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Giacomo Bassetto
Giacomo Bassetto
research center caesar, an associate of the Max Planck Society, Bonn, Germany
Bestätigte E-Mail-Adresse bei caesar.de
Titel
Zitiert von
Zitiert von
Jahr
Flexible statistical inference for mechanistic models of neural dynamics
JM Lueckmann, PJ Goncalves, G Bassetto, K Öcal, M Nonnenmacher, ...
Advances in Neural Information Processing Systems, 1289-1299, 2017
3052017
Training deep neural density estimators to identify mechanistic models of neural dynamics
PJ Gonçalves, JM Lueckmann, M Deistler, M Nonnenmacher, K Öcal, ...
elife 9, e56261, 2020
2502020
Likelihood-free inference with emulator networks
JM Lueckmann, G Bassetto, T Karaletsos, JH Macke
Symposium on Advances in Approximate Bayesian Inference, 32-53, 2019
1492019
Visual pursuit behavior in mice maintains the pursued prey on the retinal region with least optic flow
CD Holmgren, P Stahr, DJ Wallace, KM Voit, EJ Matheson, J Sawinski, ...
Elife 10, e70838, 2021
492021
Advances in neural information processing systems
JM Lueckmann, PJ Goncalves, G Bassetto, K Öcal, M Nonnenmacher, ...
Go to reference in article, 2017
132017
Likelihood-free inference with emulator networks. arxiv e-prints
J Lueckmann, G Bassetto, T Karaletsos, J Macke
arXiv preprint arXiv:1805.09294, 2019
92019
A Bayesian model for identifying hierarchically organised states in neural population activity
P Putzky, F Franzen, G Bassetto, JH Macke
Advances in Neural Information Processing Systems, 3095-3103, 2014
82014
Characterizing retinal ganglion cell responses to electrical stimulation using generalized linear models
S Sekhar, P Ramesh, G Bassetto, E Zrenner, JH Macke, DL Rathbun
Frontiers in Neuroscience 14, 2020
72020
Flexible statistical inference for mechanistic models of neural dynamics. arXiv
JM Lueckmann, PJ Goncalves, G Bassetto, K Ocal, M Nonnenmacher, ...
arXiv preprint arXiv:1711.01861, 2017
62017
Eye saccades align optic flow with retinal specializations during object pursuit in freely moving ferrets
DJ Wallace, KM Voit, DM Machado, M Bahadorian, J Sawinski, ...
Current Biology, 2025
22025
Robust statistical inference for simulation-based models in neuroscience
M Nonnenmacher, PJ Goncalves, G Bassetto, JM Lueckmann, JH Macke
Bernstein Conference 2018, Berlin, Germany, 2018
22018
Electrophysiology Analysis, Bayesian
G Bassetto, JH Macke
Encyclopedia of Computational Neuroscience, 1280-1284, 2022
12022
Amortised inference for mechanistic models of neural dynamics
JM Lueckmann, PJ Gonçalves, C Chintaluri, WF Podlaski, G Bassetto, ...
Computational and Systems Neuroscience (Cosyne) 2019, 108, 2019
12019
Flexible statistical inference for mechanistic models of neural dynamics
P Goncalves, JM Lueckmann, G Bassetto, K Oecal, M Nonnenmacher, ...
Bonn Brain 3 Conference 2018, Bonn, Germany, 2018
12018
26th annual computational neuroscience meeting (CNS* 2017): part 1
S Denham, P Poirazi, E De Schutter, K Friston, HK Chan, T Nowotny, ...
BMC Neuroscience 18, 1-14, 2017
12017
Bayesian parametric receptive-field identification from sparse or noisy data
G Bassetto
Universität Tübingen, 2023
2023
Training deep neural density estimators to identify mechanistic models of neural dynamics. bioRxiv
PJ Gonçalves, JM Lueckmann, M Deistler, M Nonnenmacher, K Öcal, ...
2019
Inferring the parameters of neural simulations from high-dimensional observations
M Nonnenmacher, JM Lueckmann, G Bassetto, PJ Goncalves, JH Macke
Computational and Systems Neuroscience (COSYNE) 2019, Lisbon, Portugal, 2019
2019
26th Annual Computational Neuroscience Meeting (CNS* 2017): Part 1
J Hawkins, X Zhao, KJ Friston, SE Palmer, HK Chan, R Chen, ...
BMC Neuroscience 18, 2017
2017
Using bayesian inference to estimate receptive fields from a small number of spikes
G Bassetto, JH Macke
Computational and Systems Neuroscience Meeting (COSYNE 2017), 64-64, 2017
2017
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