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Decision Support System for International Trade Analysis using FuzzyC4.5 based Predictive Analytics

机译:基于Fuzzyc4.5的预测分析,决策支持系统进行国际贸易分析

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It is really tough to manually examine the raw data. The Datamining strategies are used to detect the applicable information from uncooked data. The data mining algorithms are efficient for retrieving a specific pattern. In Datamining techniques decision trees are the most commonly used methods for predicting the outcome or behavior of a pattern because they can successfully and efficiently visualize the facts. Presently several decision tree algorithms are advanced for predictive analysis. Right here we gathered a dataset for rubberized mattress, from coir board CCRI, and applied the several decision tree algorithms on the data set and as compared every one. Every set of rules gives a completely unique choice tree from the input statistics. This paper focuses in particular on the Fuzzy c4.5 set of rules and compares one-of-a-kind choice tree algorithms for predictive analysis. Here by using predictive analytics, a decision can be made for each rubberized firms.
机译:手动检查原始数据真的很难。 DataMining策略用于检测未煮过数据的适用信息。数据挖掘算法对于检索特定模式是有效的。在Datamining技术中,决策树是最常用的方法,用于预测模式的结果或行为,因为它们可以成功和有效地可视化事实。目前,几个决策树算法是先进的预测分析。就在这里,我们收集了橡胶床垫的数据集,来自COR板CCRI,并在数据集上应用了几个决策树算法,并比较了每个决策树算法。每组规则都提供了完全独特的选择树从输入统计信息。本文尤其侧重于模糊C4.5规则集,并比较了一种用于预测分析的单类选择树算法。这里通过使用预测分析,可以为每个橡胶公司进行决定。

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