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Towards unravelling the relationship between on-body, environmental and emotion data using sensor information fusion approach

机译:使用传感器信息融合方法来揭示人体,环境和情绪数据之间的关系

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摘要

Over the past few years, there has been a noticeable advancement in environmental models and information fusion systems taking advantage of the recent developments in sensor and mobile technologies. However, little attention has been paid so far to quantifying the relationship between environment changes and their impact on our bodies in real-life settings. In this paper, we identify a data driven approach based on direct and continuous sensor data to assess the impact of the surrounding environment and physiological changes and emotion. We aim at investigating the potential of fusing on-body physiological signals, environmental sensory data and on-line self-report emotion measures in order to achieve the following objectives: (1) model the short term impact of the ambient environment on human body, (2) predict emotions based on-body sensors and environmental data. To achieve this, we have conducted a real-world study ‘in the wild’ with on-body and mobile sensors. Data was collected from participants walking around Nottingham city centre, in order to develop analytical and predictive models. Multiple regression, after allowing for possible confounders, showed a noticeable correlation between noise exposure and heart rate. Similarly, UV and environmental noise have been shown to have a noticeable effect on changes in ElectroDermal Activity (EDA). Air pressure demonstrated the greatest contribution towards the detected changes in body temperature and motion. Also, significant correlation was found between air pressure and heart rate. Finally, decision fusion of the classification results from different modalities is performed. To the best of our knowledge this work presents the first attempt at fusing and modelling data from environmental and physiological sources collected from sensors in a real-world setting.
机译:在过去的几年中,利用传感器和移动技术的最新发展,环境模型和信息融合系统有了显着进步。但是,到目前为止,很少有人关注量化环境变化及其在现实环境中对我们身体的影响之间的关系。在本文中,我们确定了一种基于直接和连续传感器数据的数据驱动方法,以评估周围环境以及生理变化和情感的影响。我们旨在研究融合人体生理信号,环境感官数据和在线自我报告情绪措施的潜力,以实现以下目标:(1)模拟周围环境对人体的短期影响, (2)根据人体感应器和环境数据预测情绪。为了实现这一目标,我们对人体和移动传感器进行了“野外”真实世界的研究。数据是从在诺丁汉市中心漫步的参与者收集的,目的是开发分析和预测模型。在考虑可能的混杂因素后,多元回归显示了噪声暴露与心率之间的显着相关性。同样,已证明紫外线和环境噪声对电皮肤活性(EDA)的变化具有显着影响。气压显示出对检测到的体温和运动变化的最大贡献。此外,发现气压和心率之间存在显着相关性。最后,对来自不同模态的分类结果进行决策融合。据我们所知,这项工作是融合真实环境中从传感器收集的环境和生理来源数据的首次尝试。

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