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Deploying A Machine Learning Solution As A Surrogate

机译:部署机器学习解决方案作为替代

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A machine learning (ML) solution can be non-robust and when it is deployed, can make mistakes on the future unseen data. Consequently, deployment of a ML solution might demand continuous service from its ML developer. Using wafer image classification as an example, this paper presents the design of a ML solution where its deployment is facilitated by the continuous service from its ML expert.
机译:机器学习(ML)解决方案可能不是很健壮,并且部署后可能会在未来看不见的数据上出错。因此,部署ML解决方案可能需要其ML开发人员提供连续的服务。以晶圆图像分类为例,本文介绍了ML解决方案的设计,其中ML专家的持续服务为其部署提供了便利。

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