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SENSOR FUSION FOR AUTONOMOUS MACHINE APPLICATIONS USING MACHINE LEARNING

机译:使用机器学习的自主机器应用传感器融合

摘要

In various examples, a multi-sensor fusion machine learning model—such as a deep neural network (DNN)—may be deployed to fuse data from a plurality of individual machine learning models. As such, the multi-sensor fusion network may use outputs from a plurality of machine learning models as input to generate a fused output that represents data from fields of view or sensory fields of each of the sensors supplying the machine learning models, while accounting for learned associations between boundary or overlap regions of the various fields of view of the source sensors. In this way, the fused output may be less likely to include duplicate, inaccurate, or noisy data with respect to objects or features in the environment, as the fusion network may be trained to account for multiple instances of a same object appearing in different input representations.
机译:在各种示例中,多传感器融合机学习模型 - 例如深神经网络(DNN)-may被部署到来自多个单独的机器学习模型的熔丝数据。 这样,多传感器融合网络可以使用来自多个机器学习模型的输出作为输入,以产生融合输出,该融合输出表示来自提供机器学习模型的每个传感器的视图或感官字段的数据,同时考虑 学习源传感器的各种视野领域之间的边界或重叠区域之间的关联。 以这种方式,融合输出可能不太可能在环境中包含重复,不准确或嘈杂的数据,因为融合网络可以训练以考虑出现在不同输入中的相同对象的多个实例 代表性。

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