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Estimating Missing Information by Cluster Analysis and Normalized Convolution

机译:通过集群分析和规范化卷积估算缺失信息

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Smart city deals with the improvement of their citizens' quality of life. Numerous ad-hoc sensors need to be deployed to know humans' activities as well as the conditions in which these actions take place. Even if these sensors are cheaper and cheaper, their installation and maintenance cost increases rapidly with their number. We propose a methodology to limit the number of sensors to deploy by using a standard clustering technique and the normalized convolution to estimate environmental information whereas sensors are actually missing. In spite of its simplicity, our methodology lets us provide accurate assesses.
机译:聪明的城市处理其公民生活质量的提高。需要部署许多临时传感器以了解人类的活动以及这些行动发生的条件。即使这些传感器更便宜,更便宜,它们的安装和维护成本也随着它们的数量迅速增加。我们提出了一种方法来限制通过使用标准聚类技术和归一化卷积来估计环境信息的传感器数量,而传感器实际上缺失。尽管其简单性,我们的方法可以让我们提供准确的评估。

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