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Automatic tracking of neural stem cells in sequential digital images

机译:自动跟踪连续数字图像中的神经干细胞

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摘要

Neural stem cells are the cells that give rise to the main cell types of the nervous system. Due to their varying size and shape, and random movement, the tracking of these cells in suspension in video sequences is challenging. This paper develops an automatic tracking system for neural stem cells. The system first detects and localizes cells in the image sequence, followed by a feature extraction step for the subsequent cell tracking. Then, the system tracks inactive cells using an improved mean shift algorithm, divisive cells through a context-based technique, and active cells by means of dynamic local prediction (DLP) and gray prediction (GP) algorithms. Experimental results show that the proposed system not only improves the accuracy of fast moving tracking, but also constructs accurately the trajectories of the cell movement and reduces the iterations during the center searching. (C) 2015 Nalecz Institute of Biocybemetics and Biomedical Engineering. Published by Elsevier Sp. z o.o. All rights reserved.
机译:神经干细胞是引起神经系统主要细胞类型的细胞。由于它们大小和形状的变化以及随机运动,在视频序列中以悬浮方式跟踪这些细胞是一项挑战。本文开发了神经干细胞自动跟踪系统。该系统首先检测并定位图像序列中的细胞,然后进行特征提取步骤以进行后续的细胞跟踪。然后,系统使用改进的均值平移算法跟踪非活动单元,通过基于上下文的技术对分裂单元进行跟踪,并通过动态局部预测(DLP)和灰色预测(GP)算法跟踪活动单元。实验结果表明,该系统不仅提高了快速移动跟踪的精度,而且能够准确地构造出细胞运动的轨迹,并减少了中心搜索过程中的迭代次数。 (C)2015 Nalecz生物仿制药和生物医学工程研究所。由Elsevier Sp。发行。动物园。版权所有。

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