Kniha Explainable Deep Learning AI Jenny Benois-Pineau

Explainable Deep Learning AI

Methods and Challenges

Jazyk: Angličtina
Vazba: Brožovaná
Dostupnost: Skladem u dodavatele
Odesíláme za 10-18 dnů
3 232
The recent focus of Artificial Intelligence (AI) researchers and practitioners on supervised learnin...

Informace o knize

Jazyk
Angličtina
Vazba
Kniha - Brožovaná
Vydáno
2023
Stránek
395
EAN
9780323960984
Enbook ID
39258066
Hmotnost
450
Rozměry
191 x 235

Kompletní popis

The recent focus of Artificial Intelligence (AI) researchers and practitioners on supervised learning approaches, particularly on Deep Learning, has resulted in a considerable increase of performance of AI systems, but this has raised the question of the trustfulness and explainability of their predictions for human decision makers and adopters. Explainable AI (XAI) is addressing this challenge by developing methods to "understand" and "explain" to humans how these systems produce their decisions. This book presents the latest works of leading researchers in XAI area and will offer the reader, besides an overview of the XAI area, several novel technical methods and applications that address explainability challenges for Deep Learning AI systems. The book starts with the overviewing the XAI area, then in 13 chapters covers a number of specific technical works and approaches to XAI for Deep learning, ranging from general XAI methods, to specific XAI applications, and finally with user-oriented evaluation approaches. It explores the main categories of methods of explainable AI – Deep Learning, which become the necessary condition in various applications of Artificial Intelligence, following a methodological approach. The groups of methods such as back-propagation and perturbation-based methods are explained, and the application to various kinds of the data classification is presented. It also addresses important questions on evaluation by users. Provides an overview of main approaches to Explainable Artificial Intelligence (XAI) in Deep Learning area, including the most popular techniques and their use, concluding with challenges and exciting future directions of XAI Explores the latest developments in general XAI methods for Deep Learning Explains how XAI for Deep Learning is applied to various domains like images, medicine, and natural language processing Provides an overview of how XAI systems are tested and evaluated especially with real users, a critical need in XAI

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