ML IALGO LINREG: Difference between revisions

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{{TAGDEF|ML_IALGO_LINREG|[integer]|1}}
{{TAGDEF|ML_IALGO_LINREG|[integer]|1}}


Description: This tag determines how to solve the linear equations in the ridge regression for machine learning.
Description: This tag determines how to solve the system of linear equations in the ridge regression method for machine learning.
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The following options are available:
The following options are available:
*{{TAG|ML_IALGO_LINREG}}=1: Bayesian linear regression (see [[Machine learning force field: Theory#Bayesian error estimation|here]]. This is the only method usable with on the fly learning ({{TAG|NSW}}>1.
*{{TAG|ML_IALGO_LINREG}}=1: Bayesian linear regression (see [[Machine learning force field: Theory#Bayesian error estimation|here]]). Usable with {{TAG|NSW}}<math>\ge</math>1.
*{{TAG|ML_IALGO_LINREG}}=2:  
*{{TAG|ML_IALGO_LINREG}}=2: QR factorization. Usable with {{TAG|NSW}}=0,1.
*{{TAG|ML_IALGO_LINREG}}=3:
*{{TAG|ML_IALGO_LINREG}}=3: Singular value decomposition. Usable with {{TAG|NSW}}=0,1.
*{{TAG|ML_IALGO_LINREG}}=4:
*{{TAG|ML_IALGO_LINREG}}=4: Singular value decomposition with Tikhonov regularization. Usable with {{TAG|NSW}}=0,1.


== Related Tags and Sections ==
== Related Tags and Sections ==

Revision as of 18:16, 12 October 2021

ML_IALGO_LINREG = [integer]
Default: ML_IALGO_LINREG = 1 

Description: This tag determines how to solve the system of linear equations in the ridge regression method for machine learning.


The following options are available:

Related Tags and Sections

ML_LMLFF, ML_W1, ML_WTOTEN, ML_WTIFOR, ML_WTSIF, ML_ISTART

Examples that use this tag