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The goal of this package is to cover the most common steps in probability of default (PD) rating model development and validation. The main procedures available are those that refer to univariate, bivariate, multivariate analysis, calibration and validation. Along with accompanied 'monobin' and 'monobinShiny' packages, 'PDtoolkit' provides functions which are suitable for different data transformation and modeling tasks such as: imputations, monotonic binning of numeric risk factors, binning of categorical risk factors, weights of evidence (WoE) and information value (IV) calculations, WoE coding (replacement of risk factors modalities with WoE values), risk factor clustering, area under curve (AUC) calculation and others. Additionally, package provides set of validation functions for testing homogeneity, heterogeneity, discriminatory and predictive power of the model.

copied from cf-staging / r-pdtoolkit
Type Size Name Uploaded Downloads Labels
conda 532.6 kB | noarch/r-pdtoolkit-1.2.0-r43hc72bb7e_0.conda  5 months and 30 days ago 368 main
conda 537.5 kB | noarch/r-pdtoolkit-1.2.0-r44hc72bb7e_0.conda  5 months and 30 days ago 356 main

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