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Towards the automatic segmentation of HEp-2 cells in indirect immunofluorescence images using an efficient filtering based approach

机译:利用基于有效的滤波方法对间接免疫荧光图像中HEP-2细胞的自动分割

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摘要

The computer aided analysis of Indirect-Immunofluorescence (IIF) images is important for the differential diagnosis of several autoimmune diseases. A fully automatic approach consists in segmentation of individual cells in IIF images and subsequently its classification into various pattern types. This paper explores the segmentation of HEp2 cell in IIF images through the use of a filtering based approach. Our algorithm is based on a local convergence filter named as Sliding Band Filter (SBF). We propose a modified SBF that is capable of handling the low contrast, noise and illumination variations peculiar to IIF images. In addition, we follow a simple algorithmic pipeline and achieve better accuracy as compared to several state of the art segmentation algorithms on standard HEp2 image dataset.
机译:对间接免疫荧光(IIF)图像的计算机辅助分析对于若干自身免疫疾病的差异诊断是重要的。完全自动方法在IIF图像中分段并随后将其分类为各种模式类型。本文通过使用基于过滤的方法探讨了IIF图像中HEP2单元的分割。我们的算法基于名为滑动带滤波器(SBF)的本地收敛滤波器。我们提出了一种改进的SBF,其能够处理IIF图像特有的低对比度,噪声和照明变化。此外,与标准HEP2图像数据集上的若干状态相比,我们遵循简单的算法流水线并实现更好的准确性。

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