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transformed-optimizers-advanced

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UpdatedJune 10, 2026 at 21:22

Use when observations are constrained — strictly positive (intensities, rates, concentrations) or bounded in [0, 1] (fractions, probabilities). LogGPOptimizer and LogitGPOptimizer fit a GP on transformed observations and push the posterior back through the inverse link, so predictions and credible intervals stay inside the constrained range. Includes how to get raw posterior samples for histograms.

Installation

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