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Leukocyte cells identification and quantitative morphometry based on molecular hyperspectral imaging technology

机译:基于分子高光谱成像技术的白细胞识别与定量形态学

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摘要

Leukocyte cells identification is one of the most frequently performed blood tests and plays an important role in the diagnosis of diseases. The quantitative observation of leukocyte cells is often complemented by morphological analysis in both research and clinical condition. Different from the traditional leukocyte cells morphometry methods, a molecular hyperspectral imaging system based on acousto-optic tunable filter (AOTF) was developed and used to observe the blood smears. A combined spatial and spectral algorithm is proposed to identify the cytoplasm and the nucleus of leukocyte cells by integrating the fuzzy C-means (FCM) with the spatial K-means algorithm. Then the morphological parameters such as the cytoplasm area, the nuclear area, the perimeter, the nuclear ratio, the form factor, and the solidity were calculated and evaluated. Experimental results show that the proposed algorithm has better performance than the spectral based algorithm as the new algorithm can jointly use the spatial and spectral information of leukocyte cells.
机译:白细胞的鉴定是最常进行的血液检查之一,在疾病的诊断中起着重要的作用。在研究和临床状况中,经常通过形态分析来补充白细胞的定量观察。与传统的白细胞形态学方法不同,开发了基于声光可调滤光片(AOTF)的分子高光谱成像系统,并用于观察血涂片。提出了一种空间和光谱相结合的算法,通过将模糊C均值(FCM)与空间K均值算法相结合来识别白细胞的细胞质和细胞核。然后计算并评估形态参数,例如细胞质面积,核面积,周长,核比例,形状因子和坚固性。实验结果表明,该算法比基于光谱的算法具有更好的性能,因为该算法可以共同利用白细胞的空间和光谱信息。

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