Fairness and Machine Learning: Limitations and Opportunities

Fairness and Machine Learning: Limitations and Opportunities

Solon Barocas , Arvind Narayanan
Brak ocen
Dec 19, 2023 · Angielski · Twarda okładka (340 strony)
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Szczegóły książki

Format Twarda okładka
Strony 340
Język Angielski
Opublikowany Dec 19, 2023
Wydawca The MIT Press
ISBN-10 0262048612
ISBN-13 9780262048613

Opis

In a world increasingly influenced by technology, the concepts of fairness and equity in machine learning are more crucial than ever. This book offers an insightful exploration of the ethical considerations that underpin the development and deployment of algorithms. Readers are guided through the complex landscape of fairness, revealing both the limitations that currently exist and the opportunities for improvement.

The authors, Solon Barocas and Arvind Narayanan, delve into the intellectual foundations of fairness in machine learning, weaving together theoretical discussions and real-world applications. Through their comprehensive analysis, they shed light on how biases can be embedded in algorithms and the implications these biases have on society.

As practitioners and researchers navigate this evolving field, the book serves as a pivotal resource for understanding both the challenges and potential pathways toward more equitable machine learning systems. Through a blend of research, examples, and practical insights, it encourages a critical dialogue about the future of technology and fairness.
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