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Grace W Lindsay
Grace W Lindsay
Assistant Professor, New York University
nyu.edu의 이메일 확인됨 - 홈페이지
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A deep learning framework for neuroscience
BA Richards, TP Lillicrap, P Beaudoin, Y Bengio, R Bogacz, ...
Nature neuroscience 22 (11), 1761-1770, 2019
9692019
Convolutional neural networks as a model of the visual system: Past, present, and future
GW Lindsay
Journal of cognitive neuroscience 33 (10), 2017-2031, 2021
6122021
Parallel processing by cortical inhibition enables context-dependent behavior
KV Kuchibhotla, JV Gill, GW Lindsay, ES Papadoyannis, RE Field, ...
Nature Neuroscience 20 (1), 62-71, 2017
3582017
Attention in psychology, neuroscience, and machine learning
GW Lindsay
Frontiers in computational neuroscience 14, 516985, 2020
3542020
The neuroconnectionist research programme
A Doerig, RP Sommers, K Seeliger, B Richards, J Ismael, GW Lindsay, ...
Nature Reviews Neuroscience 24 (7), 431-450, 2023
1512023
Consciousness in artificial intelligence: insights from the science of consciousness
P Butlin, R Long, E Elmoznino, Y Bengio, J Birch, A Constant, G Deane, ...
arXiv preprint arXiv:2308.08708, 2023
1442023
How biological attention mechanisms improve task performance in a large-scale visual system model
GW Lindsay, KD Miller
eLife 7, e38105, 2018
1012018
Hebbian learning in a random network captures selectivity properties of the prefrontal cortex
GW Lindsay, M Rigotti, MR Warden, EK Miller, S Fusi
Journal of Neuroscience 37 (45), 11021-11036, 2017
532017
Models of the mind: how physics, engineering and mathematics have shaped our understanding of the brain
G Lindsay
Bloomsbury Publishing, 2021
372021
Neuromatch Academy: Teaching computational neuroscience with global accessibility
T van Viegen, A Akrami, K Bonnen, E DeWitt, A Hyafil, H Ledmyr, ...
Trends in cognitive sciences 25 (7), 535-538, 2021
342021
Feature Based Attention in Convolutional Neural Networks
GW Lindsay
arXiv, 2015
182015
Recent advances at the interface of neuroscience and artificial neural networks
Y Cohen, TA Engel, C Langdon, GW Lindsay, T Ott, MAK Peters, ...
Journal of Neuroscience 42 (45), 8514-8523, 2022
172022
Bio-inspired neural networks implement different recurrent visual processing strategies than task-trained ones do
GW Lindsay, TD Mrsic-Flogel, M Sahani
bioRxiv, 2022.03. 07.483196, 2022
162022
Testing methods of neural systems understanding
GW Lindsay, D Bau
Cognitive Systems Research 82, 101156, 2023
142023
A unified circuit model of attention: neural and behavioral effects
GW Lindsay, DB Rubin, KD Miller
bioRxiv, 2019.12. 13.875534, 2019
11*2019
Divergent representations of ethological visual inputs emerge from supervised, unsupervised, and reinforcement learning
GW Lindsay, J Merel, T Mrsic-Flogel, M Sahani
arXiv preprint arXiv:2112.02027, 2021
102021
Grounding neuroscience in behavioral changes using artificial neural networks
GW Lindsay
Current opinion in neurobiology 84, 102816, 2024
82024
Testing the tools of systems neuroscience on artificial neural networks
GW Lindsay
arXiv preprint arXiv:2202.07035, 2022
82022
Deep neural networks are not a single hypothesis but a language for expressing computational hypotheses
T Golan, JM Taylor, H Schütt, B Peters, RP Sommers, K Seeliger, ...
Behavioral and Brain Sciences 46, 2023
72023
Corrigendum: Attention in psychology, neuroscience, and machine learning
GW Lindsay
Frontiers in Computational Neuroscience 15, 698574, 2021
42021
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