Steve_Rayhawk comments on Nonparametric Ethics - Less Wrong
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With very wide predictive distributions, if they are Bayesian nonparametric methods. See the 95% credible intervals (shaded pink) in Figure 2 on page 4, and in Figure 3 on page 5, of Mark Ebden's Gaussian Processes for Regression: A Quick Introduction.
(Carl Edward Rasmussen at Cambridge and Arman Melkumyan at the University of Sydney maintain sites with more links about Gaussian processes and Bayesian nonparametric regression. Also see Bayesian neural networks which can justifiably extrapolate sharper predictive distributions than Gaussian process priors can.)
See also Modeling human function learning with Gaussian processes, by Tom Griffiths, Chris Lucas, Joseph Jay Williams, and Michael Kalish, in NIPS 21:
The first author, Tom Griffiths, is the director of the Computational Cognitive Science Lab at UC Berkeley, and Lucas and Williams are graduate students there. The work of the Computational Cognitive Science Lab is very close to the mission of Less Wrong:
Griffiths's page recommends the foundations section of the lab publication list.