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OPTIMIZING ARTIFICIAL NEURAL NETWORKS FOR THE EVALUATION OF ASPHALT PAVEMENT STRUCTURAL PERFORMANCE

机译:优化人工神经网络,用于评估沥青路面结构性能

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摘要

Artificial Neural Networks represent useful tools for several engineering issues. Although they were adopted in several pavement-engineering problems for performance evaluation, their application on pavement structural performance evaluation appears to be remarkable. It is conceivable that defining a proper Artificial Neural Network for estimating structural performance in asphalt pavements from measurements performed through quick and economic surveys produces significant savings for road agencies and improves maintenance planning. However, the architecture of such an Artificial Neural Network must be optimised, to improve the final accuracy and provide a reliable technique for enriching decision-making tools. In this paper, the influence on the final quality of different features conditioning the network architecture has been examined, for maximising the resulting quality and, consequently, the final benefits of the methodology. In particular, input factor quality (structural, traffic, climatic), "homogeneity" of training data records and the actual net topology have been investigated. Finally, these results further prove the approach efficiency, for improving Pavement Management Systems and reducing deflection survey frequency, with remarkable savings for road agencies.
机译:人工神经网络代表了几种工程问题的有用工具。虽然它们在几个路面工程问题中采用了绩效评估,但它们对人行道结构性能评估的应用似乎是显着的。可以想到,定义用于估计通过快速和经济调查的测量的沥青路面中的结构性能的适当人工神经网络产生了对道路机构的显着节省,提高了维护计划。然而,必须优化这种人工神经网络的架构,以提高最终精度并提供用于丰富决策工具的可靠技术。在本文中,研究了对不同特征调节网络架构的最终质量的影响,用于最大化所得的质量,从而最大限度地提高方法。特别地,研究了培训数据记录的输入因子质量(结构,交通,气候),“同质性”以及实际的净拓扑。最后,这些结果进一步证明了改进路面管理系统和减少偏转调查频率的方法效率,为公路机构提供了显着的节省。

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