2017
DOI: 10.12962/j23546026.y2017i6.3267
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Strength Durability-Based Design Mix of Self-Compacting Concrete with Cementitious Blend using Hybrid Neural Network-Genetic Algorithm

Abstract: Abstract-Sustainable development in self-compacting concrete (SCC) has been studied extensively for the recent years for the purpose to address its growing demand in construction projects. Sustainable SCC can be defined as concrete mix with partially replaced cement content that varies from low to high level using different mineral admixtures. Silica fume and fly ash which is considered as the most common sustainable mineral admixtures for binary and ternary cementitious blends show good effect to the compress… Show more

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Cited by 7 publications
(1 citation statement)
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“…In another study, the ANNs method was compared with Genetic Programming [ 94 ], but the differences in accuracy are indiscernible as both methods produce highly accurate models. However, Chandwani et al [ 100 ] proposed the hybridization of ANN and Genetic Algorithm (GA), which improved the convergence speed and accuracy of the model [ 101 ] and helped in the derivation of optimal result [ 102 ]. ANN-GA is currently not too widely applied in concrete material studies, but has seen usage in complex studies involving more advanced technologies, such as self-healing concrete [ 103 ].…”
Section: Artificial Neural Network (Anns)mentioning
confidence: 99%
“…In another study, the ANNs method was compared with Genetic Programming [ 94 ], but the differences in accuracy are indiscernible as both methods produce highly accurate models. However, Chandwani et al [ 100 ] proposed the hybridization of ANN and Genetic Algorithm (GA), which improved the convergence speed and accuracy of the model [ 101 ] and helped in the derivation of optimal result [ 102 ]. ANN-GA is currently not too widely applied in concrete material studies, but has seen usage in complex studies involving more advanced technologies, such as self-healing concrete [ 103 ].…”
Section: Artificial Neural Network (Anns)mentioning
confidence: 99%