Exploring local explanations of nonlinear models using animated linear projections
Nicholas Spyrison,
Dianne Cook,
Przemyslaw Biecek
Abstract:The increased predictive power of machine learning models comes at the cost of increased complexity and loss of interpretability, particularly in comparison to parametric statistical models. This trade-off has led to the emergence of eXplainable AI (XAI) which provides methods, such as local explanations (LEs) and local variable attributions (LVAs), to shed light on how a model use predictors to arrive at a prediction. These provide a point estimate of the linear variable importance in the vicinity of a single… Show more
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