Striate cortex responses to periodic patterns with and without the fundamental harmonics
- 1 October 1981
- journal article
- research article
- Published by Wiley in The Journal of Physiology
- Vol. 319 (1) , 497-514
- https://doi.org/10.1113/jphysiol.1981.sp013922
Abstract
The visual system was modeled as a set of independent linear channels, each tuned to a limited band of spatial frequency with the average bandwidth being .apprx. 1 octave. Much psychophysical and physiological evidence supports this basic notion. Henning, et al (1975) showed reciprocal masking between a fundamental frequency (1F) and a complex grating composed of higher harmonics several octaves removed ((4 + 5 + 6)F); their results indicate a lack of independence. The activity of cells in the striate cortex of monkeys and cats were recorded using stimuli similar to those of Henning et al to make comparisons with their psychophysical data and to test specific physiological predictions. Cells tuned to the fundamental frequency did not produce an excitatory response to the (4 + 5 + 6)F pattern. The response of such cells to 1F could be reduced by simultaneous presentation of (4 + 5 + 6)F. The response of cells tuned to high frequencies, when presented with (4 + 5 + 6)F, was reduced by simultaneous presentation of 1F. This reciprocal inhibition could be preoduced between single harmonics (e.g. 1F and 4F) and was not dependent upon a special relationship between 1F and (4 + 5 + 6)F. When cells tuned to high frequencies were presented with the (4 + 5 + 6)F pattern, they generated predictable responses in the higher harmonics (4, 5, 6) but also generated an unexpected, non-linear response at the fundamental frequency, 1F, although no such low frequency component was present in the stimulus. This effect is due to the response rectification which striate cells show. In support of the linear independent spatial frequency channel model: striate cells provide an excitatory response to only a limited range of frequencies; they do not provide such responses to the apparent yet missing fundamental in the (4 + 5 + 6)F beating pattern; and the response wave form to complex stimuli like (4 + 5 + 6)F is reasonably predictable (at least for simple cells) from the model. Frequencies outside the excitatory bandpass can produce inhibition and the rectification of the response wave form introduces harmonics not present in the stimulus.This publication has 21 references indexed in Scilit:
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