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Capsule Based Image Synthesis for Interior Design Effect Rendering

机译:用于室内设计效果渲染的基于胶囊的图像合成

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Effect rendering that renders 3D model to 2D images with various coloring and lighting effects, is an important step in home interior design. Traditional way of manual rendering using professional software is very labor intensive and time consuming. In this paper, we present a novel capsule based conditional generative adversarial network that can automatically synthesize an indoor image with realistic and aesthetically pleasing rendering effect from a given plain image rendered without any effects from a interior designed 3D model. By adapting capsule blocks in both generator and discriminator and a novel multi-way loss function inside discriminator, our framework is able to generate more realistic rendering effect at both detail and global levels. In addition, a novel line preservation loss is introduced not only to help preserve the properties that are independent of lighting effect, but also improves the lighting effect along those lines. We apply our technique on a dataset specially prepared for interior design effect rendering and systematically compare our approach with multiple state-of-the-art methods.
机译:将3D模型渲染为具有各种着色和灯光效果的2D图像的效果渲染是家庭室内设计中的重要一步。使用专业软件的传统手动渲染方式非常费力且费时。在本文中,我们提出了一种新颖的基于胶囊的条件生成对抗网络,该网络可以根据给定的普通图像自动合成具有真实感和美感的渲染效果的室内图像,而无需室内设计的3D模型的影响。通过调整发生器和鉴别器中的胶囊块以及鉴别器中新颖的多路损耗函数,我们的框架能够在细节和全局级别上产生更逼真的渲染效果。另外,引入了新的线保留损失,不仅有助于保留与照明效果无关的特性,而且还改善了沿这些线的照明效果。我们将我们的技术应用于专门为室内设计效果渲染准备的数据集,并将我们的方法与多种最新方法进行系统地比较。

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