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System and Method for Unsupervised Domain Adaptation with Mixup Training

机译:混合训练的无监督域适应的系统和方法

摘要

A system and method for domain adaptation involves a first domain and a second domain. A machine learning system is trained with first sensor data and first label data of the first domain. Second sensor data of a second domain is obtained. Second label data is generated via the machine learning system based on the second sensor data. Inter-domain sensor data is generated by interpolating the first sensor data of the first domain with respect to the second sensor data of the second domain. Inter-domain label data is generated by interpolating first label data of the first domain with respect to second label data of the second domain. The machine learning system is operable to generate inter-domain output data in response to the inter-domain sensor data. Inter-domain loss data is generated based on the inter-domain output data with respect to the inter-domain label data. Parameters of the machine learning system are updated upon optimizing final loss data that includes at least the inter-domain loss data. After domain adaptation, the machine learning system, which is operable in the first domain, is adapted to generate current label data that identifies current sensor data of the second domain.
机译:用于域适配的系统和方法涉及第一域和第二域。使用第一传感器数据和第一域的第一个标签数据培训机器学习系统。获得第二域的第二传感器数据。基于第二传感器数据通过机器学习系统生成第二标签数据。通过在第二域的第二传感器数据内插入第一域的第一传感器数据来生成域间传感器数据。通过在第二域的第二标签数据内插入第一域的第一标签数据来生成域间标签数据。机器学习系统可操作以响应域间传感器数据而生成域间输出数据。基于域间输出数据相对于域间标签数据生成域间丢失数据。在优化至少包括域间损耗数据的最终损耗数据时更新机器学习系统的参数。在域自适应之后,可在第一域中操作的机器学习系统适于生成识别第二域的电流传感器数据的当前标签数据。

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