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Damage identification and condition assessment of building structures using frequency response functions and neural networks

机译:使用频率响应函数和神经网络的建筑结构损伤识别和状态评估

摘要

This thesis investigated the viability of using Frequency Response Functions in combination with Artificial Neural Network technique in damage assessment of building structures. The proposed approach can help overcome some of limitations associated with previously developed vibration based methods and assist in delivering more accurate and robust damage identification results. Excellent results are obtained for damage identification of the case studies proving that the proposed approach has been developed successfully.
机译:本文研究了将频率响应函数与人工神经网络技术相结合用于建筑结构损伤评估的可行性。所提出的方法可以帮助克服与先前开发的基于振动的方法相关联的一些限制,并有助于传递更准确和可靠的损伤识别结果。案例研究的损伤识别获得了出色的结果,证明了所提出的方法已经成功开发。

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