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Geostatistical modelling on stream networks: developing valid covariance matrices based on hydrologic distance and stream flow.

机译:河流网络的地统计建模:基于水文距离和河流流量开发有效的协方差矩阵。

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摘要

Geostatistical models based on Euclidean distance fail to represent the spatial configuration, connectivity, and directionality of sites in a stream network and may not be ecologically relevant for many chemical, physical and biological studies of freshwater streams. Functional distance measures, such as symmetric and asymmetric hydrologic distance, more accurately represent the transfer of organisms, material and energy through stream networks. However, calculating the hydrologic distances for a large study area remains challenging and substituting hydrologic distance for Euclidean distance may violate geostatistical modelling assumptions. We provide a review of geostatistical modelling assumptions and discuss the statistical and ecological consequences of substituting hydrologic distance measures for Euclidean distance. We also describe a new family of autocovariance models that we developed for stream networks, which are based on hydrologic distance measures. We describe the geographical information system (GIS) methodology used to generate spatial data necessary for geostatistical modelling in stream networks. We also provide an example that illustrates the methodology used to create a valid covariance matrix based on asymmetric hydrologic distance and weighted by discharge volume, which can be incorporated into common geostatistical models. The methodology and tools described supply ecologically meaningful and statistically valid geostatistical models for stream networks. They also provide stream ecologists with the opportunity to develop their own functional measures of distance and connectivity, which will improve geostatistical models developed for stream networks in the future. The GIS tools presented here are being made available in order to facilitate the application of valid geostatistical modelling in freshwater ecology..
机译:基于欧几里得距离的地统计模型无法表示河流网络中站点的空间配置,连通性和方向性,并且可能与许多淡水河流的化学,物理和生物学研究在生态上不相关。功能性距离测度,例如对称和非对称水文距离,可以更准确地表示生物,物质和能量通过河流网络的转移。但是,计算较大研究区域的水文距离仍然具有挑战性,用水文距离代替欧几里得距离可能会违反地统计建模假设。我们提供了对地统计学建模假设的回顾,并讨论了用水文距离测度代替欧几里得距离的统计和生态后果。我们还描述了我们为流网开发的新的自协方差模型系列,该模型基于水文距离测度。我们描述了地理信息系统(GIS)方法,该方法用于生成流网络中地统计建模所需的空间数据。我们还提供了一个示例,该示例说明了用于基于不对称水文距离并由排水量加权来创建有效协方差矩阵的方法,该方法可以并入常见的地统计学模型中。所描述的方法和工具为河流网络提供了具有生态学意义和统计意义的地统计学模型。它们还为河流生态学家提供了开发自己的距离和连通性功能度量的机会,这将改善将来为河流网络开发的地统计模型。为了方便有效的地统计学模型在淡水生态学中的应用,这里提供了GIS工具。

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