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首页> 外文期刊>International Journal of Electrical and Computer Engineering >Bleeding recognition technique in wireless capsule endoscopy images using fuzzy logic and principal component analysis
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Bleeding recognition technique in wireless capsule endoscopy images using fuzzy logic and principal component analysis

机译:使用模糊逻辑和主成分分析的无线胶囊内窥镜图像中的出血识别技术

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Wireless capsule endoscopy is the most innovative technology to perceive the entire gastrointestinal (GI) tract in recent times. It can diagnose inner diseases like bleeding, ulcer, tumor, Crohn's disease, and polyps. in a discretion way. It creates immense pressure and onus for clinicians to perceive a huge number of image frames, which is time-consuming and makes human oversight errors. Therefore a computer-automated system has been introduced for bleeding detection. A unique fuzzy logic technique is proposed to extract the specified bleeding and non-bleeding information from the image data. A particular quadratic support vector machine (QSVM) classifier is employed to classify the obtained statistical features from the bleeding and non-bleeding images incorporating principal component analysis (PCA). After extensive experiments on clinical data, 98% sensitivity, 98.4% accuracy, 98% specificity, 93% precision, 95.4% F1-score, and 99% negative predicted value have been achieved, which outperforms some of the states of art methods in this regard. It is optimistic that the proposed methodology would significantly contribute to bleeding detection techniques and diminish the additional onus of the physicians.
机译:无线胶囊内窥镜是最近一次感知整个胃肠道(GI)的技术最具创新性的技术。它可以诊断出异血,溃疡,肿瘤,克罗恩病和息肉等内部疾病。以自由裁量权。它为临床医生创造了巨大的压力和责任,以感知大量的图像框架,这是耗时和使人类监督误差的影响。因此,已经引入了一种计算机自动化系统以进行出血检测。提出了一种独特的模糊逻辑技术,用于从图像数据中提取指定的出血和非出血信息。采用特定的二次支持向量机(QSVM)分类器来分类从包含主成分分析(PCA)的出血和非出血图像中获得的统计特征。在临床数据的大量实验后,敏感度为98%,精度为98.4%,特异性98%,精度为93%,F1分数95.4%,达到99%的负面预测值,这占据了一些艺术方法的态度看待。这态度乐观的是,所提出的方法会显着促进出血检测技术,并减少医生的额外的额外。

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