conference-paper

Proof-reading guidance in cell tracking by sampling from tracking-by-assignment models

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Automated cell tracking methods are still error-prone. On very large data sets, uncertainty measures are thus needed to guide the expert to the most ambiguous events so these can be corrected with minimal effort. We present two easy-to-use methods to sample multiple proposal solutions from a tracking-by-assignment graphical model and experimentally evaluate the benefits of the uncertainty measures derived. Expert time for proof-reading is reduced greatly compared to random selection of predicted events.

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Publication details

DOI
10.1109/isbi.2015.7163895
OpenAlex
W1538996158
Document type
conference-paper
Language
EN
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