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Augmenting group performance in target-face recognition via collaborative brain-computer interfaces for surveillance applications

机译:通过用于监视应用程序的协作式脑机接口增强目标面部识别中的组性能

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摘要

© 2017 IEEE. This paper presents a hybrid collaborative brain-computer interface (cBCI) to improve group-based recognition of target faces in crowded scenes recorded from surveillance cameras. The cBCI uses a combination of neural features extracted from EEG and response times to estimate the decision confidence of the users. Group decisions are then obtained by weighing individual responses according to these confidence estimates. Results obtained with 10 participants indicate that the proposed cBCI improves decision errors by up to 7% over traditional group decisions based on majority. Moreover, the confidence estimates obtained by the cBCI are more accurate and robust than the confidence reported by the participants after each decision. These results show that cBCIs can be an effective means of human augmentation in realistic scenarios.
机译:©2017 IEEE。本文提出了一种混合协作式脑机接口(cBCI),以改进基于人群的对从监视摄像机记录的拥挤场景中的目标面部的识别。 cBCI使用从脑电图提取的神经特征和响应时间的组合来估计用户的决策置信度。然后,根据这些置信度估计值对各个响应进行权重,从而得出小组决策。由10名参与者获得的结果表明,与基于多数的传统群体决策相比,拟议的cBCI可以将决策错误提高多达7%。此外,cBCI获得的置信度估计比参与者在每个决定后报告的置信度更准确和可靠。这些结果表明,在现实情况下,cBCIs可以成为人类扩增的有效手段。

著录项

  • 作者

    Valeriani D; Cinel C; Poli R;

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  • 年度 2017
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  • 原文格式 PDF
  • 正文语种 en
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