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Noise suppressed multifocus image fusion for enhanced intraoperative navigation

机译:用于增强的术中导航噪声抑制多聚焦图像融合

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摘要

Current intraoperative imaging systems are typically not able to provide ‘sharp’ images over entire large areas or entire organs. Distinct structures such as tissue margins or groups of malignant cells are therefore often difficult to detect, especially under low signal-to-noise-ratio conditions. In this report, we introduce a noise suppressed multifocus image fusion algorithm, that provides detailed reconstructions even when images are acquired under sub-optimal conditions, such is the case for real time fluorescence intraoperative surgery. The algorithm makes use of the Anscombe transform combined with a multi-level stationary wavelet transform with individual threshold-based shrinkage. While the imaging system is integrated with a respiratory monitor triggering system, it can be easily adapted to any commercial imaging system. The developed algorithm is made available as a plugin for Osirix. Intraoperative detection of small malignant fluorescent cells using the proposed noise suppressed multifocus image fusion system. Red/Yellow circles indicate small groups of malignant cells.
机译:当前的术中成像系统通常无法在整个大区域或整个器官上提供“清晰”的图像。因此,通常难以检测诸如组织边缘或恶性细胞群之类的独特结构,尤其是在低信噪比条件下。在本报告中,我们介绍了一种噪声抑制的多焦点图像融合算法,即使在次优条件下采集图像时也能提供详细的重建,例如实时荧光术中手术。该算法将Anscombe变换与具有基于阈值的单个收缩的多级平稳小波变换结合使用。当成像系统与呼吸监测器触发系统集成在一起时,它可以轻松地适用于任何商用成像系统。开发的算法可作为Osirix的插件使用。使用拟议的噪声抑制多聚焦图像融合系统进行术中小恶性荧光细胞的检测。红色/黄色圆圈表示一小组恶性细胞。

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