SNN Input Parameters: How Are They Related?

Guilherme Moreira, M. Y. Santos, J. Pires
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引用次数: 13

Abstract

Nowadays, organizations are facing several challenges when they try to analyze generated data with the aim of extracting useful information. This analytical capacity needs to be enhanced with tools capable of dealing with big data sets without making the analytical process a difficult task. Clustering is usually used, as this technique does not require any prior knowledge about the data. However, clustering algorithms usually require one or more input parameters that influence the clustering process and the results that can be obtained. This work analyses the relation between the three input parameters of the SNN (Shared Nearest Neighbor) algorithm and proposes specific guidelines for the identification of the appropriate input parameters that optimizes the processing time.
SNN输入参数:它们是如何关联的?
如今,当组织试图分析生成的数据以提取有用的信息时,他们面临着几个挑战。这种分析能力需要通过能够处理大数据集的工具来增强,而不会使分析过程成为一项艰巨的任务。通常使用聚类,因为这种技术不需要任何关于数据的先验知识。然而,聚类算法通常需要一个或多个输入参数,这些参数会影响聚类过程和可以获得的结果。本文分析了SNN(共享最近邻)算法的三个输入参数之间的关系,并提出了确定适当的输入参数以优化处理时间的具体指导方针。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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