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首页> 外文期刊>Frontiers in Neuroscience >Design and Evaluation of Fusion Approach for Combining Brain and Gaze Inputs for Target Selection
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Design and Evaluation of Fusion Approach for Combining Brain and Gaze Inputs for Target Selection

机译:结合脑与凝视输入进行目标选择的融合方法设计与评估

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Gaze-based interfaces and Brain-Computer Interfaces (BCIs) allow for hands-free human–computer interaction. In this paper, we investigate the combination of gaze and BCIs. We propose a novel selection technique for 2D target acquisition based on input fusion. This new approach combines the probabilistic models for each input, in order to better estimate the intent of the user. We evaluated its performance against the existing gaze and brain–computer interaction techniques. Twelve participants took part in our study, in which they had to search and select 2D targets with each of the evaluated techniques. Our fusion-based hybrid interaction technique was found to be more reliable than the previous gaze and BCI hybrid interaction techniques for 10 participants over 12, while being 29% faster on average. However, similarly to what has been observed in hybrid gaze-and-speech interaction, gaze-only interaction technique still provides the best performance. Our results should encourage the use of input fusion, as opposed to sequential interaction, in order to design better hybrid interfaces.
机译:基于注视的界面和脑机接口(BCI)允许免提的人机交互。在本文中,我们研究了凝视和BCI的组合。我们提出了一种基于输入融合的2D目标获取的新型选择技术。这种新方法结合了每个输入的概率模型,以便更好地估计用户的意图。我们根据现有的凝视和脑机交互技术评估了它的性能。 12名参与者参加了我们的研究,其中他们必须使用每种评估的技术来搜索和选择2D目标。对于12岁以上的10位参与者,我们的基于融合的混合互动技术比以前的注视和BCI混合互动技术更可靠,而平均速度提高了29%。但是,与在混合注视和语音交互中观察到的类似,仅注视交互技术仍提供最佳性能。我们的结果应该鼓励使用输入融合,而不是顺序交互,以便设计更好的混合接口。

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