Deep Neural Network Tools for Probability and Statistic Models


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Documentation for package ‘dnn’ version 0.0.7

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dnn-package An R package for the deep neural networks probability and statistics models
activation Activation function
bwdCheck Back propagation for dnn Models
bwdNN Back propagation for dnn Models
bwdNN2 Back propagation for dnn Models
CVpredErr A function for tuning of the hyper parameters
deepAFT Deep learning for the accelerated failure time (AFT) model
deepAFT.default Deep learning for the accelerated failure time (AFT) model
deepAFT.formula Deep learning for the accelerated failure time (AFT) model
deepAFT.ipcw Deep learning for the accelerated failure time (AFT) model
deepAFT.trans Deep learning for the accelerated failure time (AFT) model
deepGLM Deep learning for the generalized linear models
deepGlm Deep learning for the generalized linear models
deepSurv Deep learning for the Cox proportional hazards model
deepSurv.default Deep learning for the Cox proportional hazards model
delu Activation function
didu Activation function
dlrelu Activation function
dnn An R package for the deep neural networks probability and statistics models
dnn-doc An R package for the deep neural networks probability and statistics models
dnnControl Auxiliary function for 'dnnFit' dnnFit
dnnFit Fitting a Deep Learning model with a given loss function
dnnFit2 Fitting a Deep Learning model with a given loss function
dNNmodel Specify a deep neural network model
drelu Activation function
dsigmoid Activation function
dtanh Activation function
elu Activation function
fwdNN Feed forward and back propagation for dnn Models
fwdNN2 Feed forward and back propagation for dnn Models
hyperTuning A function for tuning of the hyper parameters
ibs.deepAFT Calculate integrated Brier Score for deepAFT
idu Activation function
lrelu Activation function
mseIPCW Mean Square Error (mse) for a fitted survival Object
optimizerAdamG Functions to optimize the gradient descent of a cost function
optimizerMomentum Functions to optimize the gradient descent of a cost function
optimizerNAG Functions to optimize the gradient descent of a cost function
optimizerSGD Functions to optimize the gradient descent of a cost function
plot.deepAFT Plot methods in dnn package
plot.dNNmodel Plot methods in dnn package
predict.deepAFT Predicted Values for a deepAFT or a deepSurv Object
predict.deepGlm Deep learning for the generalized linear models
predict.deepSurv Predicted Values for a deepAFT or a deepSurv Object
predict.dNNmodel Feed forward and back propagation for dnn Models
predict.dSurv Predicted Values for a deepAFT or a deepSurv Object
print.deepAFT print a summary of fitted deep learning model object
print.deepGlm print a summary of fitted deep learning model object
print.deepSurv print a summary of fitted deep learning model object
print.dNNmodel print a summary of fitted deep learning model object
print.summary.deepAFT print a summary of fitted deep learning model object
print.summary.deepGlm print a summary of fitted deep learning model object
print.summary.deepSurv print a summary of fitted deep learning model object
print.summary.dNNmodel print a summary of fitted deep learning model object
relu Activation function
residuals.deepAFT Calculate Residuals for a deepAFT Fit.
residuals.deepGlm Deep learning for the generalized linear models
residuals.dSurv Calculate Residuals for a deepAFT Fit.
rmst.deepSurv The restricted mean survival time (RMST)
sigmoid Activation function
summary.deepAFT print a summary of fitted deep learning model object
summary.deepGlm Deep learning for the generalized linear models
summary.deepSurv Deep learning for the Cox proportional hazards model
summary.dNNmodel print a summary of fitted deep learning model object
survfit.deepAFT Compute a Survival Curve from a deepAFT or a deepSurv Model
survfit.deepSurv Compute a Survival Curve from a deepAFT or a deepSurv Model