PPG prediction methodology by analyzing a simple lunch using GH-Method:math-physical medicine

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Abstract

This paper discusses both predicted and measured postprandial plasma glucose (PPG) results from a simple lunch of one small bag of Quaker oatmeal: 18 grams carbs and 0 grams of sugar using the GH-Method: math-physical medicine (MPM). He developed MPM by applying mathematics, physics, engineering modeling, and computer science (big data analytics and AI). He believes in “prediction” and has developed five models, including metabolism index, weight, fasting plasma glucose (FPG), postprandial plasma glucose (PPG), and hemoglobin A1C. All prediction models have reached to 95% to 99% accuracy. His focus is on preventive medicine, especially on diabetes control via lifestyle management.
PPG预测方法通过分析一个简单的午餐使用gh -方法:数学物理医学
本文采用数学-物理医学(MPM)方法,讨论了预测和测量的餐后血浆葡萄糖(PPG)结果,这些结果来自于一份简单的午餐:一小袋桂格燕麦片:18克碳水化合物和0克糖。他通过应用数学、物理、工程建模和计算机科学(大数据分析和人工智能)开发了MPM。他相信“预测”,开发了代谢指数、体重、空腹血糖(FPG)、餐后血糖(PPG)、血红蛋白A1C等5个模型。所有预测模型的准确率均达到95% ~ 99%。他的研究重点是预防医学,特别是通过生活方式管理控制糖尿病。
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