A Smart Prevention Management in Gestational Diabetes Mellitus

Nattacha Palawat, S. Kiattisin, T. Mayakul
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Abstract

Gestational Diabetes Mellitus (GDM) is a high blood glucose level during pregnancy. Patients have frequent follow-ups throughout pregnancy. The concept of health technology enables the accessibility and efficiency of therapy in terms of time-saving and promotes adherence, especially during Covid-19. The study conducts the predictive of GDM risk using a data classification model, which has high accuracy (more than 90%). The model is used for improving the patient's self-awareness through the color notification feature. In addition, we design the GDM's system, including the electronic health information exchange, to ensure interoperability, improve service accessibility and increase patient participation. Finally, this prototype is evaluated by medical staff using the Technology Acceptance Model. The results are satisfactory and accepted because the data technology and standard are incorporated to deliver high performance. Besides, this system is expected to reduce workload and provide convenience.
妊娠期糖尿病的智能预防管理
妊娠期糖尿病(GDM)是指妊娠期间的高血糖。患者在怀孕期间经常随访。卫生技术的概念在节省时间方面提高了治疗的可及性和效率,并促进了坚持治疗,特别是在Covid-19期间。本研究采用数据分类模型对GDM风险进行预测,准确率较高(90%以上)。该模型通过颜色通知特征来提高患者的自我意识。此外,我们设计了GDM的系统,包括电子健康信息交换,以确保互操作性,改善服务的可及性和增加患者的参与。最后,利用技术接受模型对该原型进行医务人员评价。由于将数据技术和标准结合在一起以提供高性能,因此结果令人满意和接受。此外,该系统有望减少工作量,提供方便。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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