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Neural network-based generation of artificial spatially variable earthquakes ground motions
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  • Neural network-based generation of artificial spatially variable earthquakes ground motions
  • Neural network-based generation of artificial spatially variable earthquakes ground motions
저자명
Ghaffarzadeh. Hossein,Izadi. Mohammad Mahdi,Talebian. Nima
간행물명
Earthquakes and structures
권/호정보
2013년|4권 5호|pp.509-525 (17 pages)
발행정보
테크노프레스
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정기간행물|ENG|
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이 논문은 한국과학기술정보연구원과 논문 연계를 통해 무료로 제공되는 원문입니다.
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기타언어초록

In this paper, learning capabilities of two types of Arterial Neural Networks, namely hierarchical neural networks and Generalized Regression Neural Network were used in a two-stage approach to develop a method for generating spatial varying accelerograms from acceleration response spectra and a distance parameter in which generated accelerogram is desired. Data collected from closely spaced arrays of seismographs in SMART-1 array were used to train neural networks. The generated accelerograms from the proposed method can be used for multiple support excitations analysis of structures that their supports undergo different motions during an earthquake.