基于多规则算法的决策:一规则算法的扩展

A. Seth, K. Seth
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引用次数: 0

摘要

挖掘是在庞大的数据库中搜索数据,从中推断出有用信息,并推导出关系和模式的过程。虽然我们可以手动地从数据库中预测某些模式,但是一旦数据大小增加(以tb为单位),从庞大的数据库(或数据仓库)中推断重要信息就变得困难和繁琐。存在各种数据挖掘算法来识别数据中可能的模式。规则算法就是这样一种算法,但它只能基于一个属性对规则进行分类。本文对1Rule算法进行了扩展,基于多个属性对更多的规则进行分类,从而使公司做出更准确的决策或预测,从而提高收益,降低成本。1Rule基于一个属性为数据创建一个规则,在比较所有属性的错误率后,它选择给出最低分类错误的规则。在我们的工作中,我们通过考虑最低的错误属性作为新的分类属性来识别和创建基于多个属性的更多规则。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Decision Making through Multi Rule Algorithm: An Extension to 1 Rule Algorithm
Mining is a process of searching data in huge database to infer useful information and deduces relationships and patterns. Though we can predict certain patterns from our database manually, but as soon as size of data increases (becomes in terabytes) it becomes difficult and tedious to deduce the important information from huge database (or data warehouse). Various data-mining algorithms exist to identify possible patterns in data. 1Rule algorithm is one such algorithm but is capable of classifying rule based on only one attribute. This paper extends 1Rule algorithm by classifying more rules based on multiple attributes, so that more accurate decision or prediction are made thereby improving revenue and reducing costs in a company. 1Rule creates a rule for a data based on one attribute, it chooses the rule that gives the lowest classification error after comparing the error rates from all the attributes. In our work we identified and create more rules based on multiple attributes by considering the lowest error attribute as the new classified attribute.
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