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A Machine-Learning-Driven Sky Model

机译:机器学习驱动的天空模型

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摘要

Sky illumination is responsible for much of the lighting in a virtual environment. A machine-learning-based approach can compactly represent sky illumination from both existing analytic sky models and from captured environment maps. The proposed approach can approximate the captured lighting at a significantly reduced memory cost and enable smooth transitions of sky lighting to be created from a small set of environment maps captured at discrete times of day. The author's results demonstrate accuracy close to the ground truth for both analytical and capture-based methods. The approach has a low runtime overhead, so it can be used as a generic approach for both offline and real-time applications.
机译:天空照明是虚拟环境中大部分照明的原因。基于机器学习的方法可以从现有的分析天空模型和捕获的环境地图中紧凑地表示天空照明。所提出的方法可以以显着降低的存储器成本来近似捕获的照明,并且能够从在一天的离散时间捕获的一小组环境地图中创建天空照明的平滑过渡。作者的结果表明,对于分析方法和基于捕获的方法而言,其准确性均接近基本事实。该方法的运行时开销较低,因此可以用作脱机和实时应用程序的通用方法。

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