2023
DOI: 10.1002/suco.202200850
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A comparative study of prediction of compressive strength of ultra‐high performance concrete using soft computing technique

Abstract: Concrete which is the most commercialized construction material and thus it plays a key role in this era of development and hence its evolution is of utmost importance and therefore the evolution of the quality of concrete to that of its highly evolved type namely, ultra‐high performance concrete (UHPC) is undeniably the boon to this sector. Though, the correlations between the technical characteristics of UHPC and the composition of its mixture are complicated, nonlinear, and complex to characterize using sta… Show more

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Cited by 40 publications
(5 citation statements)
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“…72 SVR regression has been applied successfully to a variety of engineering challenges. 73,74 Using the SVR technique, revolutionist artificial intelligence minimizes structural main hazards in a high-dimensional feature space based on nonlinear kernel-based regression (Figures 4 and 5). Convex optimization techniques are used to turn nonlinear regression errors into linear regression errors.…”
Section: Support Vector Regression (Svr)mentioning
confidence: 99%
“…72 SVR regression has been applied successfully to a variety of engineering challenges. 73,74 Using the SVR technique, revolutionist artificial intelligence minimizes structural main hazards in a high-dimensional feature space based on nonlinear kernel-based regression (Figures 4 and 5). Convex optimization techniques are used to turn nonlinear regression errors into linear regression errors.…”
Section: Support Vector Regression (Svr)mentioning
confidence: 99%
“…An effective tool for evaluating and comparing multiple regression models at once in a single graphical representation is the regression error characteristic (REC) curve [54][55][56] . Basically, it is a great tool for comparing how various regression functions work.…”
Section: Rec Curvementioning
confidence: 99%
“…ML algorithms offer a robust approach to analyzing complex medical data and supporting more precise clinical decision-making [6]. Among these algorithms, XGBoost (Extreme Gradient Boosting) has emerged as a highly effective tool in predictive modeling owing to its efficiency, scalability, and superior performance [7]. With the capability to handle large and diverse datasets, XGBoost has become a preferred choice across various applications, including health risk prediction.…”
Section: Introductionmentioning
confidence: 99%