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Identification of biphasic property in female menstrual cycle from oral, skin and core body temperatures

机译:从口服,皮肤和核心体温确定女性月经周期的双相性

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Biphasic property in female body temperature during menstrual cycle is estimated by a discrete Hidden Markov Model (HMM)-based approach. Estimation procedure includes three steps - preprocessing, HMM-based main processing and postprocessing. The HMM is supposed to have two hidden phases to describe the biphasic property in body temperature during a menstrual cycle. Three kinds of different body temperature data were collected daily from four female volunteers over six months. Skin and core body temperatures were measured at intervals of ten and four minutes respectively and automatically by two separated wearable devices during sleep. Oral basal body temperature was measured in the morning right after wakeup. Estimation results of biphasic property from different body temperatures were evaluated by quantifying the alignment between estimated phase transitions and volunteers' menstruation records. Results showed that the estimation performance, in terms of sensitivity and positive predictability, varies with different kind of body temperature. Among 21 menstrual cycles in four participants during six months, both overall sensitivity and positive predictability of estimation by oral basal body temperature reach the highest 95.2%; those of skin body temperature have the lowest 81.0% and 77.3%, respectively; while those of core body temperature are 90.5% and 82.6%, respectively, straddling between oral and skin body temperatures.
机译:通过基于离散隐马尔可夫模型(HMM)的方法估算月经周期女性体温的双相性。估计过程包括三个步骤-预处理,基于HMM的主处理和后处理。 HMM应该有两个隐藏的阶段来描述月经周期中体温的双相性。在六个月内,每天从四名女性志愿者那里收集三种不同的体温数据。分别在十分钟和四分钟的间隔内测量皮肤和核心体温,并在睡眠期间通过两个独立的可穿戴设备自动测量皮肤和核心体温。早晨醒来后立即测量口腔的基础体温。通过量化估计的相变与志愿者月经记录之间的一致性,评估了来自不同体温的双相性估计结果。结果表明,在敏感性和积极可预测性方面,估计性能会随不同体温而变化。在六个月内有四名参与者的21个月经周期中,通过口服基础体温估算的总体敏感性和阳性可预测性均达到最高,为95.2%。皮肤体温最低的分别是最低的81.0%和77.3%;而核心体温分别介于口腔和皮肤体温之间,分别为90.5%和82.6%。

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