Cerebellar Neurodynamics Predict Decision Timing and Outcome on the Single-Trial Level is a research paper published in Cell (2020). On theSindex it has a DataRank of 0. It has been cited 136 times.
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Gordon and Betty Moore Foundation
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Intelligence Advanced Research Projects Activity
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National Institutes of Health
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National Institutes of Health
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National Institutes of Health
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National Institutes of Health
Grant: R01NS049319
National Institutes of Health
Grant: 5U01NS103488
National Institutes of Health
Grant: U19NS104653
National Institutes of Health
Grant: 2R44OD024879
Simons Foundation
Grant: SCGB 542973
National Science Foundation
Grant: DBI-1707408
National Science Foundation
Grant: PHY-1748958
National Institutes of Health
Grant: 1U19NS104653-01
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National Institutes of Health
Grant: 1R24NS086601-01
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National Science Foundation
Grant: 1707408
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National Institutes of Health
Grant: 5R01NS049319-03
MOLECULAR GENETICS OF SENSORY GANGLIA DEVELOPMENT
National Institutes of Health
Grant: 5DP1HD094764-02
DNA-mediated recording of cellular history
National Institutes of Health
Grant: 1R25GM067110-01
ITP Workshop on Biological Networks
National Science Foundation
Grant: 1748958
Kavli Institute for Theoretical Physics
National Institutes of Health
Grant: 1RF1NS110501-01
Lensless, high-speed and multi-region volumetric Ca2+ imaging of up to 1cm2 brain surface across model animals
National Institutes of Health
Grant: 5R44OD024879-03
High-Resolution, Parallelized Imaging of Freely Swimming Zebrafish with a Gigapixel Microscope
National Institutes of Health
Grant: 1RF1NS113251-01
In vivo Imaging of Neuroactivity in the Deep Forward Scattering Regime Using Speckle Identification and Demixing (SPID) Microscopy
FWCI
9.61
Citation Percentile
1.0%
Influential Citations
2
Citation Trend
Fields of Study
MeSH Terms
Keywords
Sustainable Development Goals
Additional file 10 of High activity and high functional connectivity are mutually exclusive in resting state zebrafish and human brains
Additional file 10 of High activity and high functional connectivity are mutually exclusive in resting state zebrafish and human brains
Additional file 11 of High activity and high functional connectivity are mutually exclusive in resting state zebrafish and human brains
Additional file 11 of High activity and high functional connectivity are mutually exclusive in resting state zebrafish and human brains
Additional file 12 of High activity and high functional connectivity are mutually exclusive in resting state zebrafish and human brains
Additional file 12 of High activity and high functional connectivity are mutually exclusive in resting state zebrafish and human brains
Additional file 13 of High activity and high functional connectivity are mutually exclusive in resting state zebrafish and human brains
Additional file 13 of High activity and high functional connectivity are mutually exclusive in resting state zebrafish and human brains
Additional file 1 of High activity and high functional connectivity are mutually exclusive in resting state zebrafish and human brains
Additional file 1 of High activity and high functional connectivity are mutually exclusive in resting state zebrafish and human brains
Additional file 2 of High activity and high functional connectivity are mutually exclusive in resting state zebrafish and human brains
Additional file 2 of High activity and high functional connectivity are mutually exclusive in resting state zebrafish and human brains
Additional file 3 of High activity and high functional connectivity are mutually exclusive in resting state zebrafish and human brains
Additional file 3 of High activity and high functional connectivity are mutually exclusive in resting state zebrafish and human brains
Additional file 4 of High activity and high functional connectivity are mutually exclusive in resting state zebrafish and human brains
Additional file 4 of High activity and high functional connectivity are mutually exclusive in resting state zebrafish and human brains
Additional file 5 of High activity and high functional connectivity are mutually exclusive in resting state zebrafish and human brains
Additional file 5 of High activity and high functional connectivity are mutually exclusive in resting state zebrafish and human brains
Additional file 6 of High activity and high functional connectivity are mutually exclusive in resting state zebrafish and human brains
Additional file 6 of High activity and high functional connectivity are mutually exclusive in resting state zebrafish and human brains