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-rw-r--r-- | posts/2019-01-03-discriminant-analysis.md | 5 |
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diff --git a/posts/2019-01-03-discriminant-analysis.md b/posts/2019-01-03-discriminant-analysis.md index 3e732db..51630b3 100644 --- a/posts/2019-01-03-discriminant-analysis.md +++ b/posts/2019-01-03-discriminant-analysis.md @@ -176,6 +176,11 @@ will result in a lossy compression / regularisation equivalent to doing analysis](https://en.wikipedia.org/wiki/Principal_component_analysis) on $(M - \bar x) V_x D_x^{-1}$. +Note that as of 2019-01-04, in the scikit-learn implementation, the prediction is done without +any lossy compression, even if the parameter `n_components` is set to be smaller +than dimension of the affine space spanned by the centroids. +In other words, the prediction does not change regardless of `n_components`. + ### Fisher discriminant analysis The Fisher discriminant analysis involves finding an $n$-dimensional |