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首页> 外文期刊>Journal of geophysical research. Earth Surface: JGR >Testing statistical self-similarity in the topology of river networks
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Testing statistical self-similarity in the topology of river networks

机译:在河网拓扑中测试统计自相似性

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摘要

Recent work has demonstrated that the topological properties of real river networks deviate significantly from predictions of Shreve's random model. At the same time the property of mean self-similarity postulated by Tokunaga's model is well supported by data. Recently, a new class of network model called random self-similar networks (RSN) that combines self-similarity and randomness has been introduced to replicate important topological features observed in real river networks. We investigate if the hypothesis of statistical self-similarity in the RSN model is supported by data on a set of 30 basins located across the continental United States that encompass a wide range of hydroclimatic variability. We demonstrate that the generators of the RSN model obey a geometric distribution, and self-similarity holds in a statistical sense in 26 of these 30 basins. The parameters describing the distribution of interior and exterior generators are tested to be statistically different and the difference is shown to produce the well-known Hack's law. The inter-basin variability of RSN parameters is found to be statistically significant. We also test generator dependence on two climatic indices, mean annual precipitation and radiative index of dryness. Some indication of climatic influence on the generators is detected, but this influence is not statistically significant with the sample size available. Finally, two key applications of the RSN model to hydrology and geomorphology are briefly discussed.
机译:最近的工作表明,真实河网的拓扑特性与Shreve随机模型的预测明显不同。同时,数据支持了德永模型所假设的平均自相似性。最近,引入了一种新的网络模型,称为随机自相似网络(RSN),该模型结合了自相似性和随机性,可以复制在实际河网中观察到的重要拓扑特征。我们调查了RSN模型中统计自相似性的假设是否得到位于美国大陆上30个盆地的一组数据的支持,这些盆地涵盖广泛的水文气候变异性。我们证明,RSN模型的生成器服从几何分布,并且在这30个盆地中的26个在统计意义上具有自相似性。测试描述内部和外部发电机分布的参数在统计上是不同的,并且显示出这些差异可以产生众所周知的哈克定律。发现RSN参数的流域间变异性具有统计学意义。我们还测试了发电机对两个气候指数的依赖,这两个气候指数是年平均降水量和干燥度的辐射指数。已检测到气候对发生器的影响,但对于可用样本量,这种影响在统计上并不显着。最后,简要讨论了RSN模型在水文和地貌方面的两个关键应用。

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