Regression Tree Learning Algorithm: Difference between revisions

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=== 2013 ===
=== 2013 ===
* (Melli, 2013-07-24) ⇒ [[Gabor Melli]]. ([[2013]]). [[:File:RegressionTrees_GM-RKB_120724.pptx|Regression Tree Learning Techniques and Systems]]." Informal Presentation.
* (Melli, 2013-07-24) ⇒ [[Gabor Melli]]. ([[2013]]). [[:File:RegressionTrees_GM-RKB_120724.pptx|Regression Tree Learning Techniques and System]]s." Informal Presentation.
** QUOTE: a [[trained predictor tree]] that is a [[regressed point estimation function]] (where each [[leaf node]] and typically also [[internal node]]s makes a [[point estimate]]).
** QUOTE: a [[trained predictor tree]] that is a [[regressed point estimation function]] (where each [[leaf node]] and typically also [[internal node]]s makes a [[point estimate]]).



Latest revision as of 21:14, 9 May 2024

A Regression Tree Learning Algorithm is a decision tree learning algorithm that is a model-based regression algorithm.



References

2017a

  • (Wikipedia, 2017) ⇒ https://en.wikipedia.org/wiki/Decision_tree_learning Retrieved:2017-10-15.
    • Decision tree learning uses a decision tree (as a predictive model) to go from observations about an item (represented in the branches) to conclusions about the item's target value (represented in the leaves). It is one of the predictive modelling approaches used in statistics, data mining and machine learning. Tree models where the target variable can take a discrete set of values are called classification trees ; in these tree structures, leaves represent class labels and branches represent conjunctions of features that lead to those class labels. Decision trees where the target variable can take continuous values (typically real numbers) are called regression trees.

      In decision analysis, a decision tree can be used to visually and explicitly represent decisions and decision making. In data mining, a decision tree describes data (but the resulting classification tree can be an input for decision making). This page deals with decision trees in data mining.

2017b

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