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Classification Model Induction Based on User Preferences

机译:基于用户偏好的分类模型诱导

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摘要

The data mining has been influential in gathering information and data in the work of organizations and business, medical, engineering etc. The strength of data mining is the help in the matter of technique in information management. This technique can be used to find important information along with other information. This paper proposes highlight of the classification for the data in each group to work in the field of medicine that is useful for clinicians and patients that may communicate through the model made from data mining, such as "How much the amount of sugar in the blood of patients to be a risk of diabetes?". It can be output in the form of decision trees. But when we want to know just some of the information, a whole decision tree is superfluous. This research has focused on this point of knowledge reduction. We will use the method of logic programming to imitate the functionality of data mining to extract patterns from data taken from real sources. The results of pattern extraction will be in the form of rules. We increase efficiency of knowledge navigation by allowing users to specify constraints or preferences, which will help in the selection of specific rules of interest. Our methodology can enhance the search for answers, as well as reduce the time to locate all the rules.
机译:数据挖掘已经在组织和商业,医疗工作收集信息和数据,工程等数据挖掘的优势在于能够在技术在信息管理问题的帮助有影响。该技术可用于查找其他信息的重要信息。本文提出的分类为每个组在医学领域的工作数据的亮点是临床医生和患者认为可以通过从数据挖掘所做的模型沟通,如“多少的血液中的糖量有用的患者是糖尿病的风险?”。它可以在决策树的形式输出。但是,当我们只想一些资料知道,整个决策树是多余的。这项研究集中在这个知识点减少。我们将使用逻辑编程的方法,从实际来源获取的数据模拟数据挖掘的功能,以提取模式。图案提取的结果将是规则的形式。我们通过允许用户指定的限制或偏好,这将在感兴趣的特定规则的选择有助于提高知识导航的效率。我们的方法可以增强答案的搜索,以及减少查找所有规则的时间。

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