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首页> 外文期刊>BMC Public Health >Tailoring motivational health messages for smoking cessation using an mHealth recommender system integrated with an electronic health record: a study protocol
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Tailoring motivational health messages for smoking cessation using an mHealth recommender system integrated with an electronic health record: a study protocol

机译:使用集成了电子病历的mHealth推荐系统为戒烟量身定做激励性健康信息:研究方案

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Smoking is one of the most avoidable health risk factors, and yet the quitting success rates are low. The usage of tailored health messages to support quitting has been proved to increase quitting success rates. Technology can provide convenient means to deliver tailored health messages. Health recommender systems are information-filtering algorithms that can choose the most relevant health-related items—for instance, motivational messages aimed at smoking cessation—for each user based on his or her profile. The goals of this study are to analyze the perceived quality of an mHealth recommender system aimed at smoking cessation, and to assess the level of engagement with the messages delivered to users via this medium. Patients participating in a smoking cessation program will be provided with a mobile app to receive tailored motivational health messages selected by a health recommender system, based on their profile retrieved from an electronic health record as the initial knowledge source. Patients’ feedback on the messages and their interactions with the app will be analyzed and evaluated following an observational prospective methodology to a) assess the perceived quality of the mobile-based health recommender system and the messages, using the precision and time-to-read metrics and an 18-item questionnaire delivered to all patients who complete the program, and b) measure patient engagement with the mobile-based health recommender system using aggregated data analytic metrics like session frequency and, to determine the individual-level engagement, the rate of read messages for each user. This paper details the implementation and evaluation protocol that will be followed. This study will explore whether a health recommender system algorithm integrated with an electronic health record can predict which tailored motivational health messages patients would prefer and consider to be of a good quality, encouraging them to engage with the system. The outcomes of this study will help future researchers design better tailored motivational message-sending recommender systems for smoking cessation to increase patient engagement, reduce attrition, and, as a result, increase the rates of smoking cessation. The trial was registered at clinicaltrials.org under the ClinicalTrials.gov identifier NCT03206619 on July 2nd 2017. Retrospectively registered.
机译:吸烟是最可避免的健康风险因素之一,但戒烟成功率很低。事实证明,使用量身定制的健康信息来支持戒烟可以提高戒烟成功率。技术可以提供方便的方式来传递量身定制的健康信息。健康推荐系统是一种信息过滤算法,可以根据每个用户的个人资料为每个用户选择最相关的与健康相关的项目,例如,旨在戒烟的激励信息。这项研究的目的是分析旨在戒烟的mHealth推荐系统的感知质量,并评估通过这种媒介传递给用户的信息的参与程度。参加戒烟计划的患者将获得一个移动应用程序,以接收健康推荐系统根据从电子健康记录中检索出的个人资料作为初始知识源而定制的量身定制的动机健康信息。将按照观察性前瞻性方法分析和评估患者对消息的反馈及其与应用程序的交互作用,以a)使用精度和读取时间评估基于移动的健康推荐系统和消息的感知质量指标和一份18项问卷调查表,交付给完成该计划的所有患者,b)使用汇总数据分析指标(例如会话频率)来测量基于移动健康推荐系统的患者参与度,并确定个人参与度每个用户的已读邮件数。本文详细介绍了将要遵循的实施和评估协议。这项研究将探索与电子健康记录集成的健康推荐系统算法是否可以预测患者偏爱哪些定制的动机健康消息,并认为这些消息质量良好,从而鼓励他们参与该系统。这项研究的结果将有助于未来的研究人员为戒烟设计更好的量身定制的激励性消息发送推荐系统,以增加患者的参与度,减少损耗,并因此提高戒烟率。该试验于2017年7月2日在Clinicaltrials.org上以ClinicalTrials.gov标识符NCT03206619注册。

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