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Real time emotion detection within a wireless sensor network and its impact on power consumption

机译:无线传感器网络中的实时情绪检测及其对功耗的影响

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Recent advances in portable and wearable electroencephalograph (EEG) devices has raised the need to detect emotions in real time for applications such as wellbeing monitoring, gaming and social networking. A number of researchers have reported real time emotion detection systems implemented on a computer. This study advances these efforts by implementing a real time emotion detection system on a wirelesses sensor node with minimal hardware resources (256 kb of flash memory and 16 MHz processing speed) suitable for integration in a wearable wireless sensor node. The experimental results demonstrate that detecting emotions within the sensor node using suitable algorithms prolong the battery life by 5 days (38%) and by 39 days at an emotion detection rate of 2 and 60 s, respectively, as compared with transmitting the raw EEG data wirelessly. This also reduces the length of packets transmitted which directly minimises the packet error rate and the power that would be consumed because of retransmission of these erroneous packets.
机译:便携式和可穿戴式脑电图(EEG)设备的最新进展提出了对实时监测情感的需求,以用于诸如健康监测,游戏和社交网络之类的应用。许多研究人员报告了在计算机上实现的实时情绪检测系统。这项研究通过在无线传感器节点上以适合集成到可穿戴无线传感器节点中的最少硬件资源(256 kb闪存和16 MHz处理速度)实现实时情感检测系统来推进这些工作。实验结果表明,与传输原始EEG数据相比,使用合适的算法在传感器节点内检测情感可以将电池寿命分别以2和60 s的情感检测速率分别延长5天(38%)和39天。无线地。这也减少了发送的分组的长度,这直接最小化了分组错误率以及由于这些错误分组的重发而将消耗的功率。

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