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Optimization-Based Adaptive Optical Correction for Holographic Projectors

机译:基于优化的全息投影机自适应光学校正

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摘要

A novel method of correcting the aberrations of holographic projectors is presented. The method employs an optimization algorithm to determine an aberration-correcting phase mask composed of 13 Zernike Polynomials. The mask can be used thereafter to correct every image produced by the projector. Two optimization algorithms are demonstrated: a hybrid genetic steepest descent algorithm and a heuristic variant of steepest descent. The primary advantage of these methods is that no modifications of the standard holographic projector are required. Furthermore, the methods are fully automated. They are evaluated on two projectors with different Spatial Light Modulator flatness profiles for three wavelengths. First, the correction is demonstrated for both projectors on a green wavelength. It is then adapted for red and blue wavelengths by rescaling the mask and adjusting for chromatic aberration. The hybrid genetic-steepest-descent algorithm is compared with the heuristic steepest descent algorithm. On average, the hybrid algorithm is found to give better and more reliable correction than the heuristic steepest descent algorithm while taking 50% longer to terminate. The method is also compared with non-automated interferometric flatness measurements and is found to produce improved results.
机译:提出了一种校正全息投影仪像差的新方法。该方法采用优化算法来确定由13个Zernike多项式组成的像差校正相位掩模。此后可以使用该遮罩校正投影机产生的每个图像。演示了两种优化算法:混合遗传最速下降算法和最速下降的启发式变体。这些方法的主要优点是不需要修改标准的全息投影仪。此外,这些方法是完全自动化的。在具有三个波长的不同空间光调制器平坦度轮廓的两台投影机上对它们进行了评估。首先,演示了针对两台绿色波长投影机的校正方法。然后,通过重新调整蒙版的比例并调整色差,使其适合红色和蓝色波长。将混合遗传最速下降算法与启发式最速下降算法进行了比较。平均而言,发现混合算法比启发式最速下降算法能提供更好,更可靠的校正,同时终止时间要长50%。还将该方法与非自动干涉平坦度测量进行了比较,发现该方法可产生更好的结果。

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