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machine learning in structural engineering
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نویسنده
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amezquita-sancheza j.p. ,valtierra-rodriguez m. ,adeli h.
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منبع
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scientia iranica - 2020 - دوره : 27 - شماره : 6-A - صفحه:2645 -2656
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چکیده
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This article presents a review of selected articles about structural engineering applications of machine learning (ml) in the past few years. it is divided into the following areas: structural system identification, structural health monitoring, structural vibration control, structural design, and prediction applications. deepneural networkalgorithms have beenthe subject of a large number of articles in civil and structural engineering.there are, however, otherml algorithms with great potential in civil and structural engineering that are worth exploring. four novel supervised ml algorithms developed recently by the senior author and his associates with potential applications in civil/structural engineering are reviewed in this paper. they are the enhanced probabilistic neural network (epnn), the neural dynamic classification (ndc) algorithm, the finite element machine (fema), and the dynamic ensemble learning (del) algorithm
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کلیدواژه
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civil structures;machine learning;deep learning;structural engineering;system identification;structural health monitoring;vibration control;structural design;prediction
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آدرس
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autonomous university of queretaro, campus san juan del rio, faculty of engineering, department of electromechanical, department of biomedical engineering, mexico, autonomous university of queretaro, campus san juan del rio, faculty of engineering, department of electromechanical, department of biomedical engineering, mexico, ohio state university, department of civil, environmental, and geodetic engineering, usa
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Authors
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