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Multi-modal mobile sensing of social interactions

机译:社交互动的多模式移动感知

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摘要

The level of participation in social interactions has been shown to have an impact on various health outcomes, while it also reflects the overall wellbeing status. In health sciences the standard practice for measuring the amount of social activity relies on periodical self-reports that suffer from memory dependence, recall bias and the current mood. In this regard, the use of sensor-based detection of social interactions has the potential to overcome the limitations of self-reporting methods that have been used for decades in health related sciences. However, the current systems have mainly relied on external infrastructures, which are confined within specific location or on specialized devices typically not-available off the shelf. On the other hand, mobile phone based solutions are often limited in accuracy or in capturing social interactions that occur on small time and spatial scales. The work presented in this paper relies on widely available mobile sensing technologies, namely smart phones utilized for recognizing spatial settings between subjects and the accelerometer used for speech activity identification. We evaluate the two sensing modalities both separately and in fusion, demonstrating high accuracy in detecting social interactions on small spatio-temporal scale.
机译:事实证明,参与社会互动的程度对各种健康结果都有影响,同时也反映了总体福祉状况。在健康科学中,衡量社会活动量的标准做法依赖于定期的自我报告,这些报告会受到记忆依赖性,回忆回忆和当前情绪的困扰。在这方面,使用基于传感器的社交互动检测有可能克服自我报告方法的局限性,这些方法已在健康相关科学领域使用了数十年。但是,当前的系统主要依赖于外部基础结构,这些基础结构被限制在特定的位置或通常无法使用的专用设备上。另一方面,基于移动电话的解决方案通常在准确性或捕获在较小的时间和空间范围内发生的社交互动方面受到限制。本文提出的工作依赖于广泛可用的移动传感技术,即用于识别对象之间空间设置的智能手机和用于语音活动识别的加速度计。我们分别评估和融合评估了两种传感方式,证明了在较小的时空尺度上检测社交互动的准确性。

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