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An Improved Algorithm for Dynamic Cognitive Extraction Based on Fuzzy Rough Set

机译:基于模糊粗糙集的动态认知提取改进算法

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摘要

Modern science is increasingly data-driven and collaborative in nature. Comparing to ordinary data processing, big data processing that is mixed with great missing date must be processed rapidly. The Rough Set was generated to deal with the large data.In this paper, we proposed animproved algorithm for dynamic Cognitive extractionwhich deals with adaptive fuzzy attribute values and the fuzzy attribute reduction aiming at uncertainty datasuch asdata with diversity or missing character faced by the big data with using Fuzzy Rough Set Theory.At the aspect of information decision, according to the Real-time input information, it deep analyzes the dynamic information entropy of the data itself and chooses the biggest prediction information entropy direction for the cognitive rules to achieve rapid recognitive of data, complete information of quick decision.Because the algorithm is adopted to predict the best direction of information entropy, so the recognitive effect is also improved. At the end of the paper, we have analyzed superiority of the dynamic cognitive algorithm by using breast cancer data as the foundation.
机译:本质上,现代科学越来越由数据驱动和协作。与普通数据处理相比,必须迅速处理混合了大丢失日期的大数据处理。本文提出了一种改进的动态认知提取算法,该算法针对不确定性数据(如大数据面临的多样性或字符缺失的数据)处理自适应模糊属性值和模糊属性约简。在信息决策方面,根据实时输入信息,对数据本身的动态信息熵进行深入分析,为认知规则选择最大的预测信息熵方向,以实现快速识别。通过采用该算法预测信息熵的最佳方向,从而提高了识别效果。最后,我们以乳腺癌数据为基础,分析了动态认知算法的优越性。

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