Federated Learning
Springer Nature Switzerland AG (Verlag)
978-981-96-9222-4 (ISBN)
Mei Kobayashi holds an A.B. from Princeton University in Chemistry and a M.A. and Ph.D. in mathematics from the University of California at Berkeley. She was Researcher at IBM for 26 years working on: inverse problems, control theory, airflow simulations digital steganography, applications of wavelets, and text analysis. Subsequently, she joined NTT communications as Data Science Specialist, where she was Co-Manager of a team to initiate digital transformation in the Customer Services Division. She is currently Member of the Research and Development Team at EAGLYS. In addition to her work, she was Visiting Associate Professor at the University of Tokyo and Visiting Researcher at OIST, has taught at Japanese National Universities in: Kyoto, Tsukuba, Hiroshima, and Tokyo, and is currently teaching at Tsuda Women's University. She has been serving on the Editorial Board of the Communications of the ACM for over a decade and was Columnist for SIAM News.
Introduction.- Multiparty Computation.- Edge Computing.- Federated Learning.- Data Leakage and Data Poisoning.
| Erscheinungsdatum | 13.06.2025 |
|---|---|
| Reihe/Serie | ICIAM2023 Springer Series |
| Zusatzinfo | 18 Illustrations, color; 1 Illustrations, black and white |
| Verlagsort | Cham |
| Sprache | englisch |
| Maße | 155 x 235 mm |
| Themenwelt | Mathematik / Informatik ► Informatik ► Theorie / Studium |
| Mathematik / Informatik ► Mathematik ► Angewandte Mathematik | |
| Schlagworte | AI, artificial intelligence • Cloudlets • Data Augmentation • Data Leakage • data poisoning • Data Security • edge computing • federated learning • Federated Transfer Learning • Fog Computing • multiparty computation • Neural networks • Quantum Safe Encryption • synthetic data • transfer learning |
| ISBN-10 | 981-96-9222-9 / 9819692229 |
| ISBN-13 | 978-981-96-9222-4 / 9789819692224 |
| Zustand | Neuware |
| Informationen gemäß Produktsicherheitsverordnung (GPSR) | |
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