Optimal fuzzy deep daily nutrients requirements representation: Application to optimal Morocco diet problem

K. E. El Moutaouakil, C. Saliha, B. Hicham
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引用次数: 0

Abstract

Solving the optimal diet problem necessarily involves estimating the daily requirements in positive and negative nutrients. Most approaches proposed in the literature are based on standard nominal estimates, which may cause shortages in some nutrients and overdoses in others. The approach proposed in this paper consists in personalizing these needs based on an intelligent system. In the beginning, we present the needs derived from the recommendations of experts in the field of nutrition in trapezoidal numbers. Based on this model, we generate a vast database. The latter is used to educate a deep learning neural network, the architecture of which we optimize by the fuzzy genetic algorithm method in the way of adopting a customized regulation term. Our system estimates nutrient requirements based only on gender and age. These estimations are integrated into a mathematical model obtained in our previous work. Then we again use the fuzzy genetic algorithm to draw up personalized diets. The proposed system has demonstrated a very high capacity to predict the needs of different individuals and has allowed the drawing up of very high-quality diets.
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最优模糊深层日营养需要量表示:应用于最优摩洛哥饮食问题
要解决最佳饮食问题,就必须估计每日所需的积极和消极营养物质。文献中提出的大多数方法都是基于标准的名义估计,这可能导致某些营养素的短缺和其他营养素的过量。本文提出的方法是基于智能系统对这些需求进行个性化处理。在开始,我们提出的需求,从专家的建议,在营养领域的梯形数字。基于这个模型,我们生成了一个庞大的数据库。后者用于训练深度学习神经网络,采用自定义调节项的方式,采用模糊遗传算法对其结构进行优化。我们的系统仅根据性别和年龄估算营养需求。这些估计被整合到我们之前的工作中得到的数学模型中。然后我们再次使用模糊遗传算法来制定个性化的饮食。所提出的系统已经证明了预测不同个体需求的高能力,并允许制定非常高质量的饮食。
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来源期刊
Mathematical Modeling and Computing
Mathematical Modeling and Computing Computer Science-Computational Theory and Mathematics
CiteScore
1.60
自引率
0.00%
发文量
54
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