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Academic Quality Management System Audit Using Artificial Intelligence Techniques

机译:学术质量管理体系使用人工智能技术审计

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Quality management systems are a challenge for higher education centers. Nowadays, there are different management systems, for instance: quality, environmental, information security, etc. that can be applied over education centers, but to implement all of them is not a guarantee of education quality because the educational process is very complex. However, a few years ago the Quality Management Systems for higher education centers are taking importance especially in Europe and North America, although in Latin America is an unexplored field. Higher education centers quality is a very complex problem because it is difficult to measure the quality since there are a lot of academic processes as enrollment, matriculation, teaching-learning with a lot of stakeholders as students, teachers, authorities even society; in a lot of locations as campuses, buildings, laboratories with different resources. Each process generates a lot of records and documentation. This information has a varied nature and it is present at a structured and no-structured form. In this context. artificial intelligence techniques can help us to analyze and management knowledge. Our work presents a new approach to audit academic information with machine learning and information retrieval. In our experiments, we used information about syllabus, grades, assessments and online content from a Latin American University. We conclude that using artificial intelligence techniques minimize the decision support time, it allows full data analysis instead of a data sample and it finds out patterns never seen in the case study university.
机译:质量管理系统对高等教育中心是一项挑战。如今,有不同的管理系统,例如:可以应用于教育中心的质量,环境,信息安全等,但要实施所有这些都不是教育质量的保证,因为教育过程非常复杂。然而,几年前,高等教育中心的质量管理系统尤其是在欧洲和北美的重要性,尽管在拉丁美洲是一个未开发的领域。高等教育中心质量是一个非常复杂的问题,因为难以衡量质量,因为有很多学术过程作为入学,预科,教学 - 学习与许多利益相关者作为学生,教师,当局甚至社会的教学。在许多地方作为校园,建筑物,具有不同资源的实验室。每个进程都生成很多记录和文档。该信息具有各种各样的性质,并以结构化和无结构形式存在。在这种情况下。人工智能技术可以帮助我们分析和管理知识。我们的工作提出了一种新的机器学习和信息检索学术信息的新方法。在我们的实验中,我们使用了关于拉丁美洲大学的教学大纲,成绩,评估和在线内容的信息。我们得出结论,使用人工智能技术最小化决策支持时间,它允许完全数据分析而不是数据样本,并发现在案例研究大学中从未见过的模式。

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