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A study on computation optimization method for three-dimension scene light field radiation simulation in visible light band

机译:可见光带三维场景光场辐射仿真计算优化方法研究

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The simulation of high accuracy three-dimension (3D) scene optical field radiation distribution can provide the input for camera design, optimization of key parameters and testing of various imaging models. It can benefit for reducing the strong coupling between the imaging models and scene simulation. However, the simulation computation is extremely large and the non-optimization computing method can't performed efficiently. Therefore, a study was carried out from the algorithm optimization and using high-performance platform to accelerate the operation speed. On the one hand, the visibility of scene was pre-computed which include the visibility from the light source to each facet in scene and the visibility between facets. The bounding box accelerate algorithm was adopted which can avoid a lot of time-consuming computation of occlusion in the light field radiation simulation process. On the other hand, since the 3D scene light field radiation simulation was obtained by a large number of light approximation, the algorithms can be divided blocks and processed parallelly. The GPU parallel framework was adopted to realize the simulation model of light field radiation in visible band. Finally, experiments were performed. The result shown the proposed method was more efficient and effective compared with the non-optimization method.
机译:高精度三维(3D)场景光场辐射分布的仿真可以为相机设计,优化关键参数和各种成像模型的测试提供输入。它可以有利于降低成像模型和场景模拟之间的强耦合。然而,仿真计算非常大,并且无法有效地执行非优化计算方法。因此,从算法优化和使用高性能平台进行研究以加速操作速度。一方面,预先计算场景的可见性,其包括从光源到场景中的每个刻面的可视性以及面部之间的可见性。采用边界框加速算法,其可以避免在光场辐射模拟过程中避免大量耗时的遮挡计算。另一方面,由于通过大量光近似获得3D场景光场辐射仿真,因此可以将算法分成块并并行处理。采用GPU并行框架来实现可见带中光场辐射的仿真模型。最后,进行实验。与非优化方法相比,所提出的方法所示的结果更有效且有效。

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