Article,

Near-optimal experimental design for model selection in systems biology

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Bioinformatics, 29 (20): 2625--2632 (Oct 15, 2013)
DOI: 10.1093/bioinformatics/btt436

Abstract

Motivation: Biological systems are understood through iterations of modeling and experimentation. Not all experiments, however, are equally valuable for predictive modeling. This study introduces an efficient method for experimental design aimed at selecting dynamical models from data. Motivated by biological applications, the method enables the design of crucial experiments: it determines a highly informative selection of measurement readouts and time points.

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