# HG changeset patch # User q2d2 # Date 1661804618 0 # Node ID 896b0ff9a810c4f5f7965079c54ba082d3f4c93a planemo upload for repository https://github.com/qiime2/galaxy-tools/tree/main/tools/suite_qiime2__sample_classifier commit 9023cfd83495a517fbcbb6f91d5b01a6f1afcda1 diff -r 000000000000 -r 896b0ff9a810 qiime2__sample_classifier__regress_samples_ncv.xml --- /dev/null Thu Jan 01 00:00:00 1970 +0000 +++ b/qiime2__sample_classifier__regress_samples_ncv.xml Mon Aug 29 20:23:38 2022 +0000 @@ -0,0 +1,113 @@ + + + + + Nested cross-validated supervised learning regressor. + + quay.io/qiime2/core:2022.8 + + q2galaxy version sample_classifier + q2galaxy run sample_classifier regress_samples_ncv '$inputs' + + + + + + + + + hasattr(value.metadata, "semantic_type") and value.metadata.semantic_type in ['FeatureTable[Frequency]'] + + + + + + + + + + value != "1" + + + + + + + + + +
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+ + + + + + +QIIME 2: sample-classifier regress-samples-ncv +============================================== +Nested cross-validated supervised learning regressor. + + +Outputs: +-------- +:predictions.qza: Predicted target values for each input sample. +:feature_importance.qza: Importance of each input feature to model accuracy. + +| + +Description: +------------ +Predicts a continuous sample metadata column using a supervised learning regressor. Uses nested stratified k-fold cross validation for automated hyperparameter optimization and sample prediction. Outputs predicted values for each input sample, and relative importance of each feature for model accuracy. + + +| + + + + 10.21105/joss.00934 + @article{cite2, + author = {Pedregosa, Fabian and Varoquaux, Gaël and Gramfort, Alexandre and Michel, Vincent and Thirion, Bertrand and Grisel, Olivier and Blondel, Mathieu and Prettenhofer, Peter and Weiss, Ron and Dubourg, Vincent and Vanderplas, Jake and Passos, Alexandre and Cournapeau, David and Brucher, Matthieu and Perrot, Matthieu and Duchesnay, Édouard}, + journal = {Journal of machine learning research}, + number = {Oct}, + pages = {2825--2830}, + title = {Scikit-learn: Machine learning in Python}, + volume = {12}, + year = {2011} +} + + 10.1038/s41587-019-0209-9 + +
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