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E-Book, Englisch, 460 Seiten
Reihe: Springer Nature Proceedings excluding Computer Science
Gupta / Pandey / Nigam Next-Generation Networks and Deployable Artificial Intelligence
Erscheinungsjahr 2026
ISBN: 978-3-032-15401-9
Verlag: Springer International Publishing
Format: PDF
Kopierschutz: 1 - PDF Watermark
Proceedings of NGNDAI 2025, Volume 1
E-Book, Englisch, 460 Seiten
Reihe: Springer Nature Proceedings excluding Computer Science
ISBN: 978-3-032-15401-9
Verlag: Springer International Publishing
Format: PDF
Kopierschutz: 1 - PDF Watermark
This book is a collection of best selected research papers presented at International Conference on Next-Generation Networks and Deployable Artificial Intelligence (NGNDAI-2025) organized by Department of Computer Science and Engineering, Motilal Nehru National Institute of Technology Allahabad, Prayagraj, India, during September 18–20, 2025. The book includes original research by researchers working in the field of artificial intelligence, machine learning, intelligent networks, robotics, and next-generation communication technologies.
Zielgruppe
Research
Autoren/Hrsg.
Weitere Infos & Material
Machine Learning for Cyber Attack Detection: Insights into Model Performance and Optimization.- Integrating Deep Learning and Augmented Reality for Personalized Dental Implantology : The Development and Application of the GIST-3DR System for Enhanced Precision and Visualization in Dental Implant Procedures.- TrafficMan: Bridging Vehicle Detection, Tracking, and RL for Intelligent Traffic Management.- A Density-based Approach for Personalized Tourist Recommendations.- Cloud-based Mango Leaf Disease Identification and Classification using Deep Learning.- Intelligent System : An aid for Jaundice detection using Deep Learning.- A Combined Approach to Hand Gesture and Face Recognition for Enhanced User Authentication.- Similarity Aware Few Shot Learning for Knowledge Graph Completion.- Abusive Comment Detection in Transliterated Bengali Corpus Using ML and DL Techniques.- A real time predictive approach for Credit Card Fraud Detection.




