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Automatic multicell identification using a compact lensless single and double random phase encoding system

机译:使用紧凑型无透镜单和双随机相位编码系统自动多电池识别

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摘要

We investigate the use of compact, lensless, single random phase encoding (SRPE) and double random phase encoding (DRPE) systems for automatic cell identification when multiple cells, either of the same or mixed classes, are in the field of view. A microscope glass slide containing the sample is inputted into the single or double random phase encoding system, which is then illuminated by a coherent or partially coherent light source generating a unique opto-biological signature (OBS) that is captured by an image sensor. Statistical features such as mean, standard deviation, skewness, kurtosis, entropy, and Pearson's correlation coefficient are extracted from the OBSs and used for cell identification with the random forest classifier. With the exception of the correlation coefficient, all features were extracted in both the spatial and frequency domains. Experiments are performed with single random phase encoding and double random phase encoding, and system analysis is presented to show the robustness and classification accuracy of the random phase encoding cell identification systems. The proposed systems are compact, as they are lensless and do not have spatial frequency bandwidth limitations due to the numerical aperture of a microscope objective lens. We demonstrate that cell identification is possible using both the SRPE and DRPE systems. While DRPE systems have been extensively used for image encryption, to the best of our knowledge, this is the first report on using DRPE for automated cell identification. (C) 2018 Optical Society of America
机译:我们调查使用紧凑,无透肌,单个随机相位编码(SRPE)和双随机相位编码(DRPE)系统,用于当多个单元格(相同或混合类中的多个单元)处于视野时。含有样品的显微镜玻璃载玻片被输入到单个或双随机相位编码系统中,然后通过相干或部分相干的光源照射,产生由图像传感器捕获的独特的光学生物签名(OBS)。统计特征如平均值,标准偏差,偏斜,血管症,熵和Pearson的相关系数被从OBS提取,并用于随机林分类器的细胞识别。除相关系数外,所有特征都在空间和频域中提取。通过单个随机相位编码和双随机相位编码进行实验,并提出了系统分析以示出随机相位编码小区识别系统的鲁棒性和分类精度。由于显微镜物镜的数值孔径,所提出的系统是紧凑的,因为它们是无透镜的并且没有空间频率带宽限制。我们证明使用SRPE和DRPE系统可以进行细胞识别。虽然DRPE系统已广泛用于图像加密,但据我们所知,这是第一个关于使用DRPE进行自动细胞识别的报告。 (c)2018年光学学会

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  • 来源
    《Applied optics》 |2018年第7期|共7页
  • 作者单位

    Univ Connecticut Elect &

    Comp Engn Dept 371 Fairfield Rd Unit 4157 Storrs CT 06269 USA;

    Univ Connecticut Elect &

    Comp Engn Dept 371 Fairfield Rd Unit 4157 Storrs CT 06269 USA;

    Univ Connecticut Elect &

    Comp Engn Dept 371 Fairfield Rd Unit 4157 Storrs CT 06269 USA;

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  • 正文语种 eng
  • 中图分类 应用;
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