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Computed Optical Interferometric Imaging: Methods Achievements and Challenges

机译:计算机光学干涉成像:方法成就和挑战

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摘要

Three-dimensional high-resolution optical imaging systems are generally restricted by the trade-off between resolution and depth-of-field as well as imperfections in the imaging system or sample. Computed optical interferometric imaging is able to overcome these longstanding limitations using methods such as interferometric synthetic aperture microscopy (ISAM) and computational adaptive optics (CAO) which manipulate the complex interferometric data. These techniques correct for limited depth-of-field and optical aberrations without the need for additional hardware. This paper aims to outline these computational methods, making them readily available to the research community. Achievements of the techniques will be highlighted, along with past and present challenges in implementing the techniques. Challenges such as phase instability and determination of the appropriate aberration correction have been largely overcome so that imaging of living tissues using ISAM and CAO is now possible. Computed imaging in optics is becoming a mature technology poised to make a significant impact in medicine and biology.
机译:三维高分辨率光学成像系统通常受到分辨率与景深之间的权衡以及成像系统或样本中缺陷的限制。使用诸如干涉合成孔径显微镜(ISAM)和计算自适应光学器件(CAO)之类的方法来处理复杂的干涉数据,计算机光学干涉成像能够克服这些长期的局限性。这些技术可校正有限的景深和光学像差,而无需其他硬件。本文旨在概述这些计算方法,使其易于为研究团体使用。将重点介绍该技术的成就以及实施该技术时过去和现在的挑战。相位不稳定和确定适当像差校正等挑战已得到很大克服,因此现在可以使用ISAM和CAO对活组织成像。光学计算机成像技术正在成为一项成熟的技术,有望对医学和生物学产生重大影响。

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