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A Descriptive Framework for the Multidimensional Medical Data Mining and Representation

机译:多维医学数据挖掘和表示的描述性框架

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Problem statement: Association rule mining with fuzzy logic was explored by research for effective datamining and classification. Approach: It was used to find all the rules existing in the transactional database that satisfy some minimum support and minimum confidence constraints. Results: In this study, we propose new rule mining technique using fuzzy logic for mining medical data in order to understand and better serve the needs of Multidimensional Breast cancer Data applications. Conclusion: The main objective of multidimensional Medical data mining is to provide the end user with more useful and interesting patterns. Therefore, the main contribution of this study is the proposed and implementation of fuzzy temporal association rule mining algorithm to classify and detect breast cancer from the dataset.
机译:问题陈述:通过研究探索了具有模糊逻辑的关联规则挖掘,以进行有效的数据挖掘和分类。方法:用于查找事务数据库中存在的满足某些最小支持和最小置信度约束的所有规则。结果:在这项研究中,我们提出了一种使用模糊逻辑的新规则挖掘技术来挖掘医学数据,以了解并更好地满足多维乳腺癌数据应用程序的需求。结论:多维医学数据挖掘的主要目标是为最终用户提供更多有用和有趣的模式。因此,本研究的主要贡献是提出并实现了模糊时间关联规则挖掘算法,用于从数据集中对乳腺癌进行分类和检测。

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