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Analysis of Online News Popularity and Bank Marketing Using ARSkNN

机译:使用Arsknn分析在线新闻流行和银行营销

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Data mining is a process of evaluating practice of examining large preexisting databases in order to generate new information. The amount of data has been growing at an enormous rate ever since the development of computers and information technology. Many methods and algorithms have been developed in the last half-century to evaluate data and extract useful information to help develop faster. Due to the wide variety of algorithms and different approaches to evaluate data, several algorithms are compared. The performance of any algorithm on a particular dataset cannot be predicted without evaluating it with the same constraints and parameters. The following paper is a comparison between the trivial kNN algorithm and the newly proposed ARSkNN algorithm on classifying two datasets and subsequently evaluating their performance on average accuracy percentage and average runtime parameters.
机译:数据挖掘是评估检查大型预先存在的数据库的实践的过程,以便生成新信息。自计算机和信息技术的开发以来,数据的数据量以巨大的速度增长。在过去的半个世纪中已经开发了许多方法和算法,以评估数据并提取有用信息以帮助更快地发展。由于各种算法和评估数据的不同方法,比较了几种算法。在特定数据集上的任何算法的性能都无法预测,而无需使用相同的约束和参数进行评估。以下论文是琐碎的KNN算法与新提议的ARSKN算法在分类两个数据集时,随后在平均精度百分比和平均运行时参数上评估它们的性能。

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