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EEG Character Identification using Stimulus Sequences Designed to Maximize Mimimal Hamming Distance.

机译:EEG字符识别使用刺激序列来最大化Mimimal Hamming距离。

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In this study, we have improved upon the P300 speller Brain-Computer Interface paradigm by introducing a new character encoding method. Our concept in detection of the intended character is not based on a classification of target and nontarget responses, but based on an identifaction of the character which maximize the difference between P300 amplitudes in target and nontarget stimuli. Each bit included in the code corresponds to flashing character, '1', and non-flashing, '0'. Here, the codes were constructed in order to maximize the minimum hamming distance between the characters. Electroencephalography was used to identify the characters using a waveform calculated by adding and subtracting the response of the target and non-target stimulus according the codes respectively. This stimulus presentation method was applied to a 3×3 character matrix, and the results were compared with that of a conventional P300 speller of the same size. Our method reduced the time until the correct character was obtained by 24%
机译:在这项研究中,我们已经在P300的拼写脑 - 机接口模式通过引入新的字符编码方法改进。我们在检测预期的字符的概念不是基于目标和非目标响应的分类,但在此基础上最大化目标和非靶刺激P300的振幅差的字符的identifaction。包括在每个位中的代码对应于闪烁字符,“1”,和非闪烁,“0”。在此,码以便最大化人物之间的最小汉明距离被构建。脑电图用于鉴定使用由加法和减法分别根据码的目标和非目标刺激的响应计算出的波形的字符。这种刺激呈现方法应用于3×3矩阵的字符,并且将结果与相同尺寸的传统P300拼写的进行了比较。我们的方法的时间减少,直到通过24%获得正确的字符

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