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An Incomplete Data Analysis Approach Based on the Rough Set Theory and Divide-and-Conquer Idea

机译:基于粗糙集理论与划分征求理念的不完全数据分析方法

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Data missing is inevitable in practical fields, how to analyze these incomplete data more efficient is important for data mining. Many methods such as statistical strategy are generally used, but all have some faults. The approach based on rough set theory is proved to be more excellent, but the existed method is still not perfect. This paper extends the valued tolerance relation in rough set theory, introduces divide-and-conquer idea, and accordingly proposes a new incomplete data analysis approach "RSDIDA". This approach more fully utilizes the potential knowledge and laws suggested by the data in information system, can give better completeness analysis to incomplete data, and enhance the efficiency greatly. Experimental result demonstrates its superiority, and it can be adopted as a pre-processing method in data mining.
机译:在实用领域中缺少的数据是不可避免的,如何分析这些不完整的数据更有效对数据挖掘是重要的。通常使用许多方法,例如统计策略,但都有一些故障。基于粗糙集理论的方法被证明更优秀,但存在的方法仍然不完美。本文延长了粗糙集理论中具有值的公差关系,介绍了鸿沟和征服的想法,因此提出了一种新的不完整数据分析方法“RSDIDA”。这种方法更充分利用信息系统中数据建议的潜在知识和法律,可以更好地对不完整的数据进行完整性分析,并大大提高效率。实验结果表明其优越性,可以作为数据挖掘的预处理方法。

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