Method for accurate unsupervised cell nucleus segmentation

P. Bamford, Brian C. Lovell
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引用次数: 29

Abstract

To achieve the extreme accuracy rates demanded by applications in unsupervised automated cytology, it is frequently necessary to supplement the primary segmentation algorithm with a segmentation quality control system. The more robust the segmentation strategy, the less severe the data pruning need be at the segmentation validation stage. These issues are addressed as we describe our cell nucleus segmentation strategy which is able to achieve 100% accurate segmentation from a data set of 19946 cell nucleus images by automatically discarding the most difficult cell images. The automatic quality checking is applied to enhance-the performance of a robust energy minimisation based segmentation scheme which already achieved a 99.47% accurate segmentation rate.
精确的无监督细胞核分割方法
为了达到无监督自动细胞学应用所要求的极高准确率,经常需要用分割质量控制系统补充主分割算法。分割策略的鲁棒性越强,在分割验证阶段需要进行的数据修剪就越少。我们描述了我们的细胞核分割策略,通过自动丢弃最困难的细胞图像,能够从19946个细胞核图像数据集中实现100%准确的分割,从而解决了这些问题。应用自动质量检查来提高基于能量最小化的鲁棒分割方案的性能,该方案的分割准确率已达到99.47%。
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