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Big data analysis of public library operations and services by using the Chernoff face method

机译:使用Chernoff人脸法对公共图书馆运营和服务进行大数据分析

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Purpose - The purpose of this paper is to conduct a big data analysis of public library operations and services of two cities in two countries by using the Chernoff face method. Design/methodology/approach - The study is designed to evaluate library services by analyzing the Chernoff face. Big data on public libraries in London and Seoul were collected, respectively, from Chartered Institute of Public Finance and Accountancy and the Korean government's website for drawing a Chernoff face. The association of variables and human facial features was decided by survey. Although limited in its capacity to handle a large number of variables (eight were analyzed in this study) the Chernoff face method does readily allow for the comparison of a large number of instances of analysis. A total of 58 Chernoff faces were drawn from the formatted data by using the R programming language. Findings - The study reveals that most of the local governments in London perform better than those of Seoul. This consequence is due to the fact that local governments in London operate more libraries, invest more budgets, allocate more staff and hold more collections than local governments in Seoul. This administration resulted in more use of libraries in London than Seoul. The study validates the benefit of using the Chernoff face method for big data analysis of library services. Practical implications - The Chernoff face method for big data analysis offers a new evaluation technique for library services and provides insights that may not be as readily apparent and discernible using more traditional analytical methods. Originality/value - This study is the first to use the Chernoff face method for big data analysis of library services in library and information research.
机译:目的-本文的目的是使用Chernoff面孔法对两个国家两个城市的公共图书馆的运营和服务进行大数据分析。设计/方法/方法-该研究旨在通过分析Chernoff面孔来评估图书馆服务。分别从特许公共财政与会计学会和韩国政府的网站上收集了伦敦和汉城公共图书馆的大数据,以绘制切尔诺夫的面孔。变量和人脸特征的关联由调查决定。尽管处理大量变量的能力有限(在本研究中分析了八个变量),但切尔诺夫面方法确实可以轻松比较大量分析实例。使用R编程语言从格式化数据中总共绘制了58张Chernoff面孔。调查结果-该研究表明,伦敦大多数地方政府的表现都优于首尔。造成这种结果的原因是,伦敦的地方政府比首尔的地方政府拥有更多的图书馆,投入更多的预算,分配更多的人员并拥有更多的馆藏。这项管理导致伦敦使用的图书馆数量超过了首尔。这项研究证实了使用Chernoff人脸法进行图书馆服务大数据分析的好处。实际意义-大数据分析的Chernoff人脸方法为图书馆服务提供了一种新的评估技术,并提供了使用更传统的分析方法可能不那么显而易见和可辨别的见解。原创性/价值-这项研究是首次使用Chernoff面孔法对图书馆服务和信息研究中的图书馆服务进行大数据分析。

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