Krishnasamy Distributed Deep Learning and Explainable AI (XAI) in Industry 4.0

Distributed Deep Learning and Explainable AI (XAI) in Industry 4.0

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Beschreibung

This book is a comprehensive resource that delves into the integration of advanced artificial intelligence techniques within the context of modern industrial practices. It systematically explores how distributed deep learning methodologies can be effectively combined with explainable AI to enhance transparency in Industry 4.0 applications. In recent years, neural networks and other deep learning models have produced remarkable outcomes in a variety of fields, including image recognition, natural language processing, and decision-making. Concerns have been raised regarding the transparency and interpretability of these models as a result of their increasing intricacy. The demand for methodologies and approaches associated with explainable artificial intelligence (XAI) has consequently increased. The primary aim of XAI is to enhance the transparency and comprehensibility of deep learning model decision-making processes for stakeholders, irrespective of their technical expertise.


This book is a comprehensive resource that delves into the integration of advanced artificial intelligence techniques within the context of modern industrial practices. It systematically explores how distributed deep learning methodologies can be effectively combined with explainable AI to enhance transparency in Industry 4.0 applications. In recent years, neural networks and other deep learning models have produced remarkable outcomes in a variety of fields, including image recognition, natural language processing, and decision-making. Concerns have been raised regarding the transparency and interpretability of these models as a result of their increasing intricacy. The demand for methodologies and approaches associated with explainable artificial intelligence (XAI) has consequently increased. The primary aim of XAI is to enhance the transparency and comprehensibility of deep learning model decision-making processes for stakeholders, irrespective of their technical expertise.


Provides an introduction to XAI and its integration with deep learning Covers case studies and examples to illustrate how XAI can be implemented in the real world Presents new concepts, cutting-edge research, frameworks, tools that facilitate comprehension of deep learning models

Autor*in

Lalitha Krishnasamy

Themen in »Distributed Deep Learning and Explainable AI (XAI) in Industry 4.0«

Industry 4.0 Deep Learning AI Technologies Smart Manufacturing Predictive Maintenance Quality Control Adaptive Decision-making Emerging Tools AI Frameworks Robotics Automation Human-Robot Collaboration Grad-CAM

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Details

ISBN: 9783031946363
Verlag: Springer International Publishing
Erscheinung: 27.09.2025

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