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Distortion matrix concept for deep optical imaging in scattering media

机译:散射介质深光学成像的失真矩阵概念

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In optical imaging, light propagation is affected by the inhomogeneities of the medium. Sample-induced aberrations and multiple scattering can strongly degrade the image resolution and contrast. On the basis of a dynamic correction of the incident and/or reflected wavefronts, adaptive optics has been used to compensate for those aberrations. However, it only applies to spatially invariant aberrations or to thin aberrating layers. Here, we propose a global and noninvasive approach based on the distortion matrix concept. This matrix basically connects any focusing point of the image with the distorted part of its wavefront in reflection. A singular value decomposition of the distortion matrix allows to correct for high-order aberrations and forward multiple scattering over multiple isoplanatic modes. Proof-of-concept experiments are performed through biological tissues including a turbid cornea. We demonstrate a Strehl ratio enhancement up to 2500 and recover a diffraction-limited resolution until a depth of 10 scattering mean free paths.
机译:在光学成像中,光传播受培养基的不均匀性的影响。样品引起的像差和多个散射可以强烈降低图像分辨率和对比度。在发生事件和/或反射波前的动态校正的基础上,用于补偿这些像差的自适应光学器件。然而,它只适用于空间不变的像差或薄的像差层。在这里,我们提出了一种基于失真矩阵概念的全局和非侵入性方法。该矩阵基本上将图像的任何聚焦点与其波前反射的失真部分连接。失真矩阵的奇异值分解允许校正高阶像差并通过多个Isoplanatic模式转发多个散射。概念证明实验是通过包括混浊角膜的生物组织进行的。我们证明了斯特勒比比增强至2500,并回收衍射限制的分辨率,直到10个散射平均自由路径的深度。

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