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Application of deep autoencoder model for structural condition monitoring
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作者 PATHIRAGE Chathurdara Sri Nadith LI Jun +2 位作者 LI Ling HAO Hong LIU Wanquan 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2018年第4期873-880,共8页
Damage detection in structures is performed via vibra-tion based structural identification. Modal information, such as fre-quencies and mode shapes, are widely used for structural dama-ge detection to indicate the hea... Damage detection in structures is performed via vibra-tion based structural identification. Modal information, such as fre-quencies and mode shapes, are widely used for structural dama-ge detection to indicate the health conditions of civil structures.The deep learning algorithm that works on a multiple layer neuralnetwork model termed as deep autoencoder is proposed to learnthe relationship between the modal information and structural stiff-ness parameters. This is achieved via dimension reduction of themodal information feature and a non-linear regression against thestructural stiffness parameters. Numerical tests on a symmetri-cal steel frame model are conducted to generate the data for thetraining and validation, and to demonstrate the efficiency of theproposed approach for vibration based structural damage detec-tion. 展开更多
关键词 auto encoder non-linear regression deep auto en-coder model damage identification VIBRATION structural health monitoring
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基于SAE与底层视觉特征融合的无人机目标识别算法 被引量:2
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作者 谢冰 段哲民 《红外与激光工程》 EI CSCD 北大核心 2018年第A01期197-205,共9页
无人机在复杂战场环境下,因敌方无人机外形、颜色等特征较为相似,现有基于底层视觉特征无法快速地对其进而准确的识别,从而造成误检测甚至误打击等事件的发生。针对这一问题,文中提出基于稀疏自动编码器融合底层视觉特征的算法,对... 无人机在复杂战场环境下,因敌方无人机外形、颜色等特征较为相似,现有基于底层视觉特征无法快速地对其进而准确的识别,从而造成误检测甚至误打击等事件的发生。针对这一问题,文中提出基于稀疏自动编码器融合底层视觉特征的算法,对无人机目标对象进行识别。算法首先利用底层视觉特征描述子(GIST、LBP)以及稀疏自动编码器(Sparse Auto—Encoder,SAE)提取目标对象的底层视觉特征和高层视觉特征;然后,采用主成分分析(PAC)法对全局特征进行降维融合;最后,将全局特征响应送入softmax回归模型完成无人机目标对象的分类。实验表明,与传统SAE算法及传统基于底层视觉特征描述子识别算法相比,新算法具有更高的准确性及鲁棒性。 展开更多
关键词 无人机目标对象 目标识别 SPARSE autoencoder 底层视觉描述子 PCA
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