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Prediction of cement strength using soft computing techniques

机译:使用软计算技术预测水泥强度

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摘要

In this paper, it is aimed to propose prediction approaches for the 28-day compressive strength of Portland composite cement (PCC) by using soft computing techniques. Gene expression programming (GEP) and neural networks (NNs) are the soft computing techniques that are used for the prediction of compressive cement strength (CCS). In addition to these methods, stepwise regression analysis is also used to have an idea about the predictive power of the soft computing techniques in comparison to classical statistical approach. The application of the genetic programming (GP) technique GEP to the cement strength prediction is shown for the first time in this paper. The results obtained from the computational tests have shown that GEP is a promising technique for the prediction of cement strength.
机译:本文旨在通过软计算技术提出波特兰复合水泥(PCC)28天抗压强度的预测方法。基因表达编程(GEP)和神经网络(NNs)是用于预测抗压水泥强度(CCS)的软计算技术。除这些方法外,与经典统计方法相比,逐步回归分析还可以使您对软计算技术的预测能力有所了解。本文首次展示了遗传程序设计技术GEP在水泥强度预测中的应用。从计算测试获得的结果表明,GEP是预测水泥强度的有前途的技术。

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