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GAN Based Photo-Realistic Image Generation from Sketch using Nested U-Net

机译:基于GAN的基于嵌套U-Net的基于GAN的真实感图像生成

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In computer vision generative Image modelling is a vast area of research that many studies have been carried out to address such problems as an image to image translation. In this study, we mainly discuss how we can bridge the gap between the industrial designer and their production workflow to reduce the cost of the time they spend on prototyping. We demonstrate an image synthesizing technique to generate a photo-realistic image of a real-world object from a sketch. We integrate a new network architecture to the existing network to improve the system in generating photo realistic images. Compared to the existing systems our system can generate images with more accuracy and more photo-realism.
机译:在计算机视觉中,生成图像建模是一个广泛的研究领域,已经进行了许多研究来解决诸如图像到图像转换的问题。在本研究中,我们主要讨论如何弥合工业设计师与他们的生产工作流程之间的差距,以减少他们花在原型设计上的时间成本。我们演示了一种图像合成技术,可以从草图生成真实世界对象的逼真的图像。我们将新的网络架构集成到现有网络中,以改善生成照片逼真的图像的系统。与现有系统相比,我们的系统可以生成具有更高准确性和更真实感的图像。

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