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This volume provides readers with a compact, stimulating and
multifaceted introduction to interpretability, a key issue for
developing insightful statistical and machine learning approaches
as well as for communicating modelling results in business and
industry.Different views in the context of Industry 4.0 are offered
in connection with the concepts of explainability of machine
learning tools, generalizability of model outputs and sensitivity
analysis. Moreover, the book explores the integration of Artificial
Intelligence and robust analysis of variance for big data mining
and monitoring in Additive Manufacturing, and sheds new light on
interpretability via random forests and flexible generalized
additive models together with related software resources and
real-world examples.
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