Victor Boussange
Victor Boussange
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Biomathematics
A practical introduction to approximate Bayesian computation
In this tutorial, you’ll learn the basics of approximate Bayesian computation (ABC). ABC is an inference method with very little requirements in terms of the model structure - yet it can be very powerful. It is very simple to apply to any model, and to understand. We’ll play around with Julia, and we will visualize graphically the inference results, so that you can build an intuition of the inference method.
Nov 27, 2022
10 min read
Forward and inverse modelling of eco-evolutionary dynamics in ecological and economic systems
Victor Boussange
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Eco-evolutionary model on spatial graphs reveals how habitat structure affects phenotypic differentiation
Victor Boussange
,
Loïc Pellissier
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Parameter Inference in dynamical systems
One of the challenges modellers face in biological sciences is to calibrate models in order to match as closely as possible observations and gain predictive power. Scientific machine learning addresses this problem by applying optimisation techniques originally developed within the field of machine learning to mechanistic models, allowing to infer parameters directly from observation data.
Victor Boussange
Jan 9, 2021
6 min read
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Episodic mineralising fluid injection through chemical shear zones
T. Poulet
,
S. Alevizos
,
M. Veveakis
,
Victor Boussange
,
K. Regenauer-Lieb
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