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Rock fall susceptibility assessment along a mountainous road: an evaluation of bivariate statistic, analytical hierarchy process and frequency ratio

机译:山区道路上的岩崩敏感性评估:双变量统计,层次分析法和频率比的评估

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摘要

Few studies have been conducted for susceptibility of rock falls in mountainous areas. In this study, we compare and evaluate rock fall susceptibility mapping using bivariate statistical [weight of evidence (WoE)], analytical hierarchy process (AHP) and frequency ratio (FR) methods along 11 km of a mountainous road in the Salavat Abad saddle in southwestern Kurdistan, Iran. A total of 34 rock fall locations were constructed from various sources. These rock fall locations were then partitioned into a training dataset (70% of the rock fall locations) and a testing dataset (30% of the rock fall locations). Eight conditioning factors affecting on the rock falls including slope angle, aspect, curvature, elevation, distance to road, distance to fault, lithology and land use were identified. The modeling process and rock fall susceptibility mapping has been constructed using three methods. The performance of rock fall susceptibility mapping was evaluated using the area under the curve of success rate curve for training and prediction rate curves (PRC) for testing datasets and also seed cell area index. The results show that the rock fall susceptibility mapping using the WOE method has better prediction accuracy than the AHP and FR methods. Ultimately, the weight-of-evidence method is a promising technique so that it is proposed to manage and mitigate the damages of rock falls in the prone areas.
机译:很少有人对山区的岩崩敏感性进行研究。在这项研究中,我们使用双变量统计[证据权重(WoE)],层次分析法(AHP)和频率比(FR)方法,沿着位于萨瓦拉特阿巴德鞍山11公里的山区公路,比较并评估了落石敏感性图伊朗库尔德斯坦西南部。各种来源总共建造了34个落石地点。然后将这些落石位置分为训练数据集(落石位置的70%)和测试数据集(落石位置的30%)。确定了影响落石的八个条件因素,包括坡度,坡度,曲率,标高,到道路的距离,到断层的距离,岩性和土地利用。使用三种方法构造了建模过程和落石敏感性图。使用成功率曲线曲线下的面积(训练和预测率曲线(PRC)用于测试数据集)以及种子细胞面积指数评估落石敏感性绘图的性能。结果表明,与AHP和FR方法相比,使用WOE方法进行的落石敏感性图具有更好的预测精度。归根结底,证据权重法是一种很有前途的技术,因此提出了管理和减轻俯卧地区岩石崩塌损害的建议。

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