Since its founding in 1989 by Terrence Sejnowski, Neural
Computation has become the leading journal in the field.
Foundations of Neural Computationcollects, by topic, the most
significant papers that have appeared in the journal over the past
nine years.This volume of Foundations of Neural Computation, on
unsupervised learning algorithms, focuses on neural network
learning algorithms that do not require an explicit teacher. The
goal of unsupervised learning is to extract an efficient internal
representation of the statistical structure implicit in the inputs.
These algorithms provide insights into the development of the
cerebral cortex and implicit learning in humans. They are also of
interest to engineers working in areas such as computer vision and
speech recognition who seek efficient representations of raw input
data.
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