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Generating a machine learning model for objects based on augmenting the objects with physical properties

机译:通过增强对象的物理属性为对象生成机器学习模型

摘要

A device receives images of a video stream, models for objects in the images, and physical property data for the objects, and maps the models and the physical property data to the objects in the images to generate augmented data sequences. The device applies different physical properties to the objects in the augmented data sequences to generate augmented data sequences with different applied physical properties, and trains a machine learning (ML) model based on the images to generate a first trained ML model. The device trains the ML model, based on the augmented data sequences with the different applied physical properties, to generate a second trained ML model, and compares the first trained ML model and the second trained ML model. The device determines whether the second trained ML model is optimized based on the comparison, and provides the second trained ML model when optimized.
机译:设备接收视频流的图像,图像中的对象的模型以及对象的物理属性数据,并将模型和物理属性数据映射到图像中的对象以生成增强的数据序列。设备将不同的物理属性应用于增强数据序列中的对象,以生成具有不同应用物理属性的增强数据序列,并基于图像训练机器学习(ML)模型以生成第一训练后的ML模型。该设备基于具有不同应用物理属性的增强数据序列训练ML模型,以生成第二训练的ML模型,并比较第一训练的ML模型和第二训练的ML模型。设备基于比较确定第二训练后的ML模型是否被优化,并且当被优化时提供第二训练后的ML模型。

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