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Attribute reduction and optimal decision rules acquisition for continuous valued information systems

机译:连续值信息系统的属性约简和最优决策规则获取

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摘要

For continuous valued information systems, the attribute values of objects for the same attribute represent not only their ordinal relationship but also their relative distances. Therefore, the classical rough set model is not suitable for deducing attribute reductions and optimal decision rules for continuous valued information systems. Though some discretization methods are proposed to transform the continuous valued information systems into discrete ones, but those methods are too categorical and may lead to loss of information in some cases. To solve such information loss problem, we propose a tolerance rough set model in this paper. With a given level, the proposed model can divide a universe into some maximal tolerance classes. Also two types of lower and upper approximations are defined accordingly. Then the reductions of the maximal tolerance class and optimal decision rules based on the proposed attribute descriptors are defined, and the approximate discernibility function for the maximal tolerance class is constructed and used to compute all the corresponding optimal decision rules via using Boolean reasoning techniques. Finally, the general reductions and consistent reductions for continuous valued information systems are discussed.
机译:对于连续值信息系统,同一属性的对象的属性值不仅表示它们的顺序关系,还表示它们的相对距离。因此,经典的粗糙集模型不适用于推导连续值信息系统的属性约简和最优决策规则。尽管提出了一些离散化方法将连续值信息系统转化为离散值系统,但是这些方法过于分类,在某些情况下可能导致信息丢失。为了解决这种信息丢失问题,我们提出了一种容差粗糙集模型。在给定级别下,所提出的模型可以将Universe分为一些最大公差级别。相应地,还定义了上下近似的两种类型。然后,基于提出的属性描述符,定义了最大容忍度类别和最优决策规则的约简,并构造了最大容忍度类别的近似可分辨函数,并使用布尔推理技术将其用于计算所有相应的最优决策规则。最后,讨论了连续值信息系统的一般约简和一致约简。

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