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深水平台施工过程自然风险定量评估
引用本文:余建星,田佳,谭振东.深水平台施工过程自然风险定量评估[J].自然灾害学报,2007,16(1):113-118.
作者姓名:余建星  田佳  谭振东
作者单位:天津大学建筑工程学院/港口与海洋天津市重点实验室 天津300072
基金项目:国家自然科学基金;教育部博士总基金
摘    要:在分析现有风险理论的基础上,结合海洋施工实际,提出了一种对海洋施工自然风险进行定量评估的模型。根据目标系统各风险事件与影响因素之间存在高度非线性复杂映射的特点,提出了利用BP神经网络拟合方法,对主要风险事件发生概率进行量化的模型。针对传统的梯度下降优化算法收敛速度慢的特点,采用可避免计算Hesse矩阵的Levenberg-Marquardt算法来训练神经网络。这一模型可以模拟专家评价,并准确地按照专家的评定法则进行估算,具有一定的通用性。

关 键 词:海洋工程  海洋灾害  风险概率  BP神经网络  Levenberg-Marquardt算法
文章编号:1004-4574(2007)01-0113-06
收稿时间:2006-12-08
修稿时间:2006-12-082007-01-05

Quantitative risk evaluation of natural disasters in construction of deepwater platform
YU Jian-xing,TIAN Jia,TAN Zhen-dong.Quantitative risk evaluation of natural disasters in construction of deepwater platform[J].Journal of Natural Disasters,2007,16(1):113-118.
Authors:YU Jian-xing  TIAN Jia  TAN Zhen-dong
Institution:Tianjin Key Laboratory of Harbor and Ocean/School of Civil Engineering, Tianjin University, Tianjin 300072, China
Abstract:Based on the existing risk theory and combined with the practice of oceanic construction,this paper introduced a new model for quantitative asessment of natural risk in oceanic construction.To deal with the complex nonlinear mapping between the risk events and their influencing factors,the BP neural network simulation was applied to quantifying the risk probability of each risk event.Because of slow speed of the traditional arithmetic for training the network,a new numerical optimization technique was used to accelerate the convergence of the back-propagation.And the Levenberg-Marquardt iteration,which can avoid to compute Hessian matrix,is adopted as the learning rule to train the samples of this feedforward network.This model,practically universal in this field,can simulate experts' estimates and calculate the risk probability according to standard rules of assessment.
Keywords:oceanographic engineering  marine disaster  risk probability  BP neural network  Levenberg-Marquardt algorithm
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