Classification of crystallization outcomes using deep convolutional neural networks.

Bruno, Andrew E; Charbonneau, Patrick; Newman, Janet; Snell, Edward H; So, David R; Vanhoucke, Vincent; Watkins, Christopher J; Williams, Shawn et al. · PLoS One · 2018

basic_science · Level V

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Abstract

The Machine Recognition of Crystallization Outcomes (MARCO) initiative has assembled roughly half a million annotated images of macromolecular crystallization experiments from various sources and setups. Here, state-of-the-art machine learning algorithms are trained and tested on different parts of this data set. We find that more than 94% of the test images can be correctly labeled, irrespective of their experimental origin. Because crystal recognition is key to high-density screening and the systematic analysis of crystallization experiments, this approach opens the door to both industrial and fundamental research applications.

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