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The SALSO algorithm is an efficient randomized greedy search method to find a point estimate for a random partition based on a loss function and posterior Monte Carlo samples. The algorithm is implemented for many loss functions, including the Binder loss and a generalization of the variation of information loss, both of which allow for unequal weights on the two types of clustering mistakes. Efficient implementations are also provided for Monte Carlo estimation of the posterior expected loss of a given clustering estimate. See Dahl, Johnson, Müller (2022) <doi:10.1080/10618600.2022.2069779>.

copied from cf-pre-staging / r-salso
Type Size Name Uploaded Downloads Labels
conda 896.7 kB | osx-64/r-salso-0.3.29-r42h6dc245f_1.conda  1 year and 11 months ago 402 main
conda 893.6 kB | osx-64/r-salso-0.3.29-r43h6dc245f_1.conda  1 year and 11 months ago 412 main
conda 1.6 MB | linux-64/r-salso-0.3.29-r42h57805ef_1.conda  1 year and 11 months ago 1785 main
conda 1.6 MB | linux-64/r-salso-0.3.29-r43h57805ef_1.conda  1 year and 11 months ago 1799 main
conda 898.9 kB | osx-64/r-salso-0.3.29-r42h815d134_0.conda  2 years and 3 months ago 271 main
conda 1.6 MB | linux-64/r-salso-0.3.29-r42h133d619_0.conda  2 years and 3 months ago 1892 main

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