ML MCONF NEW: Difference between revisions

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Description: This tag sets the number of configurations that are stored temporarily as candidates for the training data in the machine learning force field method.
Description: This tag sets the number of configurations that are stored temporarily as candidates for the training data in the machine learning force field method.
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{{NB|warning|This value is close to optimal for on-the-fly learning,  and should usually not be changed. If force fields are reparameterized, calculations are usually more efficient, if this parameter is increased.}}
{{NB|warning|This value is close to optimal for on-the-fly learning,  and should usually not be changed. }}


The use of this tag in combination with the learning algorithms is described here: [[Machine learning force field calculations: Basics#Sampling of training data and local reference configurations|here]].
The use of this tag in combination with the learning algorithms is described here: [[Machine learning force field calculations: Basics#Sampling of training data and local reference configurations|here]].
If force fields are reparameterized, calculations are usually more efficient, if this parameter is increased.


== Related tags and articles ==
== Related tags and articles ==

Revision as of 09:24, 29 July 2022

ML_MCONF_NEW = [integer]
Default: ML_MCONF_NEW = 5 

Description: This tag sets the number of configurations that are stored temporarily as candidates for the training data in the machine learning force field method.


Warning: This value is close to optimal for on-the-fly learning, and should usually not be changed.

The use of this tag in combination with the learning algorithms is described here: here. If force fields are reparameterized, calculations are usually more efficient, if this parameter is increased.

Related tags and articles

Examples that use this tag


ML_LMLFF, ML_MCONF, ML_CTIFOR, ML_CDOUB