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Research on the Grey Verhulst Model Based on Particle Swarm Optimization and Markov Chain to Predict the Settlement of High Fill Subgrade in Xiangli Expressway

机译:基于微粒群和马尔可夫链的灰色Verhulst模型预测湘里高速公路高填方路基沉降。

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摘要

It is of vital significance to accurately forecast the settlement of high fill subgrade, which is the foundation for disaster prevention and treatment of subgrade. According to the monitoring data of high fill subgrade, a novel model, called PSOMGVM model, based on particle swarm optimization (PSO) and Markov chain is proposed. Firstly, the typical characteristics of settlement curve are analyzed from the aspect of geomechanics theory and based on the grey theory, the grey Verhulst model (GVM) with unequal time-interval is proposed. Then, according to the theory of Markov chain, the grey Verhulst model is built to revise the relative residuals of the GVM, in which the effects of volatility characteristics can be considered. Finally, the PSOMGVM model based on PSO algorithm and Markov chain is set up, which whitens the parameters of the grey interval. In order to demonstrate the fitness and the ability of the proposed model, five competing models are introduced to predict the settlement of the high fill subgrade of Xiangli Expressway in Yunnan Province. Through the analysis of APE, MAPE, and RMSE, it states that the accuracy and performance of the PSOMGVM model outperform the other five competing models for simulative and predictive periods.
机译:准确预测高填方路基沉降量,对路基防灾救灾具有重要的意义。根据高填方路基的监测数据,提出了一种基于粒子群算法(PSO)和马尔可夫链的新型模型PSOMGVM模型。首先,从地质力学理论的角度分析了沉降曲线的典型特征,并基于灰色理论,提出了时间间隔不相等的灰色Verhulst模型(GVM)。然后,根据马尔可夫链理论,建立了灰色Verhulst模型来修正GVM的相对残差,其中可以考虑波动特性的影响。最后,建立了基于PSO算法和马尔可夫链的PSOMGVM模型,白化了灰色区间的参数。为了证明所提出模型的适用性和能力,引入了五个竞争模型来预测云南省湘黎高速公路高填方路基的沉降。通过对APE,MAPE和RMSE的分析,在模拟和预测期间,PSOMGVM模型的准确性和性能优于其他五个竞争模型。

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  • 来源
    《Mathematical Problems in Engineering》 |2019年第9期|1878296.1-1878296.10|共10页
  • 作者单位

    Kunming Univ Sci & Technol Yunnan Key Lab Disaster Reduct Civil Engn Fac Civil Engn & Mech Kunming 650500 Yunnan Peoples R China;

    Chinese Acad Sci Inst Rock & Soil Mech State Key Lab Geomech & Geotech Engn Wuhan 430071 Hubei Peoples R China;

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  • 入库时间 2022-08-18 04:59:47

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