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Semi-automated Segmentation of Neuroblastoma Nuclei Using the Gradient Energy Tensor: A User Driven Approach

机译:使用梯度能量张量的神经母细胞瘤核的半自动分割:一种用户驱动方法

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We propose a user-driven method for the segmentation of neuroblastoma nuclei in microscopic fluorescence images involving the gradient energy tensor. Multispectral fluorescence images contain intensity and spatial information about antigene expression, fluorescence in situ hybridization (FISH) signals and nucleus morphology. The latter serves as basis for the detection of single cells and the calculation of shape features, which are used to validate the segmentation and to reject false detections. Accurate segmentation is difficult due to varying staining intensities and aggregated cells. It requires several (meta-) parameters, which have a strong influence on the segmentation results and have to be selected carefully for each sample (or group of similar samples) by user interactions. Because our method is designed for clinicians and biologists, who may have only limited image processing background, an interactive parameter selection step allows the implicit tuning of parameter values. With this simple but intuitive method, segmentation results with high precision for a large number of cells can be achieved by minimal user interaction. The strategy was validated on hand-segmented datasets of three neuroblastoma cell lines.
机译:我们提出了一种用于在涉及梯度能量张量的微观荧光图像中进行神经母细胞瘤核的分割的用户驱动方法。多光谱荧光图像含有关于抗原烯表达的强度和空间信息,原位杂交(鱼类)信号和核形态的荧光。后者用作检测单个小区的基础和形状特征的计算,用于验证分段并抑制错误检测。由于不同的染色强度和聚集细胞,难以准确的分割。它需要几种(META-)参数,这对分段结果产生了强烈影响,并且必须通过用户交互仔细选择每个样本(或类似样本的组)。由于我们的方法专为临床医生和生物学家而设计,因此可以仅具有有限的图像处理背景,因此交互式参数选择步骤允许隐式调整参数值。利用这种简单但直观的方法,可以通过最小的用户交互来实现具有高精度的细分的分段结果。该策略在三种神经母细胞瘤细胞系的手工分段数据集上验证。

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