شماره ركورد :
1185366
عنوان مقاله :
Forecasting Surface Settlement Caused by Shield Tunneling Using ANN-BBO Model and ANFIS Based on Clustering Methods
پديد آورندگان :
Fattahi ، Hadi Arak University of Technology - Department of Mining Engineering , Bayatzadehfard ، Zohreh Arak University of Technology - Department of Mining Engineering
از صفحه :
55
تا صفحه :
84
كليدواژه :
Maximum surface settlement , EPB shield , Shield tunneling , Adaptive network–based fuzzy inference system , Artificial neural network , Biogeography , based optimization algorithm. ,
چكيده فارسي :
Maximum surface settlement (MSS) is an important parameter for the design and operation of earth pressure balance (EPB) shields that should determine before operate tunneling. Artificial intelligence (AI) methods are accepted as a technology that offers an alternative way to tackle highly complex problems that can rsquo;t be modeled in mathematics. They can learn from examples and they are able to handle incomplete data and noisy. The adaptive network -based fuzzy inference system (ANFIS) and hybrid artificial neural network (ANN) with biogeographybased optimization algorithm (ANNBBO) are kinds of AI systems that were used in this study to build a prediction model for the MSS caused by EPB shield tunneling. Two ANFIS models were implemented, ANFISsubtractive clustering method (ANFISSCM) and ANFISfuzzy c -means clustering method (ANFISFCM). The estimation abilities offered using three models were presented by using field data of achieved from Bangkok Subway Project in Thailand. In these models, depth, distance from shaft, ground water level from tunnel invert, average face pressure, average penetrate rate, pitching angle, tail void grouting pressure and percent tail void grout filling were utilized as the input parameters, while the MSS was the output parameter. To compare the performance of models for MSS prediction, the coefficient of correlation (R2) and mean square error (MSE) of the models were calculated, indicating the good performance of the ANFISSCM model.
عنوان نشريه :
زمين شناسي مهندسي- دانشگاه خوارزمي
عنوان نشريه :
زمين شناسي مهندسي- دانشگاه خوارزمي
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