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Thinking eHealth: A Mathematical Background of an Individual Health Status Monitoring System to Empower Young People to Manage Their Health

机译:思维电子健康:个人健康状况监测系统的数学背景,使年轻人能够管理自己的健康

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This paper focuses on a mathematical background of an individual health status monitoring system to empower young people to manage their health. The proposed health status monitoring system uses symptoms observed with mobile sensing devices and prior information about health and environment (provided it exists) to define individual physical and psychological status. It assumes that a health status identification process is influenced by many parameters and conditions. It has a flexible logical inference system providing positive psychological influence on young people since full acceptance of recommendations on their behavioral changes towards healthy lifestyles is reached and a correct interpretation is guaranteed. The model and algorithms of the individual health status monitoring system are developed based on the composition inference rule in Zadeh's fuzzy logic. The model allows us to include in the algorithms of logical inference the possibility of masking (by means of a certain health condition) the symptoms of other health situations as well as prior information (if it exists) regarding health and environment. The algorithms are generated by optimizing the truth of a single natural "axiom ", which connects an individual health status (represented by classes of health situations) with symptoms and matrices of influence of health situations on symptoms and masking of symptoms. The new algorithms are fairly different from traditional algorithms, in which the result is produced in the course of numerous single processing rules. Therefore, the use of a composition inference rule makes a health status identification process faster and the obtained results more precise and efficient comparing to traditional algorithms.
机译:本文着重于个人健康状况监测系统的数学背景,以赋予年轻人管理其健康的能力。拟议的健康状况监视系统使用移动感应设备观察到的症状以及有关健康和环境的先前信息(如果存在)来定义个人的身体和心理状况。假定健康状况识别过程受许多参数和条件的影响。它具有灵活的逻辑推理系统,对年轻人有积极的心理影响,因为已经完全接受了关于他们向健康生活方式的行为改变的建议,并保证了正确的解释。基于Zadeh的模糊逻辑中的成分推理规则,开发了个体健康状态监测系统的模型和算法。该模型允许我们在逻辑推理算法中包括掩盖(通过某种健康状况)其他健康状况的症状以及有关健康和环境的先前信息(如果存在)的可能性。该算法是通过优化单个自然“公理”的真值而生成的,该公理将带有症状的单个健康状况(由健康状况类别表示)与健康状况对症状和症状掩盖的影响矩阵相联系。新算法与传统算法有很大不同,在传统算法中,结果是在众多单一处理规则的过程中产生的。因此,与传统算法相比,使用成分推断规则可以使健康状况识别过程更快,并且获得的结果更加精确和有效。

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