Research
Data-driven researchand their applications
The research group is developing and utilizing mathematical and computational methods for data-driven research in computational biology, –medicine and public health
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We develop methods for interpreting complex data from next- and third generation sequencing for understanding the structure & function of non-coding RNA
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We develop methods to infer developmental rules in neurobiology from time-lapse super-resolution microscopy data
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We develop methods for interpretation of (molecular) surveillance data to support public health decision making.
Methods-driven research and their applications
We develop multi-scale numerical methods for pharmacometrics, infection research and public health decision making. In particular, we are currently focusing on:
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Efficient numerical methods for hybdrid stochastic-deterministic simulation of HIV pre-exposure prophylaxis (PrEP)
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Multiscale modelling for heterogeneous data-integration in the context of PrEP
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Efficient stochastic simulation of spreading dynamics on adaptive (contact) networks
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