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Theodore Vasiloudis updated FLINK-1723: --------------------------------------- Description: Cross validation [1] is a standard tool to select to estimate the test error for a model. As such it is a crucial tool for every machine learning library. The cross validation should work with arbitrary Estimators and error metrics. A first cross validation strategy it should support is the k-fold cross validation. Resources: [1] [http://en.wikipedia.org/wiki/Cross-validation] was: Cross validation [1] is a standard tool to select to estimate the test error for a model. As such it is a crucial tool for every machine learning library. The cross validation should work with arbitrary learners and error metrics. A first cross validation strategy it should support is the k-fold cross validation. Resources: [1] [http://en.wikipedia.org/wiki/Cross-validation] > Add cross validation for model evaluation > ----------------------------------------- > > Key: FLINK-1723 > URL: https://issues.apache.org/jira/browse/FLINK-1723 > Project: Flink > Issue Type: New Feature > Components: Machine Learning Library > Reporter: Till Rohrmann > Assignee: Mikio Braun > Labels: ML > > Cross validation [1] is a standard tool to select to estimate the test error > for a model. As such it is a crucial tool for every machine learning library. > The cross validation should work with arbitrary Estimators and error metrics. > A first cross validation strategy it should support is the k-fold cross > validation. > Resources: > [1] [http://en.wikipedia.org/wiki/Cross-validation] -- This message was sent by Atlassian JIRA (v6.3.4#6332)