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RGB Pixel Analysis of Fingertip Video Image Captured From Sickle Cell Patient With Low and High Level of Hemoglobin

机译:从血红蛋白低水平和高水平的镰状细胞患者捕获的指尖视频图像的RGB像素分析

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The demand for medical image processing is ever growing, especially for medical device manufacturers, researchers, and innovators. In this article, we present the image processing of a fingertip video to investigate the relationship between image pixel information and different hemoglobin (Hb) levels. We use the smartphone camera to record the fingertip videos of different sickle cell patients. We also collect their clinical Hb records. We extract the red, green and blue (RGB) pixel of the video image and make the histogram of selected frames for each video. The averaged histogram values of those selected frames are used as an input feature matrix in the regression analysis. Linear regression as well as the partial least squares (PLS) algorithm is applied to the input feature matrix. We consider five sickle cell patients who received the blood transfusion. We analyze the thirty fingertip videos from five patients where each patient gave three videos at the same time. Fifteen fingertip videos are recorded before blood transfusion, and rest of the videos are captured after two weeks of their blood transfusion. Matlab tool is used for the data analysis and visual image presentation of the RGB image histogram values, masked RGB image, and the confusion matrix of this paper. The result generated from linear regression and the goodness of fit of PLS model shows the reliable performance of this research work.
机译:对医学图像处理的需求越来越多,特别是医疗设备制造商,研究人员和创新者。在本文中,我们介绍了指尖视频的图像处理,以研究图像像素信息与不同血红蛋白(HB)电平之间的关系。我们使用智能手机相机录制不同镰状细胞患者的指尖视频。我们还收集了他们的临床HB记录。我们提取视频图像的红色,绿色和蓝色(RGB)像素,并为每个视频制作所选帧的直方图。这些所选帧的平均直方图值用作回归分析中的输入特征矩阵。线性回归以及局部最小二乘(PLS)算法应用于输入特征矩阵。我们考虑了5名接受输血的镰状细胞患者。我们分析了来自每位患者同时给出三个视频的五个患者的三十个指数视频。十五个指尖视频在输血前记录,并且在其输血两周后捕获其余的视频。 MATLAB工具用于RGB图像直方图值的数据分析和视觉图像呈现,屏蔽RGB图像和本文的混淆矩阵。从线性回归产生的结果和PLS模型的适合度显示了该研究工作的可靠性。

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