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glm, knn,
xgboost, cubist, enet,
svm, gam, and stack, a stacked
ensemble weighted by non-negative least squares, with
stack_weights() to report the contributions. Ten in
total.treeshap.plot() methods for agri_project,
agri_resample and agri_model, plus
plot_map() (prediction, residual and error surfaces),
plot_effect() (ALE, PDP, ICE) and
plot_uncertainty() (interval coverage). Colour scales come
from hcl.colors() and are safe for colour vision
deficiency.R CMD check clean.Pre-release development.
agri_project() keyed on management unit and season,
with role detection, a duplicate-key validator and a provenance
ledger.register_source(),
register_learner()) as the extension mechanism.growing_degree_days() and
phenology_windows() for thermal-time staging; indicative
thermal parameters for six crops in crop_parameters().build_features() aggregating daily layers over
phenological stages, with calendar and whole-season alternatives for
comparison, plus heat, frost and dry-spell counters.check_project() including a leakage guard that refuses
covariate windows reaching past the harvest they predict.resample_scheme() with spatial blocking,
leave-location-out, forward-season and buffered variants; spatial
blocking is the default.train_model() reporting spatial and random
cross-validation side by side so the optimism of random folds is
quantified.uncertainty() giving split-conformal prediction
intervals with a non-circular coverage estimate.explain() with out-of-fold permutation importance and
partial dependence.report() writing a model card whose limitations section
is generated from the model’s own diagnostics.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.