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EmoSense: Computational Intelligence Driven Emotion Sensing via Wireless Channel Data

机译:emosense:计算智能驱动通过无线信道数据的情感感测

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Emotion is well recognized as a distinguished symbol of human beings, and it plays a crucial role in our daily lives. Existing vision-based or sensor-based solutions are either obstructive to use or rely on specialized hardware, hindering their applicability. This paper introduces EmoSense, a first-of-its-kind wireless emotion sensing system driven by computational intelligence. The basic methodology is to explore the physical expression of emotions from wireless channel response via data mining. The design and implementation of EmoSense faces two major challenges-extracting physical expression from wireless channel data and recovering emotion from the corresponding physical expression. For the former, we present a Fresnel zone-based theoretical model depicting the fingerprint of the physical expression on channel response. For the latter, we design an efficient computational intelligence driven mechanism to recognize emotion from the corresponding fingerprints. We prototyped EmoSense on the commodity WiFi infrastructure and compared it with mainstream sensor-based and vision-based approaches in the real-world scenario. The numerical study over 3360 cases confirms that EmoSense achieves a comparable performance to the vision-based and sensor-based rivals under different scenarios. EmoSense only leverages the low-cost and prevalent WiFi infrastructures and thus, constitutes a tempting solution for emotion sensing.
机译:情绪被认为是人类的杰出象征,它在我们的日常生活中发挥着至关重要的作用。现有的基于视觉或基于传感器的解决方案是使用或依赖专业硬件的阻碍,阻碍其适用性。本文介绍了由计算智能驱动的一体的无线情感传感系统的exosense。基本方法是通过数据挖掘来探索来自无线信道响应的情绪的身体表达。肌肉的设计和实现面临两种主要挑战 - 从无线信道数据中提取物理表达,并从相应的物理表达中恢复情绪。对于前者来说,我们介绍了一种基于菲涅耳区的理论模型,描绘了信道响应的物理表达的指纹。对于后者,我们设计了一种有效的计算智能驱动机制,以识别来自相应指纹的情绪。我们对商品WiFi基础设施的原型胶质介绍,并将其与基于主流的传感器和基于视觉的方法进行了比较。在3360个案例中的数值研究证实,eMOSESE在不同场景下对基于视觉的基于传感器的竞争对手实现了相当的性能。 eMOSENSE只利用低成本和普遍的WiFi基础设施,从而构成了情感传感的诱惑解决方案。

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