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  Community-based benchmarking improves spike rate inference from two-photon calcium imaging data

Berens, P., Freeman, J., Deneux, T., Chenkov, N., McColgan, T., Speiser, A., et al. (2018). Community-based benchmarking improves spike rate inference from two-photon calcium imaging data. PLoS Computational Biology, 14(5): e1006157. doi:10.1371/journal.pcbi.1006157.

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 Creators:
Berens, Philipp1, Author
Freeman, Jeremy1, Author
Deneux, Thomas1, Author
Chenkov, Nicolay1, Author
McColgan, Thomas1, Author
Speiser, Artur2, 3, Author                 
Macke, Jakob H.3, Author           
Turaga, Srinivas C.1, Author
Mineault, Patrick1, Author
Rupprecht, Peter1, Author
Gerhard, Stephan1, Author
Friedrich, Rainer W.1, Author
Friedrich, Johannes1, Author
Paninski, Liam1, Author
Pachitariu, Marius1, Author
Harris, Kenneth D.1, Author
Bolte, Ben1, Author
Machado, Timothy A.1, Author
Ringach, Dario1, Author
Stone, Jasmine1, Author
Rogerson, Luke E.1, AuthorSofroniew, Nicolas J.1, AuthorReimer, Jacob1, AuthorFroudarakis, Emmanouil1, AuthorEuler, Thomas1, AuthorRoson, Miroslav Roman1, AuthorTheis, Lucas1, AuthorTolias, Andreas S.1, AuthorBethge, Matthias1, Author more..
Affiliations:
1External Organizations, ou_persistent22              
2International Max Planck Research School (IMPRS) for Brain and Behavior, Max Planck Institute for Neurobiology of Behavior – caesar, Max Planck Society, Ludwig-Erhard-Allee 2, 53175 Bonn, DE, ou_3481421              
3Max Planck Research Group Neural Systems Analysis, Center of Advanced European Studies and Research (caesar), Max Planck Society, ou_2173683              

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 Abstract: In recent years, two-photon calcium imaging has become a standard tool to probe the function of neural circuits and to study computations in neuronal populations. However, the acquired signal is only an indirect measurement of neural activity due to the comparatively slow dynamics of fluorescent calcium indicators. Different algorithms for estimating spike rates from noisy calcium measurements have been proposed in the past, but it is an open question how far performance can be improved. Here, we report the results of the spikefinder challenge, launched to catalyze the development of new spike rate inference algorithms through crowd-sourcing. We present ten of the submitted algorithms which show improved performance compared to previously evaluated methods. Interestingly, the top-performing algorithms are based on a wide range of principles from deep neural networks to generative models, yet provide highly correlated estimates of the neural activity. The competition shows that benchmark challenges can drive algorithmic developments in neuroscience.

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Language(s): eng - English
 Dates: 2018-05-21
 Publication Status: Published online
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 Rev. Type: Peer
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Title: PLoS Computational Biology
  Abbreviation : PLoS Comput Biol
Source Genre: Journal
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Publ. Info: San Francisco, CA : Public Library of Science
Pages: - Volume / Issue: 14 (5) Sequence Number: e1006157 Start / End Page: - Identifier: ISSN: 1553-734X
CoNE: https://pure.mpg.de/cone/journals/resource/1000000000017180_1