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Improved detection of amnestic MCI by means of discriminative vector quantization of single-trial cognitive ERP responses

机译:通过鉴别的载体量化进行单试认知ERP反应的鉴别载体量化改进了Amnestic MCI的检测

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Cognitive event-related potentials (ERPs) are widely employed in the study of dementive disorders. The morphology of averaged response is known to be under the influence of neurodegenerative processes and exploited for diagnostic purposes. This work is built over the idea that there is additional information in the dynamics of single-trial responses.We introduce a novel way to detect mild cognitive impairment (MCI) from the recordings of auditory ERP responses. Using single trial responses from a cohort of 25 amnestic MCI patients and a group of age-matched controls, we suggest a descriptor capable of encapsulating single-trial (ST) response dynamics for the benefit of early diagnosis.A customized vector quantization (VQ) scheme is first employed to summarize the overall set of ST-responses by means of a small-sized codebook of brain waves that is semantically organized. Each ST-response is then treated as a trajectory that can be encoded as a sequence of code vectors. A subject's set of responses is consequently represented as a histogram of activated code vectors. Discriminating MCI patients from healthy controls is based on the deduced response profiles and carried out by means of a standard machine learning procedure.The novel response representation was found to improve significantly MCI detection with respect to the standard alternative representation obtained via ensemble averaging (13% in terms of sensitivity and 6% in terms of specificity). Hence, the role of cognitive ERPs as biomarker for MCI can be enhanced by adopting the delicate description of our VQ scheme. ? 2012 Elsevier B.V.
机译:认知事件相关的电位(ERP)在痴呆障碍研究中被广泛使用。已知平均响应的形态受到神经变性过程的影响并剥削诊断目的。这项工作建立在一个关于单试答复的动态中的额外信息。我们介绍了一种从听觉ERP反应的录音中检测轻度认知障碍(MCI)的新方法。使用来自25名Amnestic MCI患者的队列和一组匹配的对照组的单次试验响应,我们建议一个能够封装单试的描述符,以获得早期诊断的益处。定制矢量量化(VQ)首先采用方案来借助在语义上组织的小型脑波的小尺寸码本总结整体的ST响应。然后将每个ST响应视为可以编码作为代码向量序列的轨迹。因此,受试者的响应集被表示为激活的代码向量的直方图。鉴别来自健康控制的MCI患者基于推导的响应曲线,并通过标准机器学习程序进行。发现了新的响应表示在通过集合平均获得的标准替代表示(13%)来改善MCI检测。(13%)在敏感度和特异性方面的6%方面)。因此,通过采用我们的VQ方案的精致描述,可以提高认知ERP作为MCI的生物标志物的作用。还2012年Elsevier B.v.

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