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Enabling Manual Intervention for Otherwise Automated Registration of Large Image Series

机译:启用手动干预以其他方式自动注册大图像系列

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Aligning thousands of images from serial imaging techniques can be a cumbersome task. Methods ([2,11,21]) and programs for automation exist (e.g. [1,4,10]) but often need case-specific tuning of many meta-parameters (e.g. mask, pyramid-scales, denoise, transform-type, method/metric, optimizer and its parameters). Other programs, that apparently only depend on a few parameter often just hide many of the remaining ones (initialized with default values), often cannot handle challenging cases satisfactorily. Instead of spending much time on the search for suitable meta-parameters that yield a usable result for the complete image series, the described approach allows to intervene by manually aligning problematic image pairs. The manually found transform is then used by the automatic alignment as an initial transformation that is then optimized as in the pure automatic case. Therefore the manual alignment does not have to be very precise. This way the worst case time consumption is limited and can be estimated (manual alignment of the whole series) in contrast to tuning of meta-parameters of pure auto-alignment of complete series which can hardly be guessed.
机译:对齐来自串行成像技术的成千上万张图像可能是一项繁琐的任务。存在用于自动化的方法([2,11,21])和程序(例如[1,4,10]),但通常需要根据具体情况对许多元参数进行调整(例如,蒙版,金字塔比例,降噪,变换类型) ,方法/指标,优化程序及其参数)。显然仅依赖于几个参数的其他程序通常仅隐藏许多剩余的程序(使用默认值初始化),通常无法令人满意地处理具有挑战性的情况。与其花费大量时间寻找合适的元参数以产生完整图像系列的可用结果,不如所描述的方法允许通过手动对准有问题的图像对来进行干预。手动找到的变换然后由自动对齐用作初始变换,然后像在纯自动情况下一样对其进行优化。因此,手动对齐不必非常精确。这样,与很难猜测的完整系列的纯自动对齐的元参数调整相反,最坏情况下的时间消耗受到限制,可以估算(整个系列的手动对齐)。

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