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Analysis of air quality data in Mexico city with clustering techniques based on genetic algorithms

机译:基于遗传算法的聚类技术分析墨西哥城市空气质量数据

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Data analysis is extremely important, because through this process we can infer knowledge. Clustering is a technique for analyzing features, where there are not defined groups. This technique allows us to analyze the behavior of the information and characteristics by using a similarity measure. However, for processing large amounts of data, the use of classical clustering techniques is time consuming. For this reason is necessary to propose hybrid algorithms that combine computational strategies in order to find an optimal solution. An optimization strategy used frequently by the community is the genetic algorithms, this technique is inspired on the evolutionary theory.
机译:数据分析非常重要,因为通过这个过程我们可以推断知识。群集是一种用于分析功能的技术,其中没有定义的组。该技术允许我们通过使用相似度量来分析信息和特征的行为。但是,为了处理大量数据,使用经典聚类技术是耗时的。出于这个原因,必须提出结合计算策略的混合算法以找到最佳解决方案。社区经常使用的优化策略是遗传算法,这种技术受到进化理论的启发。

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