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Automatic generation and recommendation of recipes based on outlier analysis

机译:基于异常分析的食谱自动生成和推荐

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Research results on medicine and health show that people nowadays tend to have some common diseases because of abnormal eating habits, irregular lifestyles, fast-food culture, etc. Diabetes and high blood pressure are just two examples. This study is based on an ontology-based dietary management system established by our group earlier. The main contribution of this paper is to propose a method for synthesizing new recipes based on existing ones, and recommending proper recipes based on machine learning. The new recipes are combinations of several existing ones. They are recommended to the user only if necessary nutritions are properly contained in the recipe. Outlier analysis is used to judge if a recipe is good or not. Some primary experiments are conducted to show the usefulness of the proposed method.
机译:医学与健康的研究结果表明,由于异常的饮食习惯,不规则的生活方式,快餐培养等,人们往往具有一些常见的疾病。糖尿病和高血压只是两个实例。本研究基于本集团于前面建立的基于本体的饮食管理体系。本文的主要贡献是提出一种基于现有食谱的方法,并根据机器学习推荐合适的食谱。新食谱是几个现有的组合。只有在配方中妥善包含必要的营养时,才会向用户推荐它们。异常分析用于判断配方是否好。进行了一些主要实验以显示所提出的方法的有用性。

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