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A Clinical Measuring Platform for Building the Bridge Across the Quantification of Pathological N-Cells in Medical Imaging for Studies of Disease

机译:用于在医学成像中横跨病理N细胞的桥梁构建桥梁的临床测量平台,以进行疾病研究

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In this paper, a clinical measuring platform for quantifying nucleus-cells (MPQ-N-cells) at combining a novel color region-based segmentation strategy is proposed to accelerate the discovery of diseases diagnostically in medical imaging. In the approach, average values of colors in an image are employed as similarity criteria to assign image voxels to regions using the minimum distance classifier in the color region growing process. Then, the binary image transformation and graphic contour line procedure are performed, followed by the operation of region area calculation to obtain the actual numbers of voxels within the segmented patterns of the N-cells quantitatively. The proposed approach of MPQ-N-cells is implemented on the heterogeneous medical image datasets related to Parkinson disease, oculopharyngeal muscular dystrophy (one type of protein conformational diseases) and glioblastoma cancer. Implementation results reveal that the proposed MPQ-N-cells approach is capable of quantifying a variety of pathological N-cells clinically with improved data visualization in heterogeneous datasets. This study has the potential to lead to more successful measurement of cell diagnostically and further to track changes of cell in medical imaging for a longitudinal study on supporting the studies of disease.
机译:在本文中,提出了一种用于定量基于颜色区域的分割策略的核细胞(MPQ-N细胞)的临床测量平台,以在医学成像中诊断出现疾病的发现。在该方法中,图像中的颜色的平均值被用作使用颜色区域生长过程中的最小距离分类器将图像体素分配给区域的相似标准。然后,执行二进制图像变换和图形轮廓线过程,然后进行区域区域计算的操作,以定量地获得n细胞的分段图案内的体素的实际数量。 MPQ-N细胞的提出方法是在与帕金森病,Oculopharyneg肌营养不良(一种蛋白质构象疾病)和胶质母细胞瘤癌相关的异质医学图像数据集上。实施结果表明,所提出的MPQ-N细胞方法能够在临床上临床上量化各种病理N细胞,并在异构数据集中改善数据可视化。本研究有可能导致诊断上的细胞更成功地测量细胞,并进一步追踪医学成像中细胞的变化,以便纵向研究支持疾病研究。

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