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A bottom-up and top-down model for cell segmentation using multispectral data

机译:使用多光谱数据进行自下而上和自上而下的细胞分割模型

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Cell segmentation is a challenging problem in histology and cytology that can benefit from additional information obtained in using multispectral imaging. Unique transmission spectra of biological tissues are potentially useful for better classification and segmentation of sub-cellular structures. In this paper, we propose a conditional random field (CRF) model that interprets high-dimensional spectral data during inference and pixel labeling. High quality segmentations are computed by combining low-level cues and high-level contextual information extracted by unsupervised topic discovery. Comparative analysis of the proposed model against the commonly used 2-D CRF model in color space is also performed. Results of this evaluation show the benefits of our proposed model.
机译:细胞分割是组织学和细胞学中的一个具有挑战性的问题,其可以受益于使用多光谱成像所获得的附加信息。生物组织的独特透射光谱潜在可用于更好的分类和亚细胞结构的分割。在本文中,我们提出了一种条件随机场(CRF)模型,其在推理和像素标记期间解释高维光谱数据。通过组合由无监督主题发现提取的低级线索和高级上下文信息来计算高质量的细分。还执行了对常用二维CRF模型的提出模型的比较分析。该评估结果显示了我们提出的模型的好处。

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