Kognitive einschließlich Biologische Psychologie, Institut für Psychologie, Universität Leipzig Leipzig, Germany.
Kognitive einschließlich Biologische Psychologie, Institut für Psychologie, Universität Leipzig Leipzig, Germany ; Institute for Brain, Cognition and Behaviour (IR3C), University of Barcelona Barcelona, Spain ; Cognitive Neuroscience Research Group, Department of Psychiatry and Clinical Psychobiology, University of Barcelona Barcelona, Spain.
Front Hum Neurosci. 2014 Jun 11;8:387. doi: 10.3389/fnhum.2014.00387. eCollection 2014.
The human central auditory system can automatically extract abstract regularities from a variant auditory input. To this end, temporarily separated events need to be related. This study tested whether the timing between events, falling either within or outside the temporal window of integration (~350 ms), impacts the extraction of abstract feature relations. We utilized tone pairs for which tones within but not across pairs revealed a constant pitch relation (e.g., pitch of second tone of a pair higher than pitch of first tone, while absolute pitch values varied across pairs). We measured the mismatch negativity (MMN; the brain's error signal to auditory regularity violations) to second tones that rarely violated the pitch relation (e.g., pitch of second tone lower). A Short condition in which tone duration (90 ms) and stimulus onset asynchrony between the tones of a pair were short (110 ms) was compared to two conditions, where this onset asynchrony was long (510 ms). In the Long Gap condition, the tone durations were identical to Short (90 ms), but the silent interval was prolonged by 400 ms. In Long Tone, the duration of the first tone was prolonged by 400 ms, while the silent interval was comparable to Short (20 ms). Results show a frontocentral MMN of comparable amplitude in all conditions. Thus, abstract pitch relations can be extracted even when the within-pair timing exceeds the integration period. Source analyses indicate MMN generators in the supratemporal cortex. Interestingly, they were located more anterior in Long Gap than in Short and Long Tone. Moreover, frontal generator activity was found for Long Gap and Long Tone. Thus, the way in which the system automatically registers irregular abstract pitch relations depends on the timing of the events to be linked. Pending that the current MMN data mirror established abstract rule representations coding the regular pitch relation, neural processes building these templates vary with timing.
人类的中枢听觉系统可以自动从变化的听觉输入中提取抽象规律。为此,需要将暂时分离的事件联系起来。本研究测试了事件之间的时间间隔(落在整合窗口内或外,约 350 毫秒)是否会影响抽象特征关系的提取。我们利用了音调对,其中对音调对内的音调而不是音调对之间的音调显示出恒定的音高关系(例如,一对音调的第二音调的音高高于第一音调的音高,而绝对音高值在音调对之间变化)。我们测量了对第二音调的失匹配负波(MMN;大脑对听觉规律违反的错误信号),第二音调很少违反音高关系(例如,第二音调的音高较低)。与两个条件相比,一个条件中音调持续时间(90 毫秒)和音调对中两个音调之间的刺激起始时间间隔(110 毫秒)较短。在长间隙条件下,音调持续时间与短条件相同(90 毫秒),但两个音调之间的静默间隔延长了 400 毫秒。在长音条件下,第一音调的持续时间延长了 400 毫秒,而静默间隔与短条件相同(20 毫秒)。结果表明,所有条件下的额中央 MMN 具有相当的振幅。因此,即使在对内时间超过整合期的情况下,也可以提取抽象的音高关系。源分析表明,在超颞叶皮层中有 MMN 发生器。有趣的是,它们在长间隙中比在短和长音中更靠前。此外,还发现了长间隙和长音的额叶发生器活动。因此,系统自动记录不规则的抽象音高关系的方式取决于要链接的事件的时间。鉴于当前的 MMN 数据反映了编码规则音高关系的既定抽象规则表示,构建这些模板的神经过程随时间而变化。