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An optimized system of GMDH-ANFIS predictive model by ICA for estimating pile bearing capacity
Authors:Armaghani  Danial Jahed  Harandizadeh  Hooman  Momeni  Ehsan  Maizir  Harnedi  Zhou  Jian
Affiliation:1.Department of Urban Planning, Engineering Networks and Systems, Institute of Architecture and Construction, South Ural State University, 76, Lenin Prospect, Chelyabinsk, 454080, Russia
;2.Department of Civil Engineering, Faculty of Engineering, Shahid Bahonar University of Kerman, Pajoohesh Sq., Imam Khomeni Highway, P.O. Box 76169133, Kerman, Iran
;3.Faculty of Engineering, Lorestan University, Khorramabad, 6815144316, Iran
;4.Department of Civil Engineering, Sekolah Tinggi Teknologi Pekanbaru, Pekanbaru, Indonesia
;5.School of Resources and Safety Engineering, Central South University, Changsha, 410083, China
;
Abstract:

The pile bearing capacity is considered as the most essential factor in designing deep foundations. Direct determination of this parameter in site is costly and difficult. Hence, this study presents a new technique of intelligence system based on the adaptive neuro-fuzzy inference system (ANFIS)-group method of data handling (GMDH) optimized by the imperialism competitive algorithm (ICA), ANFIS-GMDH-ICA for forecasting pile bearing capacity. In this advanced structure, the ICA role is to optimize the membership functions obtained by ANFIS-GMDH technique for receiving a higher accuracy level and lower error. To develop this model, the results of 257 high strain dynamic load tests (performed by authors) were considered and used in the analysis. For comparison purposes, ANFIS and GMDH models were selected and built for pile bearing capacity estimation. In terms of model accuracy, the obtained results showed that the newly developed model (i.e., ANFIS-GMDH-ICA) receives more accurate predicted values of pile bearing capacity compared to those obtained by ANFIS and GMDH predictive models. The proposed ANFIS-GMDH-ICA can be utilized as an advanced, applicable and powerful technique in issues related to foundation engineering and its design.

Keywords:
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