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Parametric optimisation study #182

Description

@RemDelaporteMathurin

Instead of a "deterministic" simulation, users should be able to set parameters as free parameters and run parametric optimisation studies based on a set of constraints and goals.

Examples:

  • In the ARC fuel cycle simulation, minimise the startup storage inventory while ensuring the total energy produced in the first year is greater than X.
  • Find the mass transfer coefficients that fit the tritium release curve that was experimentally measured (see this tutorial)

UI needs:

  • Set a parameter as free parameter: similar to Parametric studies #181 users would be able to set a parameter as "free"
  • Give bounds to a parameter (eg. parameter A cannot be negative)
  • Define a cost function/error python function def error(p): ... return e
  • Select an optimiser (from scipy.optimise methods?)

Activity

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