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Journal ArticleDOI

Learning representations by back-propagating errors

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TLDR
Back-propagation repeatedly adjusts the weights of the connections in the network so as to minimize a measure of the difference between the actual output vector of the net and the desired output vector, which helps to represent important features of the task domain.
Abstract
We describe a new learning procedure, back-propagation, for networks of neurone-like units. The procedure repeatedly adjusts the weights of the connections in the network so as to minimize a measure of the difference between the actual output vector of the net and the desired output vector. As a result of the weight adjustments, internal ‘hidden’ units which are not part of the input or output come to represent important features of the task domain, and the regularities in the task are captured by the interactions of these units. The ability to create useful new features distinguishes back-propagation from earlier, simpler methods such as the perceptron-convergence procedure1.

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Journal ArticleDOI

Perceptual Adversarial Networks for Image-to-Image Transformation

TL;DR: The perceptual adversarial loss is proposed, which undergoes an adversarial training process between the image transformation network and the discriminative network and can be trained alternately to solve image-to-image transformation tasks.
Proceedings ArticleDOI

Learning multidimensional signal processing

TL;DR: This paper presents the general strategy for designing learning machines as well as a number of particular designs based on two main principles: simple adaptive local models; and adaptive model distribution.
Journal ArticleDOI

Computer-aided diagnosis: a neural-network-based approach to lung nodule detection

TL;DR: A computer-aided diagnosis system, based on a two-level artificial neural network (ANN) architecture, trained, tested, and evaluated specifically on the problem of detecting lung cancer nodules found on digitized chest radiographs.
Journal ArticleDOI

Fuzzy systems with defuzzification are universal approximators

TL;DR: Whether the answer to the above question is positive when the answer is restricted to a fixed (but arbitrary) type of fuzzy reasoning and to a subclass of fuzzy relations is researched.
Patent

Score based decisioning

TL;DR: In this article, an entity operating on the Internet or on another network is able to selectively request additional data about a user who has made a request for an interaction with the entity.
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