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This post shows how to build a Graph using the mlr3pipelines package on the "titanic" dataset. Moreover, feature engineering, data imputation and benchmarking are covered.
This tutorial explains how to create and tune a multilevel stacking model using the mlr3pipelines package.
This tutorial explains how applying different preprocessing steps on different features and branching of preprocessing steps can be achieved using the mlr3pipelines package.
This use case compares different approaches to handle class imbalance for the optdigits (http://www.openml.org/d/980) binary classification data set using the mlr3 package.
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Basic ML operations on iris: Train, predict, score, resample and benchmark. A simple, hands-on intro to mlr3.
This post shows how to build a Graph using the mlr3pipelines package on the "titanic" dataset.
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In this use case, we continue working with the German credit dataset. We already used different Learners on it in previous posts and tried to optimize their hyperparameters. To make things interesting, we artificially introduce missing values into the dataset, perform imputation and filtering and stack Learners.
We tune hyperparameters and perform nested resampling.
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This use case shows how to tune over multiple learners for a single task.
We show how to use mlr3pipelines to augment the "mlr_learners_classif.ranger" learner with automatic imputation.
The package "xgboost" unfortunately does not support handling of categorical features. Therefore, it is required to manually convert factor columns to numerical dummy features. We show how to use "mlr3pipelines" to augment the "mlr_learners_classif.xgboost" learner with an automatic factor encoding.
Use case illustrating data preprocessing and model fitting via mlr3 on the "King County House Prices" dataset.