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Postpartum depression prediction through pregnancy data analysis for emotion-aware smart systems updates

机译:通过怀孕数据分析进行运动后抑郁症预测,用于情感感知智能系统更新

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摘要

Emotion-aware computing represents an evolution in machine learning enabling systems and devices process to interpret emotional data to recognize human behavior changes. As emotion-aware smart systems evolve, there is an enormous potential for increasing the use of specialized devices that can anticipate life-threatening conditions facilitating an early response model for health complications. At the same time, applications developed for diagnostic and therapy services can support conditions recognition (as depression, for instance). Hence, this paper proposes an improved algorithm for emotion-aware smart systems, capable for predicting the risk of postpartum depression in women suffering from hypertensive disorders during pregnancy through biomedical and sociodemographic data analysis. Results show that ensemble classifiers represent a leading solution concerning predicting psychological disorders related to pregnancy. Merging novel technologies based on IoT, cloud computing, and big data analytics represent a considerable advance in monitoring complex diseases for emotion aware computing, such as postpartum depression.
机译:情感感知的计算代表了机器学习的演变,使能系统和设备流程来解释情绪数据以识别人类行为的变化。随着情感感知的智能系统的发展,增加了可能预测威胁危及生命的情况的专业设备的使用可能性巨大潜力。与此同时,为诊断和治疗服务开发的应用程序可以支持条件识别(例如抑郁症)。因此,本文提出了一种改进的情感感知智能系统算法,能够通过生物医学和社会碘化数据分析预测患有高血压疾病患者患有高血压疾病的女性抑郁症的风险。结果表明,集合分类代表了有关预测与妊娠有关的心理障碍的领先解决方案。合并基于物联网,云计算和大数据分析的新型技术代表了监测情感意识计算的复杂疾病的相当大的进步,例如产后抑郁症。

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