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Density Estimation in Optical Phase Space for Optimizing Micro-Optical Elements on Freeform Surfaces

机译:光学相空间中的密度估计,可优化自由曲面上的微光学元件

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In imaging and non-imaging optical systems a microstructuring of the final surface of the system is often employed to further shape or diffuse the light distribution (e.g. in non-imaging luminaires or automotive headlights). While the geometry can be described in a parametric form by mapping the micro-optical features onto an underlying smooth freeform surface, ray-tracing an optical system composed of NURBS or polynomial B-spline surfaces for each optimization step can be costly. To reduce the computational overhead of ray-tracing the entire optical system for each optimization step, we perform a density estimation on the radiance distribution on the final smooth freeform surface. We employ a Gaussian Mixture Model (GMM) determined by Expectation Maximization (EM) and Multivariate Spline Approximation to estimate the power density in phase space. Using this continuous density, we gather the incident power on the detector and optimize parametric micro-optical elements on freeform surfaces. This is done in the context of purely specular surfaces, with the work focusing on the density estimation techniques and their side-effects in terms of precision and computational overhead. We demonstrate this density estimation approach for an LED collimator and compare the results to an unbiased Monte-Carlo ray-tracing ground truth.
机译:在成像和非成像光学系统中,通常采用系统最终表面的微结构来进一步整形或扩散光分布(例如在非成像照明器或汽车前灯中)。虽然可以通过将微光学特征映射到下面的光滑自由曲面上以参数形式描述几何形状,但对于每个优化步骤,光线跟踪由NURBS或多项式B样条曲面组成的光学系统可能会很昂贵。为了减少每个优化步骤对整个光学系统进行光线追踪的计算开销,我们对最终平滑自由曲面上的辐射分布执行密度估计。我们采用由期望最大化(EM)和多元样条近似法确定的高斯混合模型(GMM)来估计相空间中的功率密度。使用这种连续的密度,我们收集了检测器上的入射功率,并优化了自由曲面上的参数化微光学元件。这是在纯镜面曲面的情况下完成的,工作重点是密度估计技术及其在精度和计算开销方面的副作用。我们演示了这种用于LED准直器的密度估计方法,并将结果与​​无偏蒙特卡洛射线追踪地面实况进行了比较。

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