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Multitask Learning in Science

Multitask Learning in Science

Hardcover

Series: Springer Optimization and Its Applications, Book 244

General ComputersGeneral MathematicsProbability & Statistics

PREORDER - Expected ship date October 24, 2026

ISBN10: 3032299969
ISBN13: 9783032299963
Publisher: Springer
Published: Oct 24 2026
Pages: 363
Language: English

This book offers a comprehensive exploration of multi-task learning (MTL), a pivotal paradigm in modern machine learning that emphasizes learning related tasks together rather than in isolation. By sharing representations and inductive biases, MTL can enhance data efficiency and generalization, yet it also presents challenges such as task interference and scalability. This volume provides a coherent introduction to these issues, presenting diverse perspectives and applications across science and engineering.

Also from

Pardalos, Panos M.

Also in

General Mathematics