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ANN Approach for Existing Bridge Evaluation Based on Grid and Domain Knowledge

机译:基于网格和领域知识的人工神经网络既有桥梁评估方法

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The development of a methodology for accurate and reliable condition assessment of existing bridges has become very important. This paper presents a method for estimating the status of RC beam bridges using an artificial neural network based on grid and domain knowledge, which can help bridge agency to determine the bridge state more systematically in comparison with the existing bridge risk assessment methodologies which require a large number of subjective judgments from bridge experts to build the complicated nonlinear relationships among the relative importance of attributes. As a conclusion, when the calculated bridge rating and evaluation time compared with the ANN method, it is proven that the proposed algorithm provided results similar to those obtained by experts, but can improve efficiency of bridge state assessment.
机译:发展用于对现有桥梁进行准确和可靠的状态评估的方法已变得非常重要。本文提出了一种基于网格和领域知识的人工神经网络估计RC梁桥状态的方法,与现有的桥梁风险评估方法相比,该方法可以帮助桥梁机构更系统地确定桥梁状态。一些桥梁专家的主观判断建立了属性之间相对重要性之间的复杂非线性关系。结论是,与人工神经网络方法相比,所计算的桥梁等级和评估时间可以证明该算法提供的结果与专家获得的结果相似,但可以提高桥梁状态评估的效率。

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