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Deformable Registration of Multi-modal Microscopic Images Using a Pyramidal Interactive Registration-Learning Methodology

机译:使用金字塔互动注册学习方法的多模态微观图像可变形的登记

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Co-registration of multi-modal microscopic images can integrate benefits of each modality, yet major challenges come from inherent difference between staining, distortions of specimens and various artefacts. In this paper, we propose a new interactive registration-learning method to register functional fluorescence (IF) and structural histology (HE) images in a pyramidal fashion. We synthesize HE image from the multi-channel IF image using a supervised machine learning technique and hence reduce the multi-modality registration problem into a mono-modality one, in which case the normalised cross correlation is used as the similarity measure. Unlike conventional applications of supervised learning, our classifier is not trained by 'ground-truth' (perfectly-registered) training dataset, as they are not available. Instead, we use a relatively noisy training dataset (affinely-registered) as an initialization and rely on the robustness of machine learning to the outliers and label updates via pyramidal deformable registration to gain better learning and predictions. In this sense, the proposed methodology has potential to be adapted in other learning problems as the manual labelling is usually imprecise and very difficult in the case of heterogeneous tissues.
机译:多模态微观图像的共同登记可以整合每种方式的益处,但是主要挑战来自染色,样品的扭曲和各种艺术品之间的固有差异。在本文中,我们提出了一种新的交互式注册学习方法,以以金字塔形时尚注册功能荧光(IF)和结构组织学(HE)图像。我们使用监督机器学习技术将HE图像从多通道综合图像,并且因此将多模态登记问题降低到单片号之一中,在这种情况下,使用归一化交叉相关性作为相似度测量。与监督学习的传统应用不同,我们的分类器不是由“地面真理”(完美注册)训练数据集接受培训,因为它们不可用。相反,我们使用相对嘈杂的训练数据集(派生注册)作为初始化,并依靠机器学习的鲁棒性,通过金字塔可变形注册来获得更好的学习和预测。从这个意义上讲,当手动标记通常在异质组织的情况下通常是不精确的并且非常困难,所提出的方法具有适应其他学习问题的可能性。

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