[doc] Fix typo. [skip ci] (#7311)
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@ -50,7 +50,7 @@ can plot the model and calculate the global feature importance:
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# Get a graph
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graph = xgb.to_graphviz(clf, num_trees=1)
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# Or get a matplotlib axis
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ax = xgb.plot_tree(reg, num_trees=1)
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ax = xgb.plot_tree(clf, num_trees=1)
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# Get feature importances
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clf.feature_importances_
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@ -60,8 +60,8 @@ idea is create dataframe with category feature type, and tell XGBoost to use ``g
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with parameter ``enable_categorical``. See `this demo
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<https://github.com/dmlc/xgboost/blob/master/demo/guide-python/categorical.py>`_ for a
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worked example using categorical data with ``scikit-learn`` interface. For using it with
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the Kaggle tutorial dataset, see `<this demo
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https://github.com/dmlc/xgboost/blob/master/demo/guide-python/cat_in_the_dat.py>`_
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the Kaggle tutorial dataset, see `this demo
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<https://github.com/dmlc/xgboost/blob/master/demo/guide-python/cat_in_the_dat.py>`_
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**********************
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@ -114,5 +114,5 @@ Next Steps
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**********
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As of XGBoost 1.5, the feature is highly experimental and have limited features like CPU
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training is not yet supported. Please see `<this issue>
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https://github.com/dmlc/xgboost/issues/6503`_ for progress.
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training is not yet supported. Please see `this issue
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<https://github.com/dmlc/xgboost/issues/6503>`_ for progress.
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