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SVM aided detection of cognitive impairment in MS

机译:SVM辅助检测MS认知障碍

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Cognitive impairment affects half of the multiple sclerosis (MS) patient population, is difficult to detect and requires extensive neuropsychological testing. We analyzed data obtained in a P300 experiment. The P300 is a large positive wave following an unexpected stimulus and is mainly related to attention, a domain frequently impaired in MS. Apart from the traditional features used in P300 experiments we want to investigate the value of different connectivity measures on the classification of MS patients as cognitively intact or impaired. We included 331 MS patients, recruited at the National MS Center Melsbroek (Belgium). About one third was denoted cognitively impaired (104). We divided our patient cohort in a training set (on which we used 10-fold crossvalidation) to optimize the (hyper)parameters of the SVM and an independent test set. Results are reported on this last group to increase the generalizability. In recent years many effort has been devoted to devising connectivity metrics for EEG and MEG data. The most commonly applied metrics are correlation and coherence. However, other metrics have been constructed like the Phase Lag Index (PLI) and the imaginary part of coherency (ImagCoh). Using traditional P300 features, we obtained an accuracy of 68 %. Several connectivity metrics returned similar results, especially the more traditional ones like correlation, correlation in the frequency domain and coherence (delta). The obtained accuracies were, however, only a minor improvement on the accuracy obtained using the traditional P300 features. These results support the recent suggestion that cognitive dysfunction in MS might be caused by cerebral disconnection. We have obtained these results applying graph theoretical analyses on EEG data instead of the more common fMRI network analyses. Although the classification accuracy denotes an important link to cognitive status, it is not sufficient for application in clinical practice.
机译:认知障碍会影响多发性硬化症(MS)患者的一半,难以检测,需要进行广泛的神经心理学测试。我们分析了在P300实验中获得的数据。 P300是意外刺激后的大正向波,主要与注意力有关,这是MS中经常受损的领域。除了P300实验中使用的传统功能外,我们还想研究不同连通性措施对MS患者认知完好或受损的分类的价值。我们纳入了331名MS患者,这些患者来自比利时梅尔斯布鲁克国家医学中心。大约三分之一被认为是认知障碍(104)。我们将患者队列分为一个训练集(在其中使用了10倍交叉验证),以优化SVM的(超)参数和一个独立的测试集。在最后一组中报告了结果,以提高通用性。近年来,已为设计EEG和MEG数据的连接性指标付出了很多努力。最常用的度量标准是相关性和连贯性。但是,还构建了其他度量标准,例如相位滞后指数(PLI)和相干性的虚部(ImagCoh)。使用传统的P300功能,我们获得了68%的精度。几种连通性指标返回了相似的结果,尤其是更传统的指标,如相关性,频域相关性和相干性(增量)。但是,所获得的精度仅是使用传统P300功能获得的精度的微小改进。这些结果支持了最近的建议,即MS的认知功能障碍可能是由大脑断开引起的。我们通过对脑电图数据进行图论分析,而不是更常用的fMRI网络分析,获得了这些结果。尽管分类准确性表示与认知状态的重要联系,但不足以在临床实践中应用。

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