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DREAMTools: a Python package for scoring collaborative challenges

DREAM challenges are community competitions designed to advance computational methods and address fundamental questions in system biology and translational medicine. Each challenge asks participants to develop and apply computational methods to either predict unobserved outcomes or to identify unkno...

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Detalles Bibliográficos
Autores principales: Cokelaer, Thomas, Bansal, Mukesh, Bare, Christopher, Bilal, Erhan, Bot, Brian M., Chaibub Neto, Elias, Eduati, Federica, de la Fuente, Alberto, Gönen, Mehmet, Hill, Steven M., Hoff, Bruce, Karr, Jonathan R., Küffner, Robert, Menden, Michael P., Meyer, Pablo, Norel, Raquel, Pratap, Abhishek, Prill, Robert J., Weirauch, Matthew T., Costello, James C., Stolovitzky, Gustavo, Saez-Rodriguez, Julio
Formato: Online Artículo Texto
Lenguaje:English
Publicado: F1000Research 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4837986/
https://www.ncbi.nlm.nih.gov/pubmed/27134723
http://dx.doi.org/10.12688/f1000research.7118.2
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author Cokelaer, Thomas
Bansal, Mukesh
Bare, Christopher
Bilal, Erhan
Bot, Brian M.
Chaibub Neto, Elias
Eduati, Federica
de la Fuente, Alberto
Gönen, Mehmet
Hill, Steven M.
Hoff, Bruce
Karr, Jonathan R.
Küffner, Robert
Menden, Michael P.
Meyer, Pablo
Norel, Raquel
Pratap, Abhishek
Prill, Robert J.
Weirauch, Matthew T.
Costello, James C.
Stolovitzky, Gustavo
Saez-Rodriguez, Julio
author_facet Cokelaer, Thomas
Bansal, Mukesh
Bare, Christopher
Bilal, Erhan
Bot, Brian M.
Chaibub Neto, Elias
Eduati, Federica
de la Fuente, Alberto
Gönen, Mehmet
Hill, Steven M.
Hoff, Bruce
Karr, Jonathan R.
Küffner, Robert
Menden, Michael P.
Meyer, Pablo
Norel, Raquel
Pratap, Abhishek
Prill, Robert J.
Weirauch, Matthew T.
Costello, James C.
Stolovitzky, Gustavo
Saez-Rodriguez, Julio
author_sort Cokelaer, Thomas
collection PubMed
description DREAM challenges are community competitions designed to advance computational methods and address fundamental questions in system biology and translational medicine. Each challenge asks participants to develop and apply computational methods to either predict unobserved outcomes or to identify unknown model parameters given a set of training data. Computational methods are evaluated using an automated scoring metric, scores are posted to a public leaderboard, and methods are published to facilitate community discussions on how to build improved methods. By engaging participants from a wide range of science and engineering backgrounds, DREAM challenges can comparatively evaluate a wide range of statistical, machine learning, and biophysical methods. Here, we describe DREAMTools, a Python package for evaluating DREAM challenge scoring metrics. DREAMTools provides a command line interface that enables researchers to test new methods on past challenges, as well as a framework for scoring new challenges. As of March 2016, DREAMTools includes more than 80% of completed DREAM challenges. DREAMTools complements the data, metadata, and software tools available at the DREAM website http://dreamchallenges.org and on the Synapse platform at https://www.synapse.org. Availability:  DREAMTools is a Python package. Releases and documentation are available at http://pypi.python.org/pypi/dreamtools. The source code is available at http://github.com/dreamtools/dreamtools.
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spelling pubmed-48379862016-04-29 DREAMTools: a Python package for scoring collaborative challenges Cokelaer, Thomas Bansal, Mukesh Bare, Christopher Bilal, Erhan Bot, Brian M. Chaibub Neto, Elias Eduati, Federica de la Fuente, Alberto Gönen, Mehmet Hill, Steven M. Hoff, Bruce Karr, Jonathan R. Küffner, Robert Menden, Michael P. Meyer, Pablo Norel, Raquel Pratap, Abhishek Prill, Robert J. Weirauch, Matthew T. Costello, James C. Stolovitzky, Gustavo Saez-Rodriguez, Julio F1000Res Software Tool Article DREAM challenges are community competitions designed to advance computational methods and address fundamental questions in system biology and translational medicine. Each challenge asks participants to develop and apply computational methods to either predict unobserved outcomes or to identify unknown model parameters given a set of training data. Computational methods are evaluated using an automated scoring metric, scores are posted to a public leaderboard, and methods are published to facilitate community discussions on how to build improved methods. By engaging participants from a wide range of science and engineering backgrounds, DREAM challenges can comparatively evaluate a wide range of statistical, machine learning, and biophysical methods. Here, we describe DREAMTools, a Python package for evaluating DREAM challenge scoring metrics. DREAMTools provides a command line interface that enables researchers to test new methods on past challenges, as well as a framework for scoring new challenges. As of March 2016, DREAMTools includes more than 80% of completed DREAM challenges. DREAMTools complements the data, metadata, and software tools available at the DREAM website http://dreamchallenges.org and on the Synapse platform at https://www.synapse.org. Availability:  DREAMTools is a Python package. Releases and documentation are available at http://pypi.python.org/pypi/dreamtools. The source code is available at http://github.com/dreamtools/dreamtools. F1000Research 2016-04-08 /pmc/articles/PMC4837986/ /pubmed/27134723 http://dx.doi.org/10.12688/f1000research.7118.2 Text en Copyright: © 2016 Cokelaer T et al. http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution Licence, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Software Tool Article
Cokelaer, Thomas
Bansal, Mukesh
Bare, Christopher
Bilal, Erhan
Bot, Brian M.
Chaibub Neto, Elias
Eduati, Federica
de la Fuente, Alberto
Gönen, Mehmet
Hill, Steven M.
Hoff, Bruce
Karr, Jonathan R.
Küffner, Robert
Menden, Michael P.
Meyer, Pablo
Norel, Raquel
Pratap, Abhishek
Prill, Robert J.
Weirauch, Matthew T.
Costello, James C.
Stolovitzky, Gustavo
Saez-Rodriguez, Julio
DREAMTools: a Python package for scoring collaborative challenges
title DREAMTools: a Python package for scoring collaborative challenges
title_full DREAMTools: a Python package for scoring collaborative challenges
title_fullStr DREAMTools: a Python package for scoring collaborative challenges
title_full_unstemmed DREAMTools: a Python package for scoring collaborative challenges
title_short DREAMTools: a Python package for scoring collaborative challenges
title_sort dreamtools: a python package for scoring collaborative challenges
topic Software Tool Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4837986/
https://www.ncbi.nlm.nih.gov/pubmed/27134723
http://dx.doi.org/10.12688/f1000research.7118.2
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