Predicting FRP-to-concrete bond strength (FRP-CBS) under diverse exposure conditions is an intricate task influenced by multiple variables. Yet, existing pertinent models have several limitations. Accordingly, this study proposes a novel data driven machine learning (ML) methodology to predict the FRP-CBS considering various exposure conditions. A comprehensive database on single and double lap-shear strength tests on concrete specimens was meticulously compiled. Twenty-seven analytical models were used to appraise the developed ML models. Feature importance analysis was conducted to ascertain the influence of input parameters on bond strength. The proposed data-driven ML models attained exceptional accuracy and superior performance compared to existing analytical models. To enhance the accuracy of bond strength estimation and simplify the process for practicing engineers and FRP applicators, a user-friendly graphical interface was developed. It could eliminate the need for complex design procedures, making it easier to accurately estimate the FRP-CBS, thus improving overall efficiency in engineering practice.
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Nanjing Forestry Univ, Coll Civil Engn, Nanjing 210037, Peoples R ChinaNanjing Forestry Univ, Coll Civil Engn, Nanjing 210037, Peoples R China
Zhang, Feng
Wang, Chenxin
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Nanjing Forestry Univ, Coll Civil Engn, Nanjing 210037, Peoples R ChinaNanjing Forestry Univ, Coll Civil Engn, Nanjing 210037, Peoples R China
Wang, Chenxin
Liu, Jun
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Louisiana State Univ, Louisiana Transportat Res Ctr, Baton Rouge, LA USANanjing Forestry Univ, Coll Civil Engn, Nanjing 210037, Peoples R China
Liu, Jun
Zou, Xingxing
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Nanjing Forestry Univ, Coll Civil Engn, Nanjing 210037, Peoples R ChinaNanjing Forestry Univ, Coll Civil Engn, Nanjing 210037, Peoples R China
Zou, Xingxing
Sneed, Lesley H.
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Univ Illinois, Dept Civil Mat & Environm Engn, 929 W Taylor St, Chicago, IL 60607 USANanjing Forestry Univ, Coll Civil Engn, Nanjing 210037, Peoples R China
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South China Univ Technol, Sch Civil Engn & Transportat, Guangzhou 510640, Peoples R ChinaSouth China Univ Technol, Sch Civil Engn & Transportat, Guangzhou 510640, Peoples R China
Guo, Xinyan
Shu, Shenyunhao
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South China Univ Technol, Sch Civil Engn & Transportat, Guangzhou 510640, Peoples R ChinaSouth China Univ Technol, Sch Civil Engn & Transportat, Guangzhou 510640, Peoples R China
Shu, Shenyunhao
Wang, Yilin
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South China Univ Technol, Sch Civil Engn & Transportat, Guangzhou 510640, Peoples R ChinaSouth China Univ Technol, Sch Civil Engn & Transportat, Guangzhou 510640, Peoples R China
Wang, Yilin
Huang, Peiyan
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South China Univ Technol, Sch Civil Engn & Transportat, Guangzhou 510640, Peoples R China
South China Univ Technol, State Key Lab Subtrop Bldg Sci, Guangzhou 510640, Peoples R ChinaSouth China Univ Technol, Sch Civil Engn & Transportat, Guangzhou 510640, Peoples R China
Huang, Peiyan
Lin, Jiaxiang
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Guangdong Univ Technol, Sch Civil & Transportat Engn, Guangzhou 510006, Peoples R ChinaSouth China Univ Technol, Sch Civil Engn & Transportat, Guangzhou 510640, Peoples R China
Lin, Jiaxiang
Guo, Yongchang
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Guangdong Univ Technol, Sch Civil & Transportat Engn, Guangzhou 510006, Peoples R ChinaSouth China Univ Technol, Sch Civil Engn & Transportat, Guangzhou 510640, Peoples R China