
Udo Böhm
Researcher · Bayesian Statistics
National Research Institute for Mathematics and Computer ScienceNetherlands
About
Udo Böhm is a researcher in the Machine Learning group at Centrum Wiskunde & Informatica (CWI) in Amsterdam. His work bridges Bayesian statistics, computational psychology, and numerical mathematics through advanced modeling techniques.
- Research Focus: Bayesian inference, diffusion models, first-passage time analysis
- Technical Expertise: Numerical approximation of partial differential equations
- Collaborations: Extensive collaborations with psychologists and mathematicians
His publications demonstrate interdisciplinary applications of machine learning in psychological modeling and mathematical problem-solving. Current work involves developing anytime-valid confidence sequences and improving computational methods for diffusion processes.
Notable contributions include:
- Advancements in hierarchical diffusion decision models
- Efficient numerical algorithms for non-regular Fokker–Planck equations
- Foundational guidelines for Bayesian analysis in JASP
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