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Intervening on time derivatives
1Department of Philosophy, University Bristol, Cotham House, Bristol, BS6 6JL, UK.
This study explores interventionism in causal inference, showing standard methods fail with time-dependent variables. A modified interventionist criterion is proposed to better capture causal influence in complex systems.
Area of Science:
- Causal Inference
- Philosophy of Science
- Statistical Modeling
Background:
- Interventionism defines causal influence via correlations under interventions.
- The link between correlated changes and actual causal influence is often unclear.
- Standard interventionist criteria struggle with variables like time derivatives and integrals.
Purpose of the Study:
- To examine the plausibility of interventionism with a case involving velocity and position.
- To identify limitations of current interventionist criteria in specific scenarios.
- To propose a modification to interventionist criteria for improved causal analysis.
Main Methods:
- Analyzing a problem-case with time derivative (velocity) and integral (position) variables.
- Evaluating orthodox interventionist criteria against this case.
- Exploring alternative criteria including stochastic interventions and model restrictions.
- Developing a modified interventionist criterion allowing interventions to affect off-target variables.
Main Results:
- Orthodox interventionist criteria prove inadequate for the velocity-position case without added dependencies.
- Tested alternatives like stochasticity and model restrictions do not resolve the issue.
- A proposed modification allows interventions to influence variables beyond their direct targets.
- This modification, with introduced dependencies, aligns with practical causal analysis.
Conclusions:
- The correspondence between correlated changes and causal influence requires careful handling of intervention dependencies.
- A modified interventionist framework can accommodate complex variable relationships, like those involving derivatives and integrals.
- The proposed modification offers a more robust approach to causal inference in challenging cases.
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