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Simultaneous state-parameter estimation of rainfall-induced landslide displacement using data assimilation

机译:利用数据同化的降雨诱导山坡偏移的同步状态参数估计

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摘要

Landslide displacement prediction has great practical engineering significance to landslide stability evaluation and early warning. The evolution of landslide is a complex dynamic process, and applying a classical prediction method will result in significant error. The data assimilation method offers a new way to merge multisource data with the model. However, data assimilation is still deficient in the ability to meet the demand of dynamic landslide systems. In this paper, simultaneous state and parameter estimation (SSPE) using particle-filter-based data assimilation is applied to predict displacement of the landslide. A landslide SSPE assimilation strategy can make use of time-series displacements and hydrological information for the joint estimation of landslide displacement and model parameters, which can improve the performance considerably. We select Xishan Village, Sichuan Province, China, as the experiment site to test the SSPE assimilation strategy. Based on the comparison of actual monitoring data with prediction values, results strongly suggest the effectiveness and feasibility of the SSPE assimilation strategy in short-term landslide displacement estimation.
机译:滑坡位移预测对滑坡稳定性评估和预警具有很大的实用工程意义。滑坡的演变是一个复杂的动态过程,施加经典预测方法将导致显着的错误。数据同化方法提供了一种与模型合并多源数据的新方法。然而,数据同化仍然不足以满足动态滑坡系统的需求。在本文中,应用了使用基于粒子滤波器的数据同化的同时状态和参数估计(SSPE)来预测滑坡的位移。山体滑坡SSPE同化策略可以利用时间序列位移和水文信息,为滑坡位移和模型参数的联合估计,这可以大大提高性能。我们选择四川省西山村,作为实验现场来测试SSPE同化策略。基于实际监测数据与预测值的比较,结果强烈建议SSPE同化策略在短期滑坡排量估计中的有效性和可行性。

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