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A Lightweight Network for Outdoor Illumination Estimation on Mobile Devices

机译:用于移动设备上的户外照明估计的轻量级网络

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Outdoor illumination estimation is particularly essential for augmented reality applications. Traditionally, handcraft illumination features are used to recover outdoor illumination such as shadows and highlight areas of the scenes. These features are so dependent on human experience and auxiliary equipments that the performances of these approaches are limited. This paper presents a lightweight network based on MobileNet V3 to estimate outdoor illumination from a single outdoor image. A physically-based illumination model is fitted to the sky regions of outdoor panoramas to generate illumination parameters, and different field of view images are extracted from outdoor panoramas. The images with illumination parameters annotated are then used to train our lightweight network. Experiments show that our method can perform well and is suitable for mobile-based applications.
机译:户外照明估计对于增强现实应用尤为重要。 传统上,手工效果照明特征用于恢复户外照明,例如阴影和突出场景的突出区域。 这些功能如此依赖于人类经验和这些方法的性能有限的辅助设备。 本文介绍了基于MobileNet V3的轻量级网络,以估计单个户外图像的户外照明。 基于物理的照明模型安装在室外全景的天空区域,以产生照明参数,并且从室外全景中提取不同的视野图像。 然后使用带照明参数的图像来培训我们的轻量级网络。 实验表明,我们的方法可以表现良好,适用于基于移动的应用。

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