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ANFIS Model for Prediction of Critical Strain Without Back Calculation of Layer Moduli

  • 2025
  • OriginalPaper
  • Chapter
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Abstract

This chapter explores the application of Adaptive Neuro-Fuzzy Inference Systems (ANFIS) to predict critical strains in asphalt pavements, offering a more efficient alternative to traditional methods. The study focuses on five key parameters: the thicknesses of bituminous and non-bituminous layers, pavement surface temperature, and two deflection parameters (SCI and BCI). By utilizing ANFIS, the research aims to reduce the reliance on extensive field testing and software iterations, ultimately aiding in better decision-making for pavement maintenance and repair. The results reveal that the ANFIS model with three trapezoidal membership functions (trapmf) for each input variable achieved a high R² value of 0.96 and a low RMSE value of 0.0407 in predicting vertical compressive strain at the top of the subgrade. The study concludes that ANFIS models can significantly enhance the accuracy and efficiency of pavement evaluations, providing a robust tool for predicting critical strains and assessing residual service life.

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Title
ANFIS Model for Prediction of Critical Strain Without Back Calculation of Layer Moduli
Authors
Madhur Saini
Vidhi Vyas
Arun Goel
Copyright Year
2025
Publisher
Springer Nature Singapore
DOI
https://doi.org/10.1007/978-981-96-9841-7_2
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