首页> 外国专利> DEEP NEURAL NETWORK BASED IDENTIFICATION OF REALISTIC SYNTHETIC IMAGES GENERATED USING A GENERATIVE ADVERSARIAL NETWORK

DEEP NEURAL NETWORK BASED IDENTIFICATION OF REALISTIC SYNTHETIC IMAGES GENERATED USING A GENERATIVE ADVERSARIAL NETWORK

机译:基于深度神经网络的利用生成式对抗网络生成的逼真的合成图像识别

摘要

Techniques are provided for deep neural network (DNN) identification of realistic synthetic images generated using a generative adversarial network (GAN). According to an embodiment, a system is described that can comprise a memory that stores computer executable components and a processor that executes the computer executable components stored in the memory. The computer executable components can comprise, a first extraction component that extracts a subset of synthetic images classified as non-real like as opposed to real-like, wherein the subset of synthetic images were generated using a GAN model. The computer executable components can further comprise a training component that employs the subset of synthetic images and real images to train a DNN network model to classify synthetic images generated using the GAN model as either real-like or non-real like
机译:提供了用于使用生成对抗网络(GAN)生成的逼真的合成图像的深度神经网络(DNN)识别技术。根据一个实施例,描述了一种系统,该系统可包括存储计算机可执行组件的存储器和执行存储在存储器中的计算机可执行组件的处理器。该计算机可执行组件可以包括第一提取组件,该第一提取组件提取被分类为非真实像而不是真实像的合成图像的子集,其中合成图像的子集是使用GAN模型生成的。计算机可执行组件还可包括训练组件,该训练组件采用合成图像和真实图像的子集来训练DNN网络模型,以将使用GAN模型生成的合成图像分类为真实图像或非真实图像。

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