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Pattern Recognition Image Color for Premature Rupture of Membranes Diagnosis Using Euclidean Algorithm

机译:欧氏算法用于膜过早破裂的模式识别图像颜色

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Premature rupture of membranes must be detected accurately. Inaccurate diagnosis increases the risk of caesarean section and infection for both mother and fetus. At present, diagnosis for premature rupture of membranes is performed using litmus paper. Measurement is made based on changes of color on this paper. Unfortunately, the method is subjective so the diagnosis is not accurate. It is a subjective visualization method by midwives. This research proposes a system of digital detection for premature rupture of membranes using digital image processing developed with Euclidean algorithm. The algorithm has been widely used in medical services, one of which is to help diagnose related to images. Euclidean Algorithm shows much better performance on all of the two- and three-dimensional images with variant image contents. Data processing is performed by characterizing alteration in litmus paper color into the color elements of red, green, and blue. Measurement is accurate if the device can clearly differentiate concentrations of urine, vaginal discharge, and amniotic fluid based on color resemblance pattern. Results show that accuracy of litmus paper for detection of premature rupture of membranes using Euclidean algorithm is 95%.
机译:膜的过早破裂必须准确检测。诊断不正确会增加剖腹产和母婴感染的风险。目前,使用石蕊试纸进行膜过早破裂的诊断。根据纸张上的颜色变化进行测量。不幸的是,该方法是主观的,因此诊断不准确。它是助产士的主观可视化方法。本研究提出了一种使用欧几里得算法开发的数字图像处理技术来进行膜过早破裂的数字检测系统。该算法已广泛用于医疗服务,其中之一是帮助诊断与图像有关的图像。欧几里得算法在具有可变图像内容的所有二维图像和三维图像上都表现出更好的性能。通过将石蕊试纸颜色的变化特征化为红色,绿色和蓝色的颜色元素来执行数据处理。如果该设备可以根据颜色相似模式清楚地区分尿液,白带和羊水的浓度,则测量是准确的。结果表明,使用欧几里得算法对石蕊试纸检测胎膜早破的准确性为95%。

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