The Variational Deficiency Bottleneck
October 27, 2018 Β· Declared Dead Β· π IEEE International Joint Conference on Neural Network
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Authors
Pradeep Kr. Banerjee, Guido MontΓΊfar
arXiv ID
1810.11677
Category
cs.IT: Information Theory
Cross-listed
cs.LG
Citations
7
Venue
IEEE International Joint Conference on Neural Network
Last Checked
5 months ago
Abstract
We introduce a bottleneck method for learning data representations based on information deficiency, rather than the more traditional information sufficiency. A variational upper bound allows us to implement this method efficiently. The bound itself is bounded above by the variational information bottleneck objective, and the two methods coincide in the regime of single-shot Monte Carlo approximations. The notion of deficiency provides a principled way of approximating complicated channels by relatively simpler ones. We show that the deficiency of one channel with respect to another has an operational interpretation in terms of the optimal risk gap of decision problems, capturing classification as a special case. Experiments demonstrate that the deficiency bottleneck can provide advantages in terms of minimal sufficiency as measured by information bottleneck curves, while retaining robust test performance in classification tasks.
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