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SAP HANA Predictive Analysis Library (PAL)

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Name Data Type Default Value Description<br />

PARAM_SELECTION_MEAS­<br />

URE<br />

String ‘ACCURACY’ Indicates the criteria to select<br />

the optimal parameters.<br />

●<br />

●<br />

‘ACCURACY’: Accuracy<br />

is used as measure<br />

‘F1_SCORE’: The F1<br />

score is used as measure<br />

Note: The ‘F1_SCORE’ option<br />

is not available for random<br />

forest.<br />

NR_FOLD Integer 10 (for LOGISTICREGRES­<br />

SION)<br />

3 (for SVMTRAIN)<br />

No default value for RAN­<br />

DOMFOREST<br />

Specifies how many portions<br />

the training data will be divided<br />

into in cross validation.<br />

The value must be equal to<br />

or greater than 2.<br />

This is an optional parameter<br />

in LOGISTICREGRESSION or<br />

SVMTRAIN, but a mandatory<br />

parameter in NBCTRAIN.<br />

The parameter is not used in<br />

RANDOMFOREST.<br />

Note: SVMTRAIN already<br />

supports this parameter, so<br />

you do not need to specify<br />

this twice.<br />

EVALUATION_SEED Integer 0 Indicates the seed used to initialize<br />

the random number<br />

generator.<br />

●<br />

●<br />

0: Uses the system time<br />

Not 0: Uses the specified<br />

seed<br />

Additional Parameters for LOGISTICREGRESSION<br />

Table 150:<br />

Name Data Type Description<br />

MIN_LAMBDA Double (Mandatory) Lower bound of the<br />

searching range for ENET_LAMBDA.<br />

This is a mandatory parameter. The<br />

value must be equal to or greater than<br />

0.<br />

<strong>SAP</strong> <strong>HANA</strong> <strong>Predictive</strong> <strong>Analysis</strong> <strong>Library</strong> (<strong>PAL</strong>)<br />

<strong>PAL</strong> Functions P U B L I C 205

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