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Towards application of linear genetic programming for indirect estimation of the resilient modulus of pavements subgrade soils

机译:线性遗传规划在间接估算路面路基土弹性模量中的应用

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The success of a flexible pavement design depends on the accuracy of determining the structural response of the pavement to dynamic loads, known as resilient modulus (M-R). This paper explores the potential of a branch of the computational intelligence techniques, namely linear genetic programming (LGP), for indirect estimation of the M-R of pavements subgrade soils. Furthermore, a pre-design model is proposed which characterises M-R factor in terms of subgrade soil properties and applied stress states utilising a selected database which comprises of several test results conducted on cohesive Ohio A-6 soils. In order to assess the degree of accuracy and reliability of the obtained model, various statistical criteria and verification study phases are conducted. Finally, better results of the obtained model in comparison with traditional models prove the robustness and capability of LGP approach for indirect estimation of M-R of pavement subgrade soils.
机译:柔性路面设计的成功取决于确定路面对动态载荷的结构响应的准确性,这称为弹性模量(M-R)。本文探讨了计算智能技术的一个分支,即线性遗传规划(LGP),用于间接估算路面路基土壤M-R的潜力。此外,提出了一种预设计模型,该模型使用选定的数据库来表征路基土壤特性和施加的应力状态下的M-R因子,该数据库包括在粘性俄亥俄州A-6土壤上进行的若干测试结果。为了评估所获得模型的准确性和可靠性,进行了各种统计标准和验证研究阶段。最后,与传统模型相比,所获得模型的更好结果证明了LGP方法间接估计路面路基土壤M-R的鲁棒性和能力。

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