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save_dtGAP(): Export dtGAP visualizations to PNG, PDF,
or SVG files with customizable dimensions and resolution.select_vars parameter in dtGAP():
Display-only variable filtering for heatmap panels while the tree is
trained on all variables.fit and user_var_imp parameters in
dtGAP(): Supply a pre-trained tree (rpart, party, or caret)
directly, with automatic model detection and optional user-provided
variable importance.interactive parameter in dtGAP(): Launch a
Shiny-based interactive heatmap viewer via
InteractiveComplexHeatmap.compare_dtGAP(): Compare two or more tree models
side-by-side on a single wide canvas.partykit::cforest:
train_rf(): Train a conditional random forest and
extract variable importance.rf_summary(): Ensemble-level summary with variable
importance barplot and representative tree identification.rf_dtGAP(): Visualize any individual tree from the
forest using the full dtGAP pipeline.formatC() error in prepare_tree() for
cforest trees that lack numeric p-values.dtGAP() function for supervised decision-tree
visualization using the GAP framework.These binaries (installable software) and packages are in development.
They may not be fully stable and should be used with caution. We make no claims about them.