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1.
Nat Methods ; 16(4): 351, 2019 Apr.
Artículo en Inglés | MEDLINE | ID: mdl-30804552

RESUMEN

In the version of this paper originally published, one of the affiliations for Dominic Mai was incorrect: "Center for Biological Systems Analysis (ZBSA), Albert-Ludwigs-University, Freiburg, Germany" should have been "Life Imaging Center, Center for Biological Systems Analysis, Albert-Ludwigs-University, Freiburg, Germany." This change required some renumbering of subsequent author affiliations. These corrections have been made in the PDF and HTML versions of the article, as well as in any cover sheets for associated Supplementary Information.

2.
Nat Methods ; 16(1): 67-70, 2019 01.
Artículo en Inglés | MEDLINE | ID: mdl-30559429

RESUMEN

U-Net is a generic deep-learning solution for frequently occurring quantification tasks such as cell detection and shape measurements in biomedical image data. We present an ImageJ plugin that enables non-machine-learning experts to analyze their data with U-Net on either a local computer or a remote server/cloud service. The plugin comes with pretrained models for single-cell segmentation and allows for U-Net to be adapted to new tasks on the basis of a few annotated samples.


Asunto(s)
Recuento de Células , Aprendizaje Profundo , Nube Computacional , Redes Neurales de la Computación , Diseño de Software
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