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Transparent Data Mining for Big and Small Data

Frank Pasquale (Hrsg.), Daniele Quercia (Hrsg.), Tania Cerquitelli (Hrsg.)

PDF
ca. 139,09
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Springer International Publishing img Link Publisher

Naturwissenschaften, Medizin, Informatik, Technik / Informatik

Beschreibung

This book focuses on new and emerging data mining solutions that offer a greater level of transparency than existing solutions. Transparent data mining solutions with desirable properties (e.g. effective, fully automatic, scalable) are covered in the book. Experimental findings of transparent solutions are tailored to different domain experts, and experimental metrics for evaluating algorithmic transparency are presented. The book also discusses societal effects of black box vs. transparent approaches to data mining, as well as real-world use cases for these approaches.
As algorithms increasingly support different aspects of modern life, a greater level of transparency is sorely needed, not least because discrimination and biases have to be avoided. With contributions from domain experts, this book provides an overview of an emerging area of data mining that has profound societal consequences, and provides the technical background to for readers to contribute to the field or to put existing approaches to practical use.

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Schlagwörter

Big Data Paradigm Shift, Transparent vs Opaque Algorithms, Automated Decision Making, complexity, algorithm analysis and problem complexity, Glass-box Algorithms, Transparent Predictive Models, Black-box Algorithms