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Dendrogeomorphic reconstruction of snow avalanche regime and triggering weather conditions: A classification tree model approach

机译:雪崩状态和触发天气条件的树状变构重建:分类树模型方法

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While dendrogeomorphology has been recognized as a useful tool to identify past avalanche activity, there is only a handful of papers that focus on the assessment of weather or climatic triggers of tree-ring reconstructed avalanche events. This paper compares the potential of logistic regression and classification tree algorithms to highlight weather scenarios responsible for the occurrence of high-magnitude avalanche activity in the Presidential Range of the White Mountains, New Hampshire (USA). Our tree-ring procedure improves the modern GD-I-t threshold with the implementation of a second criteria based on the Moran index. 450 trees sampled in seven different avalanche paths allowed us to reconstruct 45 avalanches that occurred during 19 different years for the period 1936-2012. The results show that while statistically significant, the logistic regression models are less accurate than classification trees to assess avalanche activity based on annual and monthly weather variables. Moreover, even if snow related covariates are located at the root node of every classification tree model, the addition of temperature and wind predictors increases their robustness. This suggests that high-magnitude avalanches in the Presidential Range not only respond to snow, but also to atmospheric conditions responsible for the creation of weak layers within the snowpack.
机译:虽然树突状地貌学已被认为是识别过去雪崩活动的有用工具,但只有少数几篇论文侧重于评估天气或气候因素,以评估树木年轮重建的雪崩事件。本文比较了逻辑回归和分类树算法的潜力,以突出显示在美国新罕布什尔州白山总统山脉发生高震级雪崩活动的天气情况。我们的年轮程序通过基于Moran指数的第二个标准的实施,提高了现代GD-I-t阈值。在七个不同的雪崩路径上采样了450棵树,使我们能够重建45个在1936-2012年的19个不同年份发生的雪崩。结果表明,虽然逻辑上具有统计学意义,但逻辑回归模型的准确性低于分类树,后者无法根据年和月度天气变量评估雪崩活动。此外,即使与雪相关的协变量位于每个分类树模型的根节点上,温度和风的预测变量的添加也会提高其稳健性。这表明总统范围内的高雪崩不仅对积雪作出反应,而且还对造成积雪内部薄弱层的大气条件作出反应。

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