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Concrete compressive strength prediction using the imperialist competitive algorithm

机译:基于帝国主义竞争算法的混凝土抗压强度预测

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摘要

In the following paper, a socio-political heuristic search approach, named the imperialist competitive algorithm (ICA) has been used to improve the efficiency of the multi-layer perceptron artificial neural network (ANN) for predicting the compressive strength of concrete. 173 concrete samples have been investigated. For this purpose the values of slump flow, the weight of aggregate and cement, the maximum size of aggregate and the water-cement ratio have been used as the inputs. The compressive strength of concrete has been used as the output in the hybrid ICA-ANN model. Results have been compared with the multiple-linear regression model (MLR), the genetic algorithm (GA) and particle swarm optimization (PSO). The results indicate the superiority and high accuracy of the hybrid ICA-ANN model in predicting the compressive strength of concrete when compared to the other methods.
机译:在下文中,一种名为帝国主义竞争算法(ICA)的社会政治启发式搜索方法已被用来提高多层感知器人工神经网络(ANN)预测混凝土抗压强度的效率。已经调查了173个混凝土样品。为此,将坍落度流量值,集料和水泥的重量,集料的最大尺寸和水灰比用作输入值。混凝土的抗压强度已用作ICA-ANN混合模型的输出。将结果与多元线性回归模型(MLR),遗传算法(GA)和粒子群优化(PSO)进行了比较。结果表明,与其他方法相比,ICA-ANN混合模型在预测混凝土抗压强度方面具有优越性和较高的准确性。

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