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New Tools for New Research in Psychiatry: A Scalable and Customizable Platform to Empower Data Driven Smartphone Research

机译:精神病学新研究的新工具:可扩展和可定制的平台,以支持数据驱动的智能手机研究

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Background A longstanding barrier to progress in psychiatry, both in clinical settings and research trials, has been the persistent difficulty of accurately and reliably quantifying disease phenotypes. Mobile phone technology combined with data science has the potential to offer medicine a wealth of additional information on disease phenotypes, but the large majority of existing smartphone apps are not intended for use as biomedical research platforms and, as such, do not generate research-quality data. Objective Our aim is not the creation of yet another app per se but rather the establishment of a platform to collect research-quality smartphone raw sensor and usage pattern data. Our ultimate goal is to develop statistical, mathematical, and computational methodology to enable us and others to extract biomedical and clinical insights from smartphone data. Methods We report on the development and early testing of Beiwe, a research platform featuring a study portal, smartphone app, database, and data modeling and analysis tools designed and developed specifically for transparent, customizable, and reproducible biomedical research use, in particular for the study of psychiatric and neurological disorders. We also outline a proposed study using the platform for patients with schizophrenia. Results We demonstrate the passive data capabilities of the Beiwe platform and early results of its analytical capabilities. Conclusions Smartphone sensors and phone usage patterns, when coupled with appropriate statistical learning tools, are able to capture various social and behavioral manifestations of illnesses, in naturalistic settings, as lived and experienced by patients. The ubiquity of smartphones makes this type of moment-by-moment quantification of disease phenotypes highly scalable and, when integrated within a transparent research platform, presents tremendous opportunities for research, discovery, and patient health.
机译:背景技术无论是在临床环境还是研究试验中,长期以来阻碍精神病学发展的障碍一直是准确,可靠地量化疾病表型的持续困难。移动电话技术与数据科学相结合,有可能为医学提供有关疾病表型的大量附加信息,但是绝大部分现有的智能手机应用程序都不打算用作生物医学研究平台,因此不会产生研究质量数据。目标我们的目的不是创建另一个应用程序本身,而是建立一个平台来收集具有研究质量的智能手机原始传感器和使用模式数据。我们的最终目标是开发统计,数学和计算方法,以使我们和其他人能够从智能手机数据中提取生物医学和临床见解。方法我们报告Beiwe的开发和早期测试,该平台具有研究门户,智能手机应用程序,数据库以及专门为透明,可定制和可再现的生物医学研究用途而设计和开发的数据建模和分析工具,特别是针对精神和神经疾病的研究。我们还概述了使用该平台对精神分裂症患者进行的一项拟议研究。结果我们展示了Beiwe平台的被动数据功能以及其分析功能的早期结果。结论智能手机传感器和电话使用方式,再加上适当的统计学习工具,能够捕捉患者生活和经历的自然环境中疾病的各种社会和行为表现。智能手机无处不在,使得这种疾病表型的按时定量分析具有高度的可扩展性,并且当集成在透明的研究平台中时,为研究,发现和患者健康提供了巨大的机会。

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