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Sensor-Based Change Detection for Timely Solicitation of User Engagement

机译:基于传感器的变更检测,可及时征求用户参与度

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摘要

The accurate detection of changes has the potential to form a fundamental component of systems which autonomously solicit user interaction based on transitions within an input stream, for example, electrocardiogram data or accelerometry obtained from a mobile device. This solicited interaction may be utilized for diverse scenarios such as responding to changes in a patient's vital signs within a medical domain or requesting user activity labels for generating real-world labelled datasets. Within this paper, we extend our previous work on the Multivariate Online Change detection Algorithm subsequently exploring the utility of incorporating the Benjamini Hochberg method of correcting for multiple comparisons. Furthermore, we evaluate our approach against similarly light-weight Multivariate Exponentially Weighted Moving Average and Cumulative Sum based techniques. Results are presented based on manually labelled change points in accelerometry data captured using 10 participants. Each participant performed nine distinct activities for a total period of 35 minutes. The results subsequently demonstrate the practical potential of our approach from both accuracy and computational perspectives.
机译:准确检测变化有可能形成系统的基本组件,这些系统会根据输入流(例如从移动设备获得的心电图数据或加速度计)内的转换自主地请求用户交互。所请求的交互作用可用于多种情况,例如响应医学领域内患者生命体征的变化或请求用户活动标签以生成现实世界中标记的数据集。在本文中,我们扩展了先前关于多元在线变化检测算法的工作,随后探索了结合Benjamini Hochberg方法进行多重比较校正的实用性。此外,我们针对类似的轻量级多元指数加权移动平均值和基于累积和的技术评估了我们的方法。基于使用10位参与者捕获的加速度计数据中的手动标记的更改点显示结果。每个参与者进行了九项不同的活动,总计35分钟。结果随后从准确性和计算角度证明了我们方法的实际潜力。

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