Deep neural networks as gaussian processes
Original
Lee, J., Bahri, Y., Novak, R., Schoenholz, S. S., Pennington, J., and Sohl-Dickstein, J · 2017
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Improving the identifiability of neural networks for bayesian inference
Pourzanjani, A. A., Jiang, R. M., and Petzold, L. R · 2017
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Doubly stochastic variational inference for deep gaussian processes
Salimbeni, H. and Deisenroth, M · 2017
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Deep convolutional networks as shallow gaussian processes
Original
Garriga-Alonso, A., Rasmussen, C. E., and Aitchison, L · 2018
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Visualizing the loss landscape of neural nets
Li, H., Xu, Z., Taylor, G., Studer, C., and Goldstein, T · 2018
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Gaussian process behaviour in wide deep neural networks
Original
Matthews, A. G. d. G., Rowland, M., Hron, J., Turner, R. E., and Ghahramani, Z · 2018
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Bayesian deep convolutional networks with many channels are gaussian processes
Original
Novak, R., Xiao, L., Lee, J., Bahri, Y., Yang, G., Hron, J., Abolafia, D. A., Pennington, J., and Sohl-Dickstein, J · 2018
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Why bigger is not always better: on finite and infinite neural networks
Original
Aitchison, L · 2019
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Scalable bayesian dynamic covariance modeling with variational wishart and inverse wishart processes
Heaukulani, C. and van der Wilk, M · 2019
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Pac-bayes with backprop
Original
Rivasplata, O., Tankasali, V. M., and Szepesvari, C · 2019
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Stochastic differential equations with variational wishart diffusions
Jorgensen, M., Deisenroth, M., and Salimbeni, H · 2020
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Approximate inference for fully bayesian gaussian process regression
Lalchand, V. and Rasmussen, C. E · 2020
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Global inducing point variational posteriors for bayesian neural networks and deep gaussian processes
Original
Ober, S. W. and Aitchison, L · 2020
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