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Holo-UNet: hologram-to-hologram neural network restoration for high fidelity low light quantitative phase imaging of live cells

机译:HOLO-UNET:全息图 - 全息图神经网络恢复用于高保真低光定量相成像的活细胞

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摘要

Intensity shot noise in digital holograms distorts the quality of the phase images after phase retrieval, limiting the usefulness of quantitative phase microscopy (QPM) systems in long term live cell imaging. In this paper, we devise a hologram-to-hologram neural network, Holo-UNet, that restores high quality digital holograms under high shot noise conditions (sub-mW/cm2 intensities) at high acquisition rates (sub-milliseconds). In comparison to current phase recovery methods, Holo-UNet denoises the recorded hologram, and so prevents shot noise from propagating through the phase retrieval step that in turn adversely affects phase and intensity images. Holo-UNet was tested on 2 independent QPM systems without any adjustment to the hardware setting. In both cases, Holo-UNet outperformed existing phase recovery and block-matching techniques by ∼ 1.8 folds in phase fidelity as measured by SSIM. Holo-UNet is immediately applicable to a wide range of other high-speed interferometric phase imaging techniques. The network paves the way towards the expansion of high-speed low light QPM biological imaging with minimal dependence on hardware constraints.
机译:数字全息图中的强度射击噪声扭曲了相位检索后的相位图像的质量,限制了在长期活细胞成像中定量相显微镜(QPM)系统的有用性。在本文中,我们设计了全息图到全息图神经网络,Holo-UNET,在高收集速率(子毫秒)下在高射击噪声条件(Sub-MW / CM2强度)下恢复高质量的数字全息图。与电流相位恢复方法相比,Holo-Unet向记录的全息图弃头,因此防止射门噪声通过相位检索步骤传播,反过来不利地影响相位和强度图像。 Holo-UNET在2个独立的QPM系统上进行了测试,而无需对硬件设置进行任何调整。在这两种情况下,通过SSIM测量,Holo-unet优于现有的相位回收和块匹配技术在阶段保真中的〜1.8倍。 Holo-UNET立即适用于各种其他高速干涉相成像技术。该网络铺设了扩展高速低光QPM生物成像的方式,对硬件约束的最小依赖性。

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