Description Usage Format Details Examples
It is the output of designSampleSizeClassification
function
with a list of simulated_datasets
generated under same protein number and sample size.
The list should include the required elements as below.
1 |
A list with five elements
num_proteins : the number of simulated proteins
num_samples : a vector with the number of simulated samples in each condition
results : a list with ‘num_proteins’ elements. Each element has (1) classification models trained on each simulated dataset; (2) the predictive accuracy on the validation set predicted by the corresponding classification model.
mean_predictive_accuracy : the mean predictive accuracy over all the simulated datasets.
mean_feature_importance : the mean protein importance vector over all the simulated datasets, the length of which is ‘num_proteins’.
predictive_accuracy : a vector of predictive accuracy on each simulated dataset.
feature_importance : a matrix of feature importance, where rows are proteins and columns are simulated datasets. the length of which is ‘num_proteins’.
1 2 3 4 | classification_results$num_proteins
classification_results$num_samples
classification_results$mean_predictive_accuracy
head(classification_results$mean_feature_importance)
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