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Developing a hybrid adoptive neuro-fuzzy inference system in predicting safety of factors of slopes subjected to surface eco-protection techniques

机译:开发混合养护神经模糊推理系统,以预测对表面生态保护技术进行斜坡因素的安全性

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摘要

This study predicts the investigation of surface eco-protection techniques for cohesive soil slopes along the selected Guthrie Corridor Expressway stretch by way of analyzing a new set of probabilistic models using a hybrid technique of artificial neural network and fuzzy inference system namely adaptive neuro-fuzzy inference system (ANFIS). Soil erosion and mass movement which induce landslides have become one of the disasters faced in Selangor, Malaysia causing enormous loss affecting human lives, destruction of property and the environment. Establishing and maintaining slope stability using mechanical structures are costly. Hence, biotechnical slope protection offers an alternative which is not only cost effective but also aesthetically pleasing. A parametric study was carried out to discover the relationship between various eco-protection techniques, i.e., application of grasses, shrubs and trees with different soil properties as well as slope angles. Then the data have been used to develop a new hybrid ANFIS technique for prediction of factor of safety (FOS) of slopes. Four inputs were considered in relation to the different vegetation types, i.e., slope angle (9), unit weight (y), effective cohesion (c'), effective friction angle (0')- Then, many hybrid ANFIS models were constructed, trained and tested using various parametric studies. Eventually, a hybrid ANFIS model with a high performance prediction and a low system error was developed and introduced for solving problem of slope stability.
机译:该研究通过分析了使用人工神经网络的混合技术和模糊推理系统的新概率模型,通过分析了一系列新的概率模型,预测了沿着所选的Guthri走廊高速公路延伸的粘性土壤倾斜的表面生态保护技术的研究。适应性神经模糊推理系统(ANFIS)。诱导山体滑坡的土壤侵蚀和群众运动已成为雪兰莪的灾害之一,马来西亚造成巨大的损失,从而影响人类生命,破坏财产和环境。使用机械结构建立和维持边坡稳定性昂贵。因此,生物技术斜坡保护提供了一种不仅具有成本效益而且美观的替代性的替代方案。进行了参数研究以发现各种生态保护技术,即草,灌木和树木的关系,具有不同的土壤性质以及斜率角度。然后,数据已用于开发一种新的混合ANFIS技术,用于预测斜坡的安全系数(FOS)。有关不同的植被类型,即倾斜角(9),单位重量(Y),有效纤维角(0'),有效摩擦角(0'),构建了四种输入,构建了许多混合ANFIS模型,使用各种参数研究训练和测试。最终,开发了具有高性能预测和低系统误差的混合ANFI模型,并引入解决斜坡稳定性问题。

著录项

  • 来源
    《Engineering with Computers》 |2020年第4期|1347-1354|共8页
  • 作者单位

    Department of Civil Engineering Faculty of Engineering University of Malaya 50603 Kuala Lumpur Malaysia;

    Department of Civil Engineering Faculty of Engineering University of Malaya 50603 Kuala Lumpur Malaysia;

    Institute of Biological Sciences Faculty of Science University of Malaya 50603 Kuala Lumpur Malaysia;

    Civil Engineering Department University of Hafr Al-Batin Al-Jamiah Hafr Al-Batin Eastern Province 39524 Kingdom of Saudi Arabia;

    Faculty of Civil Engineering University of Tabriz Tabriz Iran;

    DLSIIS Universidad Politecnica de Madrid Madrid Spain Centre for Biomedical Technology Universidad Politecnica de Madrid Madrid Spain;

    Department of Computer Engineering Neyshabur Branch Islamic Azad University Neyshabur Iran;

    Department of Civil Engineering Qeshm International Branch Islamic Azad University Qeshm Iran;

    Research Center Sulaimani Polytechnic University Sulaimani 46001 Kurdistan Region Iraq;

    Universidad UTE Facultad de Arquitectura y Urbanismo Calle Rumipamba s y Bourgeois Quito Ecuador;

    Faculty of Engineering University of Kragujevac Sestre Janic 6 Kragujevac 34000 Serbia;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    ANFIS; ANN fuzzy, eco-engineering; Factor of safety; Slope stability;

    机译:ANFIS;安模糊;生态工程;安全因素;坡稳定性;

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