用模糊数据挖掘评价禁食对心血管疾病的营养作用

Mostafa Abbasi Joshaghan, A. Kamyad, A. Razavi, A. Norouzy
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引用次数: 3

摘要

导读:信息技术和数据收集方法的进步使高速采集和存储海量数据成为可能。数据挖掘可用于从大量数据及其特征中得出规律。类似地,模糊逻辑通过促进对事件的理解被认为是对科学数据挖掘的适当补充。方法:本研究采用聚类方法识别数据的独立特征。定义了相关的模糊集、语言变量和数据分类,并根据有用结果提取的特征引入了索引。结合疾病危险因素,对结果进行分析。结果:确定了影响健康改善或恶化的两个因素:“年龄”和“胰岛素水平与血糖之间的适当或不适当”。此外,根据研究结果,禁食对血液中的脂肪物质(胆固醇和甘油三酯)有积极的影响。结论:结果可以帮助我们确定患有心血管疾病的个体是否应该在斋月禁食。然而,由于某些特征(如血压)全天的变化,一些输入数据存在不确定性;因此,结果可能与现实相去甚远。如果可以生成模糊数据,那么我们可以得到更准确的结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Evaluation of the nutritional effects of fasting on cardiovascular diseases, using fuzzy data mining
Introduction: Advances in information technology and data collection methods have enabled high-speed collection and storage of huge amounts of data. Data mining can be used to derive laws from large data volumes and their characteristics. Similarly, fuzzy logic by facilitating the understanding of events is considered a suitable complement to scientific data mining. Methods: The present study used clustering to identify the independent characteristics of data. Related fuzzy sets, linguistic variables, and data classifications were defined, and the index was introduced based on the characteristics extracted from useful results. By considering the disease risk factors, the results were analyzed. Results: Two factors contributing to the health improvement or deterioration were defined: ‘age’ and ‘the appropriateness or inappropriateness between insulin level and blood sugar’. In addition, according to the results, fasting had a positive effect on fatty substances of the blood (cholesterol and triglycerides). Conclusion: The results can help us determine whether or not an individual with a cardiovascular disease should fast in the month of Ramadan. However, due to variations in some features such as blood pressure throughout the day, there are uncertainties in some input data; therefore, the results could be far from reality. If it is possible to generate fuzzy data, then we can obtain more accurate results.
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