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Online change detection: Monitoring land cover from remotely sensed data

机译:在线更改检测:监控远程感测数据的陆地覆盖

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We present a fast and statistically principled approach for land cover change detection. The approach is illustrated with a geographic application that involves analyzing remotely sensed data to detect changes in the normalized difference vegetation index (NDVI) in near real time. We use the Wal-Mart land cover change data set as a nontraditional way to monitor and validate known cases of NDVI change. A reference distribution has been justified to fit the available data. An adaptive metric based on the exponentially weighted moving average (EWMA) of normal scores derived from p-values is tracked for new or streaming data, leading to alarms for large or sustained changes. A heuristic algorithm based on the property of the metric is proposed for change point detection. The proposed framework performed well on the validation dataset.
机译:我们在陆地覆盖变化检测中提出了一种快速和统计的原则方法。该方法用地理应用说明,该地理应用涉及分析远程感测的数据,以检测近实时的归一化差异植被指数(NDVI)的变化。我们使用Wal-Mart Land Cover将数据设置为非传统方式来监视和验证已知的NDVI更改情况。参考分布已被证明以适合可用数据。跟踪基于从P值导出的正常分数的指数加权移动平均(EWMA)的自适应度量用于新的或流数据,导致用于大或持续变化的警报。提出了一种基于度量特性的启发式算法,用于改变点检测。所提出的框架在验证数据集上进行了良好。

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