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Refining the causal loop diagram: A tutorial for maximizing the contribution of domain expertise in computational
Loes Crielaard1, Jeroen F Uleman1, Bas D L Châtel1
1Institute for Advanced Study, University of Amsterdam.
This study introduces an annotated causal loop diagram (aCLD) to convert expert mental models into computable system dynamics models (SDMs). This approach enhances the analysis and simulation of complex biopsychosocial systems.
Area of Science:
- Complexity science and systems thinking applied to biopsychosocial systems.
- Integration of biological, psychological, and socioenvironmental factors.
Background:
- Systems thinking often results in conceptual models like causal loop diagrams (CLDs) but lacks computational interpretation.
- There's a need to bridge conceptual modeling with dynamic simulation for "what if" scenario analysis in complex systems.
Purpose of the Study:
- To propose a method for converting expert mental models into computable system dynamics models (SDMs).
- To introduce an annotated causal loop diagram (aCLD) facilitating this conversion.
- To enhance the simulation and interpretation of biopsychosocial systems.
Main Methods:
- Capturing expert knowledge into a CLD format with specific annotations.
- Developing an algorithm for creating an annotated CLD (aCLD).
- Formulating a system dynamics model (SDM) based on the aCLD.
Main Results:
- The aCLD includes annotations for evidence sources, intermediary variables, causal link functions, and link certainty.
- The proposed algorithm facilitates the systematic conversion from expert knowledge to a computable SDM.
- The process aids in identifying, quantifying, and reducing uncertainty in model simulations.
Conclusions:
- The systematic approach advances the application of computational science methods to biopsychosocial systems.
- Annotated CLDs provide a bridge between conceptual understanding and dynamic simulation.
- This methodology increases confidence in SDM simulation results for complex systems.
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