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Template regularization for generalization of learning systems

机译:用于学习系统通用化的模板正则化

摘要

Systems and techniques are disclosed for training a machine learning model based on one or more regularization penalties associated with one or more features. A template having a lower regularization penalty may be given preference over a template having a higher regularization penalty. A regularization penalty may be determined based on domain knowledge. A restrictive regularization penalty may be assigned to a template based on determining that a template occurrence is below a stability threshold and may be modified if the template occurrence meets or exceeds the stability threshold.
机译:公开了用于基于与一个或多个特征相关联的一个或多个正则化惩罚来训练机器学习模型的系统和技术。具有较低正则化代价的模板可以比具有较高正则化代价的模板具有优先权。可以基于域知识确定正则化惩罚。可以基于确定模板出现量低于稳定性阈值来将限制性正则化惩罚分配给模板,并且如果模板出现量满足或超过稳定性阈值,则可以对其进行修改。

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