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A neurofuzzy system to analyze liquefaction-induced lateral spread

机译:用于分析液化引起的侧向扩散的神经模糊系统

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Lateral spreads of liquefied granular soil masses have caused severe damages to many engineered structures. Accordingly, many empirical procedures have been developed from field-direct observations and from multiple regression analyses carried out on the database gathered from many case histories. The intricacy and nonlinearity of the underlying phenomena makes the above approaches somewhat unreliable for estimating liquefaction-induced lateral spreads. The database has inconsistencies and contradictions because of inevitable subjective interpretations and neural network approaches have been proposed for dealing with these. To overcome these difficulties in this paper a hybrid system named neurofuzzy, which profits from fuzzy and neural paradigms, is advanced. The resulting model called NEFLAS (NEuroFuzzy estimation of liquefaction induced LAteral Spread) is shown to yield a much improved forecasting than both multiple regression and neural network procedures. The corresponding software can be obtained from the first author.
机译:液化颗粒状土壤块的横向扩散对许多工程结构造成了严重破坏。因此,已经从现场直接观察以及对从许多病例历史收集的数据库中进行的多元回归分析中开发了许多经验方法。潜在现象的复杂性和非线性使得上述方法对于估算液化引起的横向展宽有些不可靠。由于不可避免的主观解释,数据库存在矛盾和矛盾,并且已经提出了用于处理这些问题的神经网络方法。为了克服本文中的这些困难,提出了一种名为神经模糊的混合系统,该系统从模糊和神经范例中受益。结果表明,与多重回归和神经网络程序相比,称为NEFLAS(液化引起的液态扩散的NEuroFuzzy估计)的模型产生的预测要好得多。可以从第一作者那里获得相应的软件。

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