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Pattern and flicker detection analysed by subthreshold summation.

机译:通过亚阈值求和分析了模式和闪烁检测。

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摘要

1. We confirm Keesey's (1972) observation that, when a flickering line is viewed, there are distinct thresholds for detecting flicker (or movement) and for detecting a well localized line (pattern detection). Our measurements of the temporal sensitivity of these two mechanisms are similar to Keesey's. 2. The flicker and pattern detection mechanism have been analysed using subthreshold summation, i.e. by observing the effect of subthreshold flickering stimuli (lines and gratings) on the contrast threshold for a flickering test line. 3. The pattern detector shows linear spatial summation of contrast while the flicker detector is non-linear in this respect. 4. The receptive field of the (most sensitive) flicker detector is about two to four times broader than that of the pattern detector. 5. The flicker detector has relatively weak surround inhibition and so, unlike the pattern detector, it is sensitive to a uniform flickering field. 6. The spatial arrangement of the pattern detector is the same at all temporal frequencies (including steady presentation); for flicker detection, the width of the receptive field increases with temporal frequency and the strength of lateral inhibition decreases at high frequencies. 7. Flicker detectors of various widths were demonstrated by using different test stimuli (for 12 Hz modulation); surround ingibition was relatively weak for the broadest detector. 8. There is a delay of surround inhibition of about 3 ms for both flicker and pattern detection. 9. By using a broad test stimulus modulated at a high frequency, a detector can be found with no significant surround inhibition. At threshold, this stimulus produces a sensation of flicker without the appearance of lateral motion observed for finer test lines at lower frequencies. 10. The characteristics of pattern and flicker (movement) detection are compared to electrophysiological studies on X (sustained) and Y (transient) neurones respectively, and correlations are described for studies of temporal frequency response, non-linearity, width of receptive field, strength of the inhibitory surround and motion sensitivity.
机译:1.我们确认Keesey(1972)的观察结果,当观察到闪烁线时,存在用于检测闪烁(或运动)和用于检测定位良好的线(模式检测)的不同阈值。我们对这两种机制的时间敏感性的测量与Keesey的相似。 2.已经使用亚阈值求和分析了闪烁和模式检测机制,即通过观察亚阈值闪烁刺激(线条和光栅)对闪烁测试线的对比度阈值的影响。 3.在这方面,模式检测器显示对比度的线性空间总和,而闪烁检测器则是非线性的。 4.(最灵敏的)闪烁检测器的接收场宽是模式检测器的接收场宽的二到四倍。 5.闪烁检测器具有相对较弱的环绕抑制,因此,与模式检测器不同,它对均匀的闪烁场敏感。 6.模式检测器的空间布置在所有时间频率上都相同(包括平稳显示);对于闪烁检测,感受野的宽度随时间频率而增加,而横向抑制的强度在高频时降低。 7.通过使用不同的测试刺激(用于12 Hz调制)演示了各种宽度的闪烁检测器;对于最宽的探测器,环绕声相对较弱。 8.对于闪烁和模式检测,环绕抑制的延迟约为3 ms。 9.通过使用高频调制的广泛测试刺激,可以发现没有明显的环绕声抑制的检测器。达到阈值时,此刺激会产生闪烁感,而在较低频率下,对于较细的测试线,不会出现横向运动。 10.将模式和闪烁(运动)检测的特性分别与X(持续)和Y(瞬态)神经元的电生理研究进行了比较,并描述了相关性,以研究时间频率响应,非线性,感受野的宽度,抑制环绕声的强度和运动灵敏度。

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