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通过逻辑分析构建用户模型。

Composing user models through logic analysis.

作者信息

Bergeron B P, Shiffman R N, Rouse R L, Greenes R A

机构信息

Harvard Medical School, Department of Radiology, Brigham and Women's Hospital, Boston, Massachusetts.

出版信息

Proc Annu Symp Comput Appl Med Care. 1991:681-5.

Abstract

The evaluation of tutorial strategies, interface designs, and courseware content is an area of active research in the medical education community. Many of the evaluation techniques that have been developed (e.g., program instrumentation), commonly produce data that are difficult to decipher or to interpret effectively. We have explored the use of decision tables to automatically simplify and categorize data for the composition of user models--descriptions of student's learning styles and preferences. An approach to user modeling that is based on decision tables has numerous advantages compared with traditional manual techniques or methods that rely on rule-based expert systems or neural networks. Decision tables provide a mechanism whereby overwhelming quantities of data can be condensed into an easily interpreted and manipulated form. Compared with conventional rule-based expert systems, decision tables are more amenable to modification. Unlike classification systems based on neural networks, the entries in decision tables are readily available for inspection and manipulation. Decision tables, descriptions of observations of behavior, also provide automatic checks for ambiguity in the tracking data.

摘要

对辅导策略、界面设计和课件内容的评估是医学教育界一个活跃的研究领域。已开发出的许多评估技术(例如程序监测)通常会产生难以解读或有效解释的数据。我们探索了使用决策表来自动简化数据并将其分类,以构建用户模型,即对学生学习风格和偏好的描述。与传统的手工技术或依赖基于规则的专家系统或神经网络的方法相比,基于决策表的用户建模方法具有许多优势。决策表提供了一种机制,通过它可以将大量数据浓缩成易于解释和操作的形式。与传统的基于规则的专家系统相比,决策表更易于修改。与基于神经网络的分类系统不同,决策表中的条目易于检查和操作。决策表作为行为观察的描述,还能对跟踪数据中的模糊性进行自动检查。

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