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Fully optimized discrimination of physiological responses to auditory stimuli

机译:完全优化的对听觉刺激的生理反应的判别

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摘要

The use of multivariate measurements to characterize brain activity (electrical, magnetic, optical) is widespread. The most common approaches to reduce the complexity of such observations include principal and independent component analyses (PCA and ICA), which are not well suited for discrimination tasks. We addressed two questions: first, how do the neurophysiological responses to elongated phonemes relate to tone and phoneme responses in normal children, and, second, how discriminable are these responses. We employed fully optimized linear discrimination analysis to maximally separate the multi-electrode responses to tones and phonemes, and classified the response to elongated phonemes. We find that discrimination between tones and phonemes is dependent upon responses from associative regions of the brain apparently distinct from the primary sensory cortices typically emphasized by PCA or ICA, and that the neuronal correlates corresponding to elongated phonemes are highly variable in normal children (about half respond with neural correlates of tones and half as phonemes). Our approach is made feasible by the increase in computational power of ordinary personal computers and has significant advantages for a wide range of neuronal imaging modalities.
机译:广泛使用多元测量来表征大脑活动(电,磁,光)。减少此类观察结果复杂性的最常用方法包括主成分分析和独立成分分析(PCA和ICA),它们不适合进行区分任务。我们解决了两个问题:首先,正常儿童对细长音素的神经生理反应如何与音调和音素反应相关,其次,这些反应的可分辨性如何。我们采用完全优化的线性判别分析,以最大程度地分离对音调和音素的多电极响应,并对对细长音素的响应进行分类。我们发现,音调和音素之间的区别取决于大脑相联区域的响应,这些响应明显不同于通常由PCA或ICA强调的主要感觉皮层,并且在正常儿童中,与细长音素相对应的神经元相关性高度可变(大约一半)以音调的神经相关性做出响应,一半作为音素)。我们的方法通过增加普通个人计算机的计算能力而变得可行,并且对于广泛的神经元成像方式具有显着优势。

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