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Extraction of frequent grouped sequential patterns from Satellite Image Time Series

机译:从卫星图像时间序列中提取频繁分组的序列模式

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This paper presents an original data mining approach for extracting pixel evolutions and sub-evolutions from Satellite Image Time Series. These patterns, called frequent grouped sequential patterns, represent the (sub-)evolutions of pixels over time, and have to satisfy two constraints: firstly to correspond to at least a given minimum surface and secondly to be shared by pixels that are sufficiently connected. These spatial constraints are actively used to face large data volumes and to select evolutions making sense for end-users. Successful experiments on an optical and a radar SITS are presented.
机译:本文提出了一种原始数据挖掘方法,用于从卫星图像时间序列中提取像素演化和子演化。这些模式称为频繁分组顺序模式,表示像素随时间的(子)演化,并且必须满足两个约束条件:首先对应于至少一个给定的最小表面,其次要由足够连接的像素共享。这些空间限制被积极地用来面对大量数据,并选择对最终用户有意义的演进方式。提出了在光学和雷达SITS上的成功实验。

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