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- W3082182217 abstract "Artificial neural networks (NNs) have become the de facto standard in machine learning. They allow learning highly nonlinear transformations in a plethora of applications. However, NNs usually only provide point estimates without systematically quantifying corresponding uncertainties. In this paper a novel approach towards fully Bayesian NNs is proposed, where training and predictions of a perceptron are performed within the Bayesian inference framework in closed-form. The weights and the predictions of the perceptron are considered Gaussian random variables. Analytical expressions for predicting the perceptron's output and for learning the weights are provided for commonly used activation functions like sigmoid or ReLU. This approach requires no computationally expensive gradient calculations and further allows sequential learning." @default.
- W3082182217 created "2020-09-08" @default.
- W3082182217 creator A5031354877 @default.
- W3082182217 date "2020-09-03" @default.
- W3082182217 modified "2023-09-27" @default.
- W3082182217 title "Bayesian Perceptron: Towards fully Bayesian Neural Networks" @default.
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- W3082182217 hasPublicationYear "2020" @default.
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