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The role of (bounded) optimization in theory testing and prediction
Andrew Howes1, Richard L Lewis2
1School of Computer Science,University of Birmingham,Edgbaston,Birmingham B15 3TT,United Kingdom.HowesA@bham.ac.ukhttps://www.cs.bham.ac.uk/~howesa/.
Bounded optimality, a concept from artificial intelligence, enhances cognitive science by enabling better behavioral predictions. This approach improves the logic and testing of cognitive models for perception and action.
Area of Science:
- Cognitive Science
- Artificial Intelligence
- Computational Neuroscience
Background:
- Descriptive models of perception and action face challenges in logic and testing.
- Cognitive science seeks robust methods for predicting behavior.
Purpose of the Study:
- To demonstrate how bounded optimality can advance cognitive science.
- To highlight the predictive power of computational rationality.
Main Methods:
- Utilizing constrained generative models from artificial intelligence.
- Applying the principles of bounded optimality to cognitive processes.
Main Results:
- Bounded optimality supports a priori behavioral prediction.
- The approach addresses failings in current descriptive models.
Conclusions:
- Increased emphasis on bounded optimality offers a path to more predictive cognitive science.
- Computational rationality provides a framework for understanding cognitive constraints and improving model testing.
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