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Genomics are rapidly transforming medical practice and basic biomedical research, providing insights into disease mechanisms and improving therapeutic strategies, particularly in cancer.
Regression models and life tables (with discussion)
David R Cox · 1972
Earlier work this paper cites.
A bayesian neural network approach for modelling censored data with an application to prognosis after surgery for breast cancer
Paulo JG Lisboa, H Wong, P Harris, and Ric Swindell · 2003
Earlier work this paper cites.
Regularization and variable selection via the elastic net
Hui Zou and Trevor Hastie · 2005
Earlier work this paper cites.
Random survival forests
Hemant Ishwaran, Udaya B Kogalur, Eugene H Blackstone, and Michael S Lauer · 2008
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On ranking in survival analysis: Bounds on the concordance index
Harald Steck, Balaji Krishnapuram, Cary Dehing-oberije, Philippe Lambin, and Vikas C Raykar · 2008
Cited alongside, same era.
Extracting and composing robust features with denoising autoencoders
Pascal Vincent, Hugo Larochelle, Yoshua Bengio, and Pierre-Antoine Manzagol · 2008
Cited alongside, same era.
Deep networks for early stage skin disease and skin cancer classification
Andre Esteva, Brett Kuprel, and Sebastian Thrun
Cited in the paper.
Using deep learning to enhance cancer diagnosis and classification
Rasool Fakoor, Faisal Ladhak, Azade Nazi, and Manfred Huber · 2013
Later among the works it cites.
Glmnet vignette
Trevor Hastie and Junyang Qian · 2014
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Bayesopt: A bayesian optimization library for nonlinear optimization, experimental design and bandits
Ruben Martinez-Cantin · 2014
Later among the works it cites.
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