Difference between revisions of "Fast Forest Quantile Regression"

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(Created page with "[http://www.youtube.com/results?search_query=Fast+Forest+Quantile+Regression YouTube search...] * AI Solver * ...predict values Quantile regression is useful if you...")
 
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* [[AI Solver]]
 
* [[AI Solver]]
 
* [[...predict values]]
 
* [[...predict values]]
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* [http://docs.microsoft.com/en-us/azure/machine-learning/studio-module-reference/fast-forest-quantile-regression Fast Forest Quantile Regression | Microsoft]
  
 
Quantile regression is useful if you want to understand more about the distribution of the predicted value, rather than get a single mean prediction value. This method has many applications, including:
 
Quantile regression is useful if you want to understand more about the distribution of the predicted value, rather than get a single mean prediction value. This method has many applications, including:
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* Discovering predictive relationships in cases where there is only a weak relationship between variables
 
* Discovering predictive relationships in cases where there is only a weak relationship between variables
  
This regression algorithm is a supervised learning method, which means it requires a tagged dataset that includes a label column. Because it is a regression algorithm, the label column must contain only numerical values.. [http://docs.microsoft.com/en-us/azure/machine-learning/studio-module-reference/fast-forest-quantile-regression Fast Forest Quantile Regression | Microsoft]
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This regression algorithm is a supervised learning method, which means it requires a tagged dataset that includes a label column. Because it is a regression algorithm, the label column must contain only numerical values..  
  
 
https://media.springernature.com/lw785/springer-static/image/art%3A10.1007%2Fs10940-010-9098-2/MediaObjects/10940_2010_9098_Fig4_HTML.gif
 
https://media.springernature.com/lw785/springer-static/image/art%3A10.1007%2Fs10940-010-9098-2/MediaObjects/10940_2010_9098_Fig4_HTML.gif

Revision as of 07:02, 1 June 2018

YouTube search...

Quantile regression is useful if you want to understand more about the distribution of the predicted value, rather than get a single mean prediction value. This method has many applications, including:

  • Predicting prices
  • Estimating student performance or applying growth charts to assess child development
  • Discovering predictive relationships in cases where there is only a weak relationship between variables

This regression algorithm is a supervised learning method, which means it requires a tagged dataset that includes a label column. Because it is a regression algorithm, the label column must contain only numerical values..

10940_2010_9098_Fig4_HTML.gif