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Awareness system for bowel motility estimation based on artificial neural network of bowel sounds

机译:基于人工神经网络的肠声音启动动力估算的认识系统

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Awareness system of bowel motility estimation based on an artificial neural network (ANN) model of bowel sounds obtained by an auscultation was devised. Twelve healthy males and 6 patients with delayed bowel motility were examined. BS signals generated during the digestive process were recorded from 3 colonic segments (ascending, descending and sigmoid colon), and then, the acoustical features (jitter and shimmer) of the individual BS segment were obtained. Only 6 features (J1,3, J3,3, S1,2, S2,1, S2,2, S3,2) highly correlated to the conventional colon transit time (CTT) were used as the features. Through k-fold cross validation, the correlation coefficient and mean average error between the CTTs and the values estimated by our algorithm were 0.89 and 10.6 hours, respectively. The devised system showed good potential for the continuous monitoring and estimating the bowel motility, instead of conventional radiography, and thus, it could be used as an awareness tool for the non-invasive measurement of bowel motility.
机译:基于人工神经网络(ANN)的肠杆菌估计感官估算的认识系统设计了一种通过听诊获得的肠声音模型。检查了12个健康的男性和6例延迟肠蠕动患者。在消化过程中产生的BS信号从3个结肠段记录(上升,下降和乙状结肠),然后获得各个BS段的声学特征(抖动和闪光灯)。只有6个功能(J 1,3 ,J 3,3 ,S 1,2 ,S 2,1款>,S 2,2,2 ,S 3,2 )与传统的结肠转运时间(CTT)高度相关,用作特征。通过k倍交叉验证,CTTS之间的相关系数和平均平均误差分别为0.89和10.6小时。设计的系统表明,连续监测和估算肠蠕动的良好潜力,而不是传统的射线照相,因此可以用作肠蠕动的非侵入性测量的意识工具。

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