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A model-based approach to wave front sensorless adaptive optics

机译:基于模型的波浪前无传感器自适应光学方法

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One of the simplest implementations of adaptive optics requires an adaptive correction element and a single pin-hole photodetector. Aberration measurement is performed by the sequential application of chosen aberrations using the correction element and appropriate processing of the corresponding photodetector intensity measurements in order to maximise the detector signal. These wave front sensorless adaptive optics systems have been demonstrated in many applications, which have included confocal microscopy, intra-cavity aberration correction for lasers, fibre coupling and optical trapping. The maximisation procedure, the choice of the applied aberrations and the processing of the intensity measurements must be optimised if the system is to work efficiently. In many practical systems aberrations can be accurately represented by a small number of orthogonal modes. We present a model of such systems and show that they have properties that facilitate algorithm design, in particular a well defined maximum and spherical symmetry. Through mathematical reasoning these properties can be used to calculate optimum parameters, rather than obtaining them in an empirical manner. The model leads to a direct maximisation algorithm that has much better convergence properties than search algorithms and permits the measurement of N modes with only N + 1 intensity measurements. We also describe a general scheme for such wave front sensorless algorithms and relate various methods to this general scheme.
机译:自适应光学器件的最简单实现之一需要自适应校正元件和单个引脚孔光电探测器。通过使用校正元件顺序施加所选择的像差和相应的光电探测器强度测量的适当处理来执行像差测量,以最大化检测器信号。这些波前无传感器自适应光学系统已经在许多应用中进行了证明,该应用包括共聚焦显微镜,腔内的腔内像差校正,用于激光器,光纤耦合和光学捕获。最大化过程,所施加的像差的选择和强度测量的处理如果系统有效地工作,则必须优化。在许多实际系统中,可以通过少量正交模式准确地表示像差。我们提出了一种这样的系统的模型,并表明它们具有便于算法设计的性质,特别是良好地定义的最大和球面对称。通过数学推理,这些属性可用于计算最佳参数,而不是以经验方式获得它们。该模型导致直接的最大化算法,其与搜索算法具有更好的收敛性,并且允许仅具有N + 1强度测量的N模式。我们还描述了这种波前无传感器算法的一般方案,并将各种方法与该一般方案相关联。

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