首页> 外国专利> LEARNING METHOD AND LEARNING DEVICE FOR GENERATING TRAINING DATA FROM VIRTUAL DATA ON VIRTUAL WORLD BY USING GENERATIVE ADVERSARIAL NETWORK, TO THEREBY REDUCE ANNOTATION COST REQUIRED IN TRAINING PROCESSES OF NEURAL NETWORK FOR AUTONOMOUS DRIVING, AND A TESTING METHOD AND A TESTING DEVICE USING THE SAME

LEARNING METHOD AND LEARNING DEVICE FOR GENERATING TRAINING DATA FROM VIRTUAL DATA ON VIRTUAL WORLD BY USING GENERATIVE ADVERSARIAL NETWORK, TO THEREBY REDUCE ANNOTATION COST REQUIRED IN TRAINING PROCESSES OF NEURAL NETWORK FOR AUTONOMOUS DRIVING, AND A TESTING METHOD AND A TESTING DEVICE USING THE SAME

机译:通过使用通用逆向网络从虚拟世界上的虚拟数据中生成训练数据的学习方法和学习装置,从而减少了用于自动驾驶的神经网络的训练过程,测试方法和测试方法所需要的注释成本

摘要

A learning method for transforming a virtual video on a virtual world to a more real-looking video is provided. And the method includes steps of: (a) a learning device instructing a generating CNN to apply a convolutional operation to an N-th virtual training image, N-th meta data and (N-K)-th reference information to generate an N-th feature map; (b) the learning device instructing the generating CNN to apply a deconvolutional operation to the N-th feature map to generate an N-th transformed image; (c) the learning device instructing a discriminating CNN to apply a discriminating CNN operation to the N-th transformed image to generate a category score vector; (d) the learning device instructing the generating CNN to generate a generating CNN loss by referring to the category score vector and its corresponding GT, and to perform backpropagation by referring to the generating CNN loss to learn parameters of the generating CNN.
机译:提供了一种用于将虚拟世界上的虚拟视频转换为更逼真的视频的学习方法。并且该方法包括以下步骤:(a)学习设备,指示生成的CNN将卷积运算应用于第N个虚拟训练图像,第N个元数据和第(NK)个参考信息以生成第N个特征图(b)学习装置指示生成的CNN对第N个特征图应用反卷积运算以生成第N个变换图像; (c)学习装置指示区别性CNN对第N个变换图像应用区别性CNN操作,以生成类别分数矢量; (d)学习装置指示生成的CNN通过参考类别得分矢量及其对应的GT来生成生成的CNN损失,并通过参考生成的CNN损失来进行反向传播以学习生成的CNN的参数。

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