ENGLISH

Explanation-Based Neural Network Learning: A Lifelong Learning Approach

Book information

Publisher
Springer US
Year
1996
ISBN
978-1-4612-8597-7, 978-1-4613-1381-6
DOI
10.1007/978-1-4613-1381-6
Language
english
Format
PDF
Filesize
6 MB (6665620 bytes)
Series
The Kluwer International Series in Engineering and Computer Science 357
Edition
1
Pages
264\273
Orientation
yes
Scanned
yes
Time added
2013-08-01 04:00:00

Description

Lifelong learning addresses situations in which a learner faces a series of different learning tasks providing the opportunity for synergy among them. Explanation-based neural network learning (EBNN) is a machine learning algorithm that transfers knowledge across multiple learning tasks. When faced with a new learning task, EBNN exploits domain knowledge accumulated in previous learning tasks to guide generalization in the new one. As a result, EBNN generalizes more accurately from less data than comparable methods. Explanation-Based Neural Network Learning: A Lifelong LearningApproach describes the basic EBNN paradigm and investigates it in the context of supervised learning, reinforcement learning, robotics, and chess. `The paradigm of lifelong learning - using earlier learned knowledge to improve subsequent learning - is a promising direction for a new generation of machine learning algorithms. Given the need for more accurate learning methods, it is difficult to imagine a future for machine learning that does not include this paradigm.' From the Foreword by Tom M. Mitchell.

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