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Modeling geospatial trend changes in vegetation monitoring data

机译:在植被监测数据中模拟地理空间趋势变化

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摘要

In a constantly changing environment, monitoring supports analysis and understanding of many types of change. This paper is concerned specifically with monitoring of vegetation and describes the development and application of a formal model that supports the analysis of spatiotemporal changes in the recorded attributes of a forest/heathland environment. Typically, the monitoring points are not ideally distributed in time or space. The proposed analytical techniques are designed to deal with incomplete data sets and to reveal abnormal changes or transitions. These transitions can potentially be linked to causal events which may have not been otherwise recorded. This work distinguishes five key change types as a basis for 25 transition types present in time series of vegetation data. These are distilled from the data using a set of transition point analysis methods including spatiotemporal neighborhood and trend sequence analysis. In addition, cross-comparisons between vegetation attributes, based on the identified transitions, are illustrated. A prototype GIS-based tool VeMonA provides an analytical environment for time series data obtained through vegetation monitoring and supports understanding of dynamic geospatial ecosystems.
机译:在不断变化的环境中,监视支持对多种类型的变化的分析和理解。本文特别关注植被监测,并描述了正式模型的开发和应用,该模型支持对森林/荒地环境记录属性的时空变化进行分析。通常,监视点在时间或空间上不是理想地分布。拟议的分析技术旨在处理不完整的数据集并揭示异常的变化或过渡。这些过渡可能会与因果事件相关联,而这些因果事件本来可能没有记录。这项工作区分了五种关键的变化类型,作为植被数据时间序列中存在的25种过渡类型的基础。使用一组过渡点分析方法(包括时空邻域和趋势序列分析)从数据中提取这些数据。另外,示出了基于所识别的过渡的植被属性之间的交叉比较。基于GIS的原型工具VeMonA为通过植被监测获得的时间序列数据提供了分析环境,并支持对动态地理空间生态系统的理解。

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