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A Robust Mosaicing Method with Super-Resolution for Optical Medical Images

机译:具有用于光学医学图像的超分辨率的鲁棒镶嵌方法

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Constructing a mosaicing image with a broader field-of-view has become an important topic in image guided diagnosis and treatment., In this paper, we present a robust feature-based method for video mosaicing with super-resolution for optical medical images. Firstly, outliers involved in the feature dataset are removed using trilinear constraints and iterative bundle adjustment, then a minimal cost graph path is built for mosaicing using topology inference. Finally, a mosaicing image with super-resolution is created by way of maximum a posterior (MAP) estimation and selective initialization. The proposed method has been tested with both endoscopic images from totally endoscopic coronary artery bypass surgery and fibered confocal microscopy images., The results showed our method performs better than previously reported methods in terms of accuracy and robustness to deformation and artefacts.
机译:构建具有更广泛视野的镶嵌图像已成为图像导向诊断和治疗中的重要课题。在本文中,我们介绍了一种基于功能的基于特征的方法,用于使用超分辨率进行光学医学图像的视频拼接。首先,使用Trileinear约束和迭代捆绑调整删除涉及特征数据集的异常值,然后为使用拓扑推断使用MISAICING的最小成本图路径。最后,通过最大后(MAP)估计和选择性初始化来创建具有超分辨率的马赛克图像。所提出的方法已经通过来自全内镜冠状动脉旁路手术和纤维共聚焦显微镜图像的内窥镜图像进行了测试。,结果表明,我们的方法在准确性和鲁棒性方面比先前报道的方法更好地进行变形和伪造。

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