object SquaredError extends Loss
Class for squared error loss calculation.
The squared (L2) error is defined as: (y - F(x))**2 where y is the label and F(x) is the model prediction for features x.
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        computeError(model: TreeEnsembleModel, data: RDD[LabeledPoint]): Double
      
      
      
Method to calculate error of the base learner for the gradient boosting calculation.
Method to calculate error of the base learner for the gradient boosting calculation.
- model
 Model of the weak learner.
- data
 Training dataset: RDD of org.apache.spark.mllib.regression.LabeledPoint.
- returns
 Measure of model error on data
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 - Loss
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 This method is not used by the gradient boosting algorithm but is useful for debugging purposes.
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        gradient(prediction: Double, label: Double): Double
      
      
      
Method to calculate the gradients for the gradient boosting calculation for least squares error calculation.
Method to calculate the gradients for the gradient boosting calculation for least squares error calculation. The gradient with respect to F(x) is: - 2 (y - F(x))
- prediction
 Predicted label.
- label
 True label.
- returns
 Loss gradient
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