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Improving Prediction Accuracy of Concrete Compressive Strength via Wavelet Transform

Date
2016
Author
Erdal, Hamit
Erdal, Halil Ibrahim
Namli, Ersin
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Abstract
In recent years, Compressive strength prediction of concrete is being studied with an increasing speed by researchers. Instead of traditional statistical techniques, advanced prediction methods are being used in this area of study. In this study artificial neural network (ANN) and wavelet transform artificial neural network (WTANN) methods' prediction performances were compared on compressive strength of concrete with different mixture ratios and additionally effect of wavelet transform which decomposes dataset into subsets for a stationary situation for prediction was presented. Within this scope dataset trained in four different ways and sixteen different tests performed. The results of tests performed, WTANN achieves higher prediction performance in comparison with ANN. Hence, it's proved that WT could be used by researchers as an effective predictive tool for concrete compressive strength.
URI
http://hdl.handle.net/20.500.12627/71388
https://doi.org/10.2339/2016.19.4.471-480
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İstanbul Üniversitesi Akademik Arşiv Sistemi (ilgili içerikte aksi belirtilmediği sürece) Creative Commons Alıntı-GayriTicari-Türetilemez 4.0 Uluslararası Lisansı ile lisanslanmıştır.

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Creative Commons Lisansı

İstanbul Üniversitesi Akademik Arşiv Sistemi (ilgili içerikte aksi belirtilmediği sürece) Creative Commons Alıntı-GayriTicari-Türetilemez 4.0 Uluslararası Lisansı ile lisanslanmıştır.

DSpace software copyright © 2002-2016  DuraSpace
Contact Us | Send Feedback
Theme by 
Atmire NV