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N Biotechnol ; 30(2): 109-13, 2013 Jan 25.
Artículo en Inglés | MEDLINE | ID: mdl-22687389

RESUMEN

Management of data to produce scientific knowledge is a key challenge for biological research in the 21st century. Emerging high-throughput technologies allow life science researchers to produce big data at speeds and in amounts that were unthinkable just a few years ago. This places high demands on all aspects of the workflow: from data capture (including the experimental constraints of the experiment), analysis and preservation, to peer-reviewed publication of results. Failure to recognise the issues at each level can lead to serious conflicts and mistakes; research may then be compromised as a result of the publication of non-coherent protocols, or the misinterpretation of published data. In this report, we present the results from a workshop that was organised to create an ontological data-modelling framework for Laboratory Protocol Standards for the Molecular Methods Database (MolMeth). The workshop provided a set of short- and long-term goals for the MolMeth database, the most important being the decision to use the established EXACT description of biomedical ontologies as a starting point.


Asunto(s)
Congresos como Asunto , Bases de Datos como Asunto , Laboratorios , Biología Molecular/métodos , Biología Molecular/normas , Internet , Laboratorios/normas
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