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首页> 外文期刊>Journal of intelligent & fuzzy systems: Applications in Engineering and Technology >Assessment of ANFIS networks on wavelet packet levels in generating artificial accelerograms
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Assessment of ANFIS networks on wavelet packet levels in generating artificial accelerograms

机译:评估ANFIS网络在生成人工加速度图时的小波包级别

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Based on Adaptive Neural Network Fuzzy Inference System (ANFIS) networks, this paper presents a novel approach to generate artificial earthquake accelerograms from available data, which are compatible with specified design or response spectra. The proposed procedure uses the learning abilities of ANFIS networks as a powerful tool to develop the knowledge of the inverse mapping from response spectrum to earthquake records. Furthermore, to obtain better simulation results, Wavelet Packet Transform (WPT) and Principle Component Analysis (PCA) are used to convert records and response spectra from real to transformed spaces. Then, ANFISs are trained to relate response spectrum of records to their wavelet packet coefficients. In this process, the same results of different training levels of ANFIS method are obtained. In order to clarify the efficiency and accuracy of the proposed method, the results have been compared with the outcomes of previous artificial earthquake accelerograms generation methods. Finally, several interpretive examples are provided to demonstrate success of the suggested method.
机译:基于自适应神经网络模糊推理系统(ANFIS)网络,本文提出了一种从可用数据生成人工地震加速度图的新方法,该方法与指定的设计或响应谱兼容。拟议的程序利用ANFIS网络的学习能力作为强大的工具来发展从响应谱到地震记录的逆映射知识。此外,为了获得更好的仿真结果,小波包变换(WPT)和主成分分析(PCA)用于将记录和响应谱从实空间转换为变换空间。然后,对ANFIS进行训练,使记录的响应谱与其小波包系数相关。在此过程中,获得了不同训练水平的ANFIS方法的相同结果。为了阐明所提方法的效率和准确性,已将结果与以前的人工地震加速度图生成方法的结果进行了比较。最后,提供了几个解释性示例来证明所建议方法的成功。

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