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Decision Support Based on Time-Series Analytics: A Cluster Methodology

机译:基于时间序列分析的决策支持:一种集群方法

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Web analytic techniques have become increasingly popular, particularly Google Analytics time-series dashboards. But interpretations of a website's visits traffic data may be oversimplified and limited by Google Analytics existing functionalities. This means website mangers have to make estimations rather than mathematically informed decisions. In order to gain a more precise view of longitudinal website visits traffic data, the researchers mathematically transformed the existing Goggle Analytics' log data allowing the vectors of website visits per each year to be considered simultaneously. The methodology groups the data of an example website gathered over an 'x' year period into 'y' clusters of data. The results show that the transformed data is richer, more accurate and informative, potentially allowing website managers to make more informed decisions concerning promoting, developing, and maintaining their websites rather than relying on estimations.
机译:网络分析技术已变得越来越流行,尤其是Google Analytics(分析)时间序列仪表板。但是,由于Google Analytics(分析)现有功能,对网站访问量流量数据的解释可能会被简化并受到限制。这意味着网站管理员必须做出估计,而不是数学上明智的决定。为了更精确地了解纵向网站访问量流量数据,研究人员在数学上转换了现有Goggle Analytics的日志数据,从而可以同时考虑每年的网站访问量向量。该方法将在“ x”年内收集的示例网站的数据分组为“ y”数据集群。结果表明,转换后的数据更丰富,更准确,信息更丰富,有可能使网站管理员可以就推广,开发和维护网站做出更明智的决策,而不必依赖评估。

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