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Adaptive symptom reporting for mobile patient-reported disability assessment

机译:适应性症状报告移动患者报告的残疾评估

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Mobile symptom reporting apps can conveniently gather health-related information at low cost from day to day, fundamentally altering the relationship between patients, health data, and care providers. However, current mobile systems face a difficult trade-off between the quality of the information they collect and the burden placed on patients. In this paper, we propose an algorithm for adaptive system reporting designed for mobile platforms. This algorithm uses personalization, domain-specific knowledge, and Bayesian reasoning to reduce the number of questions required for accurate disability assessment, substantially decreasing demands placed on the patient. Following development of the algorithm, we validate it retrospectively using responses to the 12-item multiple sclerosis walking scale collected from 31 subjects with multiple sclerosis. Trade-offs between accuracy and response quantity are explored in detail. In this dataset, a 42% reduction in the median number of patient prompts was achieved without causing a single clinically relevant estimation error. A 75% reduction was associated with 4.45% clinically relevant estimation error. Given these promising results, future work will focus on prospective validation in multiple sclerosis and other clinical populations.
机译:移动症状报告应用程序可以方便地收集与日常生活的低成本收集与健康相关信息,从根本上改变患者,健康数据和护理提供者之间的关系。然而,当前的移动系统在他们收集的信息的质量和放置在患者的负担之间面临艰难的权衡。在本文中,我们提出了一种为移动平台设计的自适应系统报告算法。该算法使用个性化,具体的知识和贝叶斯推理来减少准确残疾评估所需的问题数量,显着降低患者的需求。在算法开发后,我们回顾性地使用从31项受到多发性硬化症的31项受试者收集的12项多发性硬化行走量表的响应来验证。详细探讨了准确性和响应数量之间的权衡。在该数据集中,达到了42%的患者提示数减少,而不会导致单一的临床相关估计误差。减少75%与临床相关估计误差4.45%有关。鉴于这些有希望的结果,未来的工作将重点关注多发性硬化和其他临床群体的前瞻性验证。

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