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Add effective sample size to Population #268
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Original file line number | Diff line number | Diff line change |
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@@ -27,6 +27,8 @@ module Control.Monad.Bayes.Population | |
resampleSystematic, | ||
stratified, | ||
resampleStratified, | ||
onlyBelowEffectiveSampleSize, | ||
effectiveSampleSize, | ||
extractEvidence, | ||
pushEvidence, | ||
proper, | ||
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@@ -210,6 +212,31 @@ resampleMultinomial :: | |
Population m a | ||
resampleMultinomial = resampleGeneric multinomial | ||
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-- | Only use the given resampler when the effective sample size is below a certain threshold | ||
onlyBelowEffectiveSampleSize :: | ||
MonadDistribution m => | ||
-- | The threshold under which the effective sample size must fall before the resampler is used. | ||
-- For example, this may be half of the number of particles. | ||
Double -> | ||
-- | The resampler to user under the threshold | ||
(MonadDistribution m => Population m a -> Population m a) -> | ||
-- | The new resampler | ||
(Population m a -> Population m a) | ||
onlyBelowEffectiveSampleSize threshold resampler pop = do | ||
ess <- lift $ effectiveSampleSize pop | ||
There was a problem hiding this comment. Choose a reason for hiding this commentThe reason will be displayed to describe this comment to others. Learn more. I think this is wrong because it will execute the There was a problem hiding this comment. Choose a reason for hiding this commentThe reason will be displayed to describe this comment to others. Learn more. It might be better to have a function |
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if ess < threshold then resampler pop else pop | ||
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-- | Compute the effective sample size of a population from the weights. | ||
-- | ||
-- See https://en.wikipedia.org/wiki/Design_effect#Effective_sample_size | ||
effectiveSampleSize :: Functor m => Population m a -> m Double | ||
effectiveSampleSize = fmap (effectiveSampleSizeKish . map (exp . ln . snd)) . runPopulation | ||
where | ||
effectiveSampleSizeKish :: [Double] -> Double | ||
effectiveSampleSizeKish weights = square (Data.List.sum weights) / Data.List.sum (square <$> weights) | ||
square :: Double -> Double | ||
square x = x * x | ||
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-- | Separate the sum of weights into the 'Weighted' transformer. | ||
-- Weights are normalized after this operation. | ||
extractEvidence :: | ||
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I should have one fixture test and a unit test where this is used.