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Artificial Intelligence Prediction of One-Part Geopolymer Compressive Strength for Sustainable Concrete
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作者 Mohamed Abdel-Mongy Mudassir Iqbal +3 位作者 M.Farag Ahmed.M.Yosri Fahad Alsharari Saif Eldeen A.S.Yousef 《Computer Modeling in Engineering & Sciences》 SCIE EI 2024年第10期525-543,共19页
Alkali-activated materials/geopolymer(AAMs),due to their low carbon emission content,have been the focus of recent studies on ecological concrete.In terms of performance,fly ash and slag are preferredmaterials for pre... Alkali-activated materials/geopolymer(AAMs),due to their low carbon emission content,have been the focus of recent studies on ecological concrete.In terms of performance,fly ash and slag are preferredmaterials for precursors for developing a one-part geopolymer.However,determining the optimum content of the input parameters to obtain adequate performance is quite challenging and scarcely reported.Therefore,in this study,machine learning methods such as artificial neural networks(ANN)and gene expression programming(GEP)models were developed usingMATLAB and GeneXprotools,respectively,for the prediction of compressive strength under variable input materials and content for fly ash and slag-based one-part geopolymer.The database for this study contains 171 points extracted from literature with input parameters:fly ash concentration,slag content,calcium hydroxide content,sodium oxide dose,water binder ratio,and curing temperature.The performance of the two models was evaluated under various statistical indices,namely correlation coefficient(R),mean absolute error(MAE),and rootmean square error(RMSE).In terms of the strength prediction efficacy of a one-part geopolymer,ANN outperformed GEP.Sensitivity and parametric analysis were also performed to identify the significant contributor to strength.According to a sensitivity analysis,the activator and slag contents had the most effects on the compressive strength at 28 days.The water binder ratio was shown to be directly connected to activator percentage,slag percentage,and calcium hydroxide percentage and inversely related to compressive strength at 28 days and curing temperature. 展开更多
关键词 Artificial intelligence techniques one-part geopolymer artificial neural network gene expression modelling sustainable construction polymers
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两种体系 择一而用——“Period”与“One-part form”的溯源与辨析
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作者 郑刚 《天津音乐学院学报》 2023年第4期64-74,共11页
早期的“Period”仅表示周期或“用点来标记句子结尾”等段落划分之意,后来逐渐具有了由若干乐句构成的“乐段”的特定含义,兼为最小的曲式结构类型,属于较早出现的一种理论体系。当“One-part form”作为最小的曲式结构类型“一部曲式... 早期的“Period”仅表示周期或“用点来标记句子结尾”等段落划分之意,后来逐渐具有了由若干乐句构成的“乐段”的特定含义,兼为最小的曲式结构类型,属于较早出现的一种理论体系。当“One-part form”作为最小的曲式结构类型“一部曲式”这一新的音乐术语出现时,表明Period乐段是构成一部曲式最重要、最常见但并非唯一的基本构成单位,属于稍后出现的另一种理论体系。面对这两种不同的理论体系时,应在厘清二者之区别的前提下择一而用,可避免因混淆或混用而引发不必要的混乱或争论。 展开更多
关键词 PERIOD one-part form 乐段 一部曲式 一段体
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