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猫前听域中调频声音的处理

Processing of frequency-modulated sounds in the cat's anterior auditory field.

作者信息

Tian B, Rauschecker J P

机构信息

Laboratory of Neurophysiology, National Institute of Mental Health, Poolesville, Maryland 20837.

出版信息

J Neurophysiol. 1994 May;71(5):1959-75. doi: 10.1152/jn.1994.71.5.1959.

DOI:10.1152/jn.1994.71.5.1959
PMID:8064359
Abstract
  1. Single-neuron activity was recorded from the anterior auditory field (AAF) in the cortex of gas-anesthetized cats. 2. Tone bursts and broad-band complex sounds were used for auditory stimulation. Responses to frequency-modulated (FM) sounds, in particular, were studied systematically. 3. Linear FM sweeps were centered around the best frequency (BF) of a neuron and had an excursion large enough to cover its whole frequency tuning range. Rate and direction of change of the FM sweeps were varied. 4. In 69% of the FM responses, a peak was found at an instantaneous frequency that corresponded to the BF in the pure-tone response. Thirty-three percent of the units had multiple maxima in their FM response. These secondary maxima were not always reflected in the pure-tone response of the same neurons. 5. The vast majority of AAF neurons showed one of two types of selectivity for FM rate. Depending on the criterion, almost half of the cells (46%) preferred fast changes of > 200 Hz/ms (high-pass) in both FM directions. Forty-eight percent of all neurons showed band-pass behavior with a clear preference in the middle range of FM rates in one or both directions. Low-pass or all-pass neurons made up only a small proportion (4 and 1%, respectively) of AAF neurons. 6. When both directions of an FM sweep (low-to-high and high-to-low-frequency) were tested, 66% of the neurons clearly were selective for one direction. This selectivity was not present necessarily at the preferred FM rate. In general, FM direction selectivity was most pronounced at slower FM rates. 7. The selectivity of AAF neurons for the rate and direction of FM sounds makes these neurons suitable for the detection and analysis of communication sounds, which often contain FM components with a particular sweep rate and direction.
摘要
  1. 在气体麻醉猫的皮层前听区(AAF)记录单个神经元的活动。2. 使用短纯音脉冲和宽带复合声音进行听觉刺激。尤其对调频(FM)声音的反应进行了系统研究。3. 线性调频扫描以神经元的最佳频率(BF)为中心,其偏移量足够大以覆盖其整个频率调谐范围。调频扫描的速率和变化方向有所不同。4. 在69%的调频反应中,在与纯音反应中的最佳频率相对应的瞬时频率处发现一个峰值。33%的神经元在其调频反应中有多个最大值。这些次要最大值并不总是反映在同一神经元的纯音反应中。5. 绝大多数AAF神经元对调频速率表现出两种选择性之一。根据标准,几乎一半的细胞(46%)在两个调频方向上都偏好>200Hz/ms的快速变化(高通)。所有神经元中有48%表现出带通行为,在一个或两个方向上的调频速率中间范围内有明显偏好。低通或全通神经元仅占AAF神经元的一小部分(分别为4%和1%)。6. 当测试调频扫描的两个方向(低频到高频和高频到低频)时,66%的神经元对一个方向有明显的选择性。这种选择性不一定出现在偏好的调频速率处。一般来说,调频方向选择性在较慢的调频速率下最为明显。7. AAF神经元对调频声音的速率和方向的选择性使得这些神经元适合于检测和分析通信声音,通信声音通常包含具有特定扫描速率和方向的调频成分。

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