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韩国本土黑山羊分娩检测系统的开发。

Development of a Parturition Detection System for Korean Native Black Goats.

作者信息

Kim Heungsu, Kim Hyunse, Kim Woo H, Min Wongi, Kim Geonwoo, Chang Honghee

机构信息

Division of Animal Science, Gyeongsang National University, Gyeongsangnam-do, Jinju 52828, Republic of Korea.

College of Veterinary Medicine, Gyeongsang National University, Gyeongsangnam-do, Jinju 52828, Republic of Korea.

出版信息

Animals (Basel). 2024 Feb 16;14(4):634. doi: 10.3390/ani14040634.

Abstract

Korean Native Black Goats deliver mainly during the cold season. However, in winter, there is a high risk of stunted growth and mortality for their newborns. Therefore, we conducted this study to develop a KNBG parturition detection system that detects and provides managers with early notification of the signs of parturition. The KNBG parturition detection system consists of triaxial accelerometers, gateways, a server, and parturition detection alarm terminals. Then, two different data, the labor and non-labor data, were acquired and a Decision Tree algorithm was used to classify them. After classifying the labor and non-labor states, the sum of the labor status data was multiplied by the activity count value to enhance the classification accuracy. Finally, the Labor Pain Index (LPI) was derived. Based on the LPI, the optimal processing time window was determined to be 10 min, and the threshold value for labor classification was determined to be 14 240.92. The parturition detection rate was 82.4%, with 14 out of 17 parturitions successfully detected, and the average parturition detection time was 90.6 min before the actual parturition time of the first kid. The KNBG parturition detection system is expected to reduce the risk of stunted growth and mortality due to hypothermia in KNBG kids by detecting parturition 90.6 min before the parturition of the first kid, with a success rate of 82.4%, enabling parturition nursing.

摘要

韩国本土黑山羊主要在寒冷季节分娩。然而,在冬季,其新生羔羊存在生长发育迟缓及死亡的高风险。因此,我们开展了这项研究,以开发一种韩国本土黑山羊分娩检测系统,该系统可检测分娩迹象并向管理人员提供早期通知。韩国本土黑山羊分娩检测系统由三轴加速度计、网关、服务器和分娩检测报警终端组成。然后,采集了两种不同的数据,即分娩和未分娩数据,并使用决策树算法对它们进行分类。在对分娩和未分娩状态进行分类后,将分娩状态数据的总和乘以活动计数值以提高分类准确率。最后,得出分娩疼痛指数(LPI)。基于LPI,确定最佳处理时间窗口为10分钟,分娩分类的阈值为14240.92。分娩检测率为82.4%,17次分娩中有14次被成功检测到,首次羔羊实际分娩前的平均分娩检测时间为90.6分钟。预计韩国本土黑山羊分娩检测系统通过在首次羔羊分娩前90.6分钟检测到分娩,成功率为82.4%,从而能够进行分娩护理,降低韩国本土黑山羊羔羊因体温过低导致生长发育迟缓和死亡的风险。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/330e/10885883/f0f747fb9877/animals-14-00634-g001.jpg

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