。创意/价值-基于SRG概念及其上下文,提出了推荐系统的多层上下文模型。

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