Tài liệu tham khảo |
Loại |
Chi tiết |
[1] Morio J., Balesdent M., 2015, Estimation of Rare Event Probabilities in Complex Aerospace and Other Systems, Elsevier Science |
Sách, tạp chí |
Tiêu đề: |
Estimation of Rare Event Probabilities inComplex Aerospace and Other Systems |
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[2] Sharma A. S., Bunde A., Dimri V. P., Baker D. N., 2012, Extreme events and natural hazards: The complexity perspective, Wiley |
Sách, tạp chí |
Tiêu đề: |
Extreme events andnatural hazards: The complexity perspective |
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[4] Goodfellow Ian, Bengio Yoshua, Courville Aaron, 2016, Deep Learning, MIT Press |
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[11] Zhou C., Paffenroth R. C., 2017, Anomaly detection with robust deep autoencoders, ACM SIGKDD 2017 International Conference on Knowledge Discovery and Data Mining |
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Tiêu đề: |
Zhou C., Paffenroth R. C., 2017, Anomaly detection with robust deepautoencoders |
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[14] Embrechts P., Klüppelberg C., Mikosch T. , 1997, Modelling extremal events: For insurance and finance, Vol. 33 Springer |
Sách, tạp chí |
Tiêu đề: |
Modelling extremalevents: For insurance and finance |
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[16] Nitesh V., Kevin W., Lawrence O., Philip W., 2002, SMOTE: Synthetic Minority Over-sampling Technique, Journal of Artificial Intelligence Research |
Sách, tạp chí |
Tiêu đề: |
Nitesh V., Kevin W., Lawrence O., Philip W., 2002, SMOTE: SyntheticMinority Over-sampling Technique |
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[19] Ribeiro M., Lazzaretti A. E., Lopes H. S., 2018, A study of deep convolutional auto-encoders for anomaly detection in videos, Pattern Recognition Letters |
Sách, tạp chí |
Tiêu đề: |
Ribeiro M., Lazzaretti A. E., Lopes H. S., 2018, A study of deepconvolutional auto-encoders for anomaly detection in videos |
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[22] Cho K., 2013, Simple sparsification improves sparse denoising autoencoders in denoising highly corrupted images, In International Conference on Machine Learning |
Sách, tạp chí |
Tiêu đề: |
Cho K., 2013, Simple sparsification improves sparse denoising autoencodersin denoising highly corrupted images |
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[23] Zeng Kun, Yu Jun, Wang Ruxin, Li Cuihua, Tao Dacheng, 2017, Coupled Deep Autoencoder for Single Image Super-Resolution, IEEE Transactions on Cybernetics |
Sách, tạp chí |
Tiêu đề: |
Zeng Kun, Yu Jun, Wang Ruxin, Li Cuihua, Tao Dacheng, 2017, CoupledDeep Autoencoder for Single Image Super-Resolution |
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[24] Gondara Lovedeep, 2016, Medical Image Denoising Using Convolutional Denoising Autoencoders, 2016 IEEE 16th International Conference on Data Mining Workshops |
Sách, tạp chí |
Tiêu đề: |
Gondara Lovedeep, 2016, Medical Image Denoising Using ConvolutionalDenoising Autoencoders |
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[26] Xu Jun, Xiang Lei, Liu Qingshan, Gilmore Hannah, Wu Jianzhong, Tang Jinghai, Madabhushi Anant, 2016, Stacked Sparse Autoencoder (SSAE) for Nuclei Detection on Breast Cancer Histopathology Images, IEEE Transactions on Medical Imaging |
Sách, tạp chí |
Tiêu đề: |
Xu Jun, Xiang Lei, Liu Qingshan, Gilmore Hannah, Wu Jianzhong, TangJinghai, Madabhushi Anant, 2016, Stacked Sparse Autoencoder (SSAE) forNuclei Detection on Breast Cancer Histopathology Images |
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[27] Martinez-Murcia Francisco J., Ortiz Andres, Gorriz Juan M., Ramirez Javier, Castillo-Barnes Diego, 2020, Studying the Manifold Structure of Alzheimer's Disease: A Deep Learning Approach Using Convolutional Autoencoders, IEEE Journal of Biomedical and Health Informatics |
Sách, tạp chí |
Tiêu đề: |
Martinez-Murcia Francisco J., Ortiz Andres, Gorriz Juan M., Ramirez Javier,Castillo-Barnes Diego, 2020, Studying the Manifold Structure ofAlzheimer's Disease: A Deep Learning Approach Using ConvolutionalAutoencoders |
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[8] Hinton G. E., Salakhutdinov R. R., 2006, Reducing the Dimensionality of Data with Neural Networks, Science |
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[9] Vincent Pascal, Larochelle Hugo, 2010, Stacked Denoising Autoencoders:Learning Useful Representations in a Deep Network with a Local Denoising Criterion, The Journal of Machine Learning Research |
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[12] Ranjan C., Mustonen M., Paynabar K., Pourak K., 2018, Dataset: Rare Event Classification in Multivariate Time Series |
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