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Dynamic bi-modal fusion of images for the segmentation of pollen tubes in video

机译:动态双峰图像融合,用于视频中的花粉管分割

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Biologists study pollen tube growth to understand how internal cell dynamics affect observable structural characteristics like cell diameter, length, and growth rate. Fluorescence microscopy is used to study the dynamics of internal proteins and ions, but this often produces images with missing parts of the pollen tube. Brightfield microscopy provides a low-cost way of obtaining structural information about the pollen tube, but the images are crowded with false edges. We propose a dynamic segmentation fusion scheme that uses both Bright-field and Fluorescence images of growing pollen tubes to get a unified segmentation. Knowledge of the image formation process is used to create an initial estimate of the location of the cell boundary. Fusing this estimate with an edge indicator function amplifies desired edges and attenuates undesired edges. The cell boundary is obtained using Level Set evolution on the fused edge indicator function. Experimental testing shows that this fusion produces significantly better results than those obtained without it.
机译:生物学家研究花粉管的生长,以了解内部细胞动力学如何影响可观察到的结构特征,例如细胞直径,长度和生长速率。荧光显微镜用于研究内部蛋白质和离子的动力学,但这通常会产生带有花粉管缺失部分的图像。明场显微镜提供了一种低成本的方法来获取有关花粉管的结构信息,但是图像上充斥着错误的边缘。我们提出了一种动态分段融合方案,该方案使用正在生长的花粉管的明场图像和荧光图像来获得统一的分段。图像形成过程的知识用于创建细胞边界位置的初始估计。将该估计值与边缘指示符功能融合在一起,可以放大所需的边缘,并衰减不希望的边缘。单元格边界是使用融合边缘指示器功能上的“水平集”演化获得的。实验测试表明,这种融合产生的结果比没有融合时产生的结果要好得多。

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