Calculating the reward-rate manifold in the Gaussian-MSE case from Resource-rational reinforcement learning and sensorimotor causal states, and resource-rational maximiners
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Calculates a reward-rate manifold when statistics are Gaussian and the reward function is a squared error. In this case, the generalized Blahut-Arimoto algorithm massively simplifies, and we can use the equations in Appendix D to find Fig 1.
创建时间:
2025-10-27



