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Accurate extraction of the self-rotational speed for cells in an electrokinetics force field by an image matching algorithm

机译:利用图像匹配算法准确提取电动势场中细胞的自转速度

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摘要

We present an image-matching-based automated algorithm capable of accurately determining the self-rotational speed of cancer cells in an optically-induced electrokinetics-based microfluidic chip. To automatically track a specific cell in a video featuring more than one cell, a background subtraction technique was used. To determine the rotational speeds of cells, a reference frame was automatically selected and curve fitting was performed to improve the stability and accuracy. Results show that the algorithm was able to accurately calculate the self-rotational speeds of cells up to ∼150 rpm. In addition, the algorithm could be used to determine the motion trajectories of the cells. Potential applications for the developed algorithm include the differentiation of cell morphology and characterization of cell electrical properties.
机译:我们提出了一种基于图像匹配的自动算法,该算法能够准确地确定光诱导的基于动力学的微流控芯片中癌细胞的自转速度。为了自动跟踪视频中具有多个单元格的特定单元格,使用了背景减法技术。为了确定细胞的旋转速度,自动选择参考系并进行曲线拟合以提高稳定性和准确性。结果表明,该算法能够准确地计算出高达150 rpm的细胞自转速度。另外,该算法可以用于确定细胞的运动轨迹。所开发算法的潜在应用包括细胞形态的分化和细胞电特性的表征。

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