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首页> 外文期刊>Hearing Research: An International Journal >Behavioral semantics of learning and crossmodal processing in auditory cortex: the semantic processor concept.
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Behavioral semantics of learning and crossmodal processing in auditory cortex: the semantic processor concept.

机译:听觉皮层学习和交叉模态处理的行为语义:语义处理器概念。

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Two phenomena of auditory cortex activity have recently attracted attention, namely that the primary field can show different types of learning-related changes of sound representation and that during learning even this early auditory cortex is under strong multimodal influence. Based on neuronal recordings in animal auditory cortex during instrumental tasks, in this review we put forward the hypothesis that these two phenomena serve to derive the task-specific meaning of sounds by associative learning. To understand the implications of this tenet, it is helpful to realize how a behavioral meaning is usually derived for novel environmental sounds. For this purpose, associations with other sensory, e.g. visual, information are mandatory to develop a connection between a sound and its behaviorally relevant cause and/or the context of sound occurrence. This makes it plausible that in instrumental tasks various non-auditory sensory and procedural contingencies of sound generation become co-represented by neuronal firing in auditory cortex. Information related to reward or to avoidance of discomfort during task learning, that is essentially non-auditory, is also co-represented. The reinforcement influence points to the dopaminergic internal reward system, the local role of which for memory consolidation in auditory cortex is well-established. Thus, during a trial of task performance, the neuronal responses to the sounds are embedded in a sequence of representations of such non-auditory information. The embedded auditory responses show task-related modulations of auditory responses falling into types that correspond to three basic logical classifications that may be performed with a perceptual item, i.e. from simple detection to discrimination, and categorization. This hierarchy of classifications determine the semantic "same-different" relationships among sounds. Different cognitive classifications appear to be a consequence of learning task and lead to a recruitment of different excitatory and inhibitory mechanisms and to distinct spatiotemporal metrics of map activation to represent a sound. The described non-auditory firing and modulations of auditory responses suggest that auditory cortex, by collecting all necessary information, functions as a "semantic processor" deducing the task-specific meaning of sounds by learning.
机译:听觉皮层活动的两种现象最近引起了人们的注意,即主场可以显示不同类型的与学习相关的声音表示变化,并且在学习过程中,即使这个早期的听觉皮层也受到强大的多峰影响。基于工具性任务期间动物听觉皮层的神经元记录,在本文中,我们提出了以下假设:这两种现象可通过联想学习来导出声音的任务特定含义。要了解此原则的含义,了解通常如何从新颖的环境声音中得出行为含义是有帮助的。为此,与其他感觉相关联,例如视觉信息是建立声音与其行为相关原因和/或声音发生环境之间的联系所必需的。这使得在乐器任务中声音产生的各种非听觉的感官和程序上的意外情况通过听觉皮层中的神经元放电共同表示是合理的。与任务学习过程中的奖励或避免不适相关的信息(基本上是非听觉的)也被共同表示。增强影响指向多巴胺能内部奖励系统,其在听觉皮层中的记忆巩固中的局部作用已经确立。因此,在任务执行的试验期间,对声音的神经元响应被嵌入到这种非听觉信息的表示序列中。嵌入的听觉响应示出了与任务相关的听觉响应的调制,其属于与可以用感知项目执行的三种基本逻辑分类相对应的类型,即,从简单检测到辨别以及分类。这种分类层次决定了声音之间的语义“相同”关系。不同的认知分类似乎是学习任务的结果,并导致募集不同的兴奋和抑制机制,并导致地图激活以表示声音的不同时空度量。所描述的非听觉激发和听觉反应调节表明,听觉皮层通过收集所有必要信息,充当“语义处理器”,通过学习推断出声音的特定任务含义。

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