MedianAbsolutePercentageError
MedianAbsolutePercentageError
- class MedianAbsolutePercentageError(multioutput='uniform_average', multilevel='uniform_average', symmetric=False, by_index=False, relative_to='y_true', eps=None)[source]
Median absolute percentage error (MdAPE) or symmetric version.
For a univariate, non-hierarchical sample of true values \(y_1, \dots, y_n\) and predicted values \(\widehat{y}_1, \dots, \widehat{y}_n\), at time indices \(t_1, \dots, t_n\),
evaluateor call returns the Median Absolute Percentage Error, \(median(\left|\frac{y_i - \widehat{y}_i}{y_i} \right|)\). (the time indices are not used)if
symmetricis True then calculates symmetric Median Absolute Percentage Error (sMdAPE), defined as \(median(\frac{2|y_i-\widehat{y}_i|}{|y_i|+|\widehat{y}_i|})\).Both MdAPE and sMdAPE output non-negative floating point which is in fractional units rather than percentage. The best value is 0.0.
MdAPE and sMdAPE are measured in percentage error relative to the test data. Because it takes the absolute value rather than square the percentage forecast error, it penalizes large errors less than MSPE, RMSPE, MdSPE or RMdSPE.
Taking the median instead of the mean of the absolute percentage errors also makes this metric more robust to error outliers since the median tends to be a more robust measure of central tendency in the presence of outliers.
MAPE has no limit on how large the error can be, particularly when
y_truevalues are close to zero. In such cases the function returns a large value instead ofinf. While sMAPE is bounded at 2.multioutputandmultilevelcontrol averaging across variables and hierarchy indices, see below.evaluate_by_indexreturns, at a time index \(t_i\), the absolute percentage error at that time index, \(\left| \frac{y_i - \widehat{y}_i}{y_i} \right|\), or \(\frac{2|y_i - \widehat{y}_i|}{|y_i| + |\widehat{y}_i|}\), the symmetric version, ifsymmetricis True, for all time indices \(t_1, \dots, t_n\) in the input.- Parameters:
- multioutput‘uniform_average’ (default), 1D array-like, or ‘raw_values’
Whether and how to aggregate metric for multivariate (multioutput) data.
If
'uniform_average'(default), errors of all outputs are averaged with uniform weight.If 1D array-like, errors are averaged across variables, with values used as averaging weights (same order).
If
'raw_values', does not average across variables (outputs), per-variable errors are returned.
- multilevel{‘raw_values’, ‘uniform_average’, ‘uniform_average_time’}
How to aggregate the metric for hierarchical data (with levels).
If
'uniform_average'(default), errors are mean-averaged across levels.If
'uniform_average_time', metric is applied to all data, ignoring level index.If
'raw_values', does not average errors across levels, hierarchy is retained.
- symmetricbool, default = False
Whether to calculate the symmetric version of the percentage metric
- by_indexbool, default=False
Controls averaging over time points in direct call to metric object.
If
False(default), direct call to the metric object averages over time points, equivalent to a call of theevaluatemethod.If
True, direct call to the metric object evaluates the metric at each time point, equivalent to a call of theevaluate_by_indexmethod.
- relative_to{“y_true”, “y_pred”}, default=”y_true”
Determines the denominator of the percentage error.
If
"y_true", the denominator is the true values,If
"y_pred", the denominator is the predicted values.
- epsfloat, default=None
Numerical epsilon used in denominator to avoid division by zero. Absolute values smaller than eps are replaced by eps. If None, defaults to np.finfo(np.float64).eps
References
Hyndman, R. J and Koehler, A. B. (2006). “Another look at measures of forecast accuracy”, International Journal of Forecasting, Volume 22, Issue 4.
Examples
>>> import numpy as np >>> from sktime.performance_metrics.forecasting import MedianAbsolutePercentageError >>> y_true = np.array([3, -0.5, 2, 7, 2]) >>> y_pred = np.array([2.5, 0.0, 2, 8, 1.25]) >>> mdape = MedianAbsolutePercentageError(symmetric=False) >>> mdape(y_true, y_pred) np.float64(0.16666666666666666) >>> smdape = MedianAbsolutePercentageError(symmetric=True) >>> smdape(y_true, y_pred) np.float64(0.18181818181818182) >>> y_true = np.array([[0.5, 1], [-1, 1], [7, -6]]) >>> y_pred = np.array([[0, 2], [-1, 2], [8, -5]]) >>> mdape(y_true, y_pred) np.float64(0.5714285714285714) >>> smdape(y_true, y_pred) np.float64(0.39999999999999997) >>> mdape = MedianAbsolutePercentageError(multioutput='raw_values', symmetric=False) >>> mdape(y_true, y_pred) array([0.14285714, 1. ]) >>> smdape = MedianAbsolutePercentageError(multioutput='raw_values', symmetric=True) >>> smdape(y_true, y_pred) array([0.13333333, 0.66666667]) >>> mdape = MedianAbsolutePercentageError(multioutput=[0.3, 0.7], symmetric=False) >>> mdape(y_true, y_pred) np.float64(0.7428571428571428) >>> smdape = MedianAbsolutePercentageError(multioutput=[0.3, 0.7], symmetric=True) >>> smdape(y_true, y_pred) np.float64(0.5066666666666666)
Methods
__call__(y_true, y_pred, **kwargs)Calculate metric value using underlying metric function.
- __call__(y_true, y_pred, **kwargs)[source]
Calculate metric value using underlying metric function.
- Parameters:
- y_truetime series in
sktimecompatible data container format. Ground truth (correct) target values.
Individual data formats in
sktimeare so-called mtype specifications, each mtype implements an abstract scitype.Seriesscitype = individual time series, vanilla forecasting.pd.DataFrame,pd.Series, ornp.ndarray(1D or 2D)Panelscitype = collection of time series, global/panel forecasting.pd.DataFramewith 2-level rowMultiIndex(instance, time),3D np.ndarray(instance, variable, time),listofSeriestypedpd.DataFrameHierarchicalscitype = hierarchical collection, for hierarchical forecasting.pd.DataFramewith 3 or more level rowMultiIndex(hierarchy_1, ..., hierarchy_n, time)
For further details on data format, see glossary on mtype. For usage, see forecasting tutorial
examples/01_forecasting.ipynb- y_predtime series in
sktimecompatible data container format Predicted values to evaluate against ground truth. Must be of same format as
y_true, same indices and columns if indexed.- y_pred_benchmarkoptional, time series in
sktimecompatible data container format Benchmark predictions to compare
y_predto, used for relative metrics. Required only if metric requires benchmark predictions, as indicated by tagrequires-y-pred-benchmark. Otherwise, can be passed to ensure interface consistency, but is ignored. Must be of same format asy_true, same indices and columns if indexed.- y_trainoptional, time series in
sktimecompatible data container format Training data used to normalize the error metric. Required only if metric requires training data, as indicated by tag
requires-y-train. Otherwise, can be passed to ensure interface consistency, but is ignored. Must be of same format asy_true, same columns if indexed, but not necessarily same indices.- sample_weightoptional, 1D array-like, or callable, default=None
Sample weights for each time point.
If
None, the time indices are considered equally weighted.If an array, must be 1D. If
y_trueandy_pred``are a single time series, ``sample_weightmust be of the same length asy_true. If the time series are panel or hierarchical, the length of all individual time series must be the same, and equal to the length ofsample_weight, for all instances of time series passed.If a callable, it must follow
SampleWeightGeneratorinterface, or have one of the following signatures:y_true: pd.DataFrame -> 1D array-like, ory_true: pd.DataFrame x y_pred: pd.DataFrame -> 1D array-like.
- y_truetime series in
- Returns:
- lossfloat, np.ndarray, or pd.DataFrame
Calculated metric, averaged or by variable. Weighted by
sample_weightif provided.float if
multioutput="uniform_average" or array-like, and ``multilevel="uniform_average"or “uniform_average_time”``. Value is metric averaged over variables and levels (see class docstring)np.ndarrayof shape(y_true.columns,)if multioutput=”raw_values”` andmultilevel="uniform_average"or"uniform_average_time". i-th entry is the, metric calculated for i-th variablepd.DataFrameifmultilevel="raw_values". of shape(n_levels, ), ifmultioutput="uniform_average"; of shape(n_levels, y_true.columns)ifmultioutput="raw_values". metric is applied per level, row averaging (yes/no) as inmultioutput.

