Explainable AI with Python

,

Éditeur :

Springer

Paru le : 2021-04-28

This book provides a full presentation of the current concepts and available techniques to make “machine learning” systems more explainable. The approaches presented can be applied to almost all the current “machine learning” models: linear and logistic regression, deep learning neural networks, nat...
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Éditeur

Collection
n.c

Parution
2021-04-28

Pages
202 pages

EAN papier
9783030686390

Auteur(s) du livre


Leonida Gianfagna (Phd, MBA) is a theoretical physicist that is currently working in Cyber Security as R&D director for Cyber Guru. Before joining Cyber Guru he worked in IBM for 15 years covering leading roles in software development in ITSM (IT Service Management). He is the author of several publications in theoretical physics and computer science and accredited as IBM Master Inventor (15+ filings). Antonio Di Cecco is a theoretical physicist with a strong mathematical background that is fully engaged on delivering education on AIML at different levels from dummies to experts (face to face classes and remotely). The main strength of his approach is the deep-diving of the mathematical foundations of AIML models that open new angles to present the AIML knowledge and space of improvements for the existing state of art. Antonio has also a “Master in Economics” with focus innovation and teaching experiences. He is leading School of AI in Italy with chapters in Rome and Pescara

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EAN PDF
9783030686406
Prix
73,84 €
Nombre pages copiables
2
Nombre pages imprimables
20
Taille du fichier
8724 Ko
EAN EPUB
9783030686406
Prix
73,84 €
Nombre pages copiables
2
Nombre pages imprimables
20
Taille du fichier
40233 Ko

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