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rmsle

Root Mean Squared Log Error


Description

rmsle computes the root mean squared log error between two numeric vectors.

Usage

rmsle(actual, predicted)

Arguments

actual

The ground truth non-negative vector

predicted

The predicted non-negative vector, where each element in the vector is a prediction for the corresponding element in actual.

Details

rmsle adds one to both actual and predicted before taking the natural logarithm to avoid taking the natural log of zero. As a result, the function can be used if actual or predicted have zero-valued elements. But this function is not appropriate if either are negative valued.

See Also

Examples

actual <- c(1.1, 1.9, 3.0, 4.4, 5.0, 5.6)
predicted <- c(0.9, 1.8, 2.5, 4.5, 5.0, 6.2)
rmsle(actual, predicted)

Metrics

Evaluation Metrics for Machine Learning

v0.1.4
BSD_3_clause + file LICENSE
Authors
Ben Hamner [aut, cph], Michael Frasco [aut, cre], Erin LeDell [ctb]
Initial release

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