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As Easy as 1, 2. .. 4? Uncertainty in Counting Tasks for Medical Imaging

机译:像1、2 ... 4一样简单?医学影像计数任务的不确定性

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Counting is a fundamental task in biomedical imaging and count is an important biomarker in a number of conditions. Estimating the uncertainty in the measurement is thus vital to making definite, informed conclusions. In this paper, we first compare a range of existing methods to perform counting in medical imaging and suggest ways of deriving predictive intervals from these. We then propose and test a method for calculating intervals as an output of a multi-task network. These predictive intervals are optimised to be as narrow as possible, while also enclosing a desired percentage of the data. We demonstrate the effectiveness of this technique on histopathological cell counting and white matter hyperintensity counting. Finally, we offer insight into other areas where this technique may apply.
机译:计数是生物医学成像的基本任务,在许多情况下计数是重要的生物标志物。因此,估计测量中的不确定性对于做出确定的,有根据的结论至关重要。在本文中,我们首先比较一系列现有的在医学成像中执行计数的方法,并提出从中得出预测间隔的方法。然后,我们提出并测试一种计算间隔的方法,作为多任务网络的输出。这些预测间隔已优化为尽可能窄,同时还包含所需百分比的数据。我们证明了这项技术对组织病理学细胞计数和白质高强度计数的有效性。最后,我们提供了可以应用此技术的其他领域的见解。

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