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技术报告:轮廓交互作用的机制在中央凹和周边不同。

Technical Report: The Mechanism of Contour Interaction Differs in the Fovea and Periphery.

机构信息

Department of Optics, Palacký University Olomouc, Olomouc, Czech Republic.

College of Optometry, University of Houston, Houston, Texas.

出版信息

Optom Vis Sci. 2020 Dec;97(12):1053-1060. doi: 10.1097/OPX.0000000000001615.

Abstract

SIGNIFICANCE

Both foveal and peripheral contour interactions are based on, as yet, unexplained neural mechanisms. Our results show that, unlike foveal contour interaction, peripheral contour interaction cannot be explained on the basis of the antagonistic structure of neural receptive fields.

PURPOSE

Foveal contour interaction is markedly reduced for mesopic compared with photopic targets. This finding is consistent with an explanation based on the antagonistic structure of neural receptive fields. However, no reduction was found for low-luminance targets in the periphery, possibly because the luminances used previously remained substantially above peripheral scotopic detection thresholds. In this study, we compared foveal and peripheral contour interactions for long-wavelength photopic and mesopic targets, which would be expected to significantly elevate the peripheral retinal detection threshold.

METHODS

Five normal observers viewed a randomly selected Sloan letter surrounded by four flanking bars at several edge-to-edge separations (min arc). Photopic and mesopic stimuli were viewed foveally and at 6° peripherally through a selective red filter that ensured that mesopic targets were within 1 log unit of detection threshold at both retinal locations.

RESULTS

Whereas the magnitude of foveal contour interaction was substantially less at mesopic compared with photopic luminance (20 vs. 46% reduction of percent correct, on average), no significant difference was observed in peripheral contour interaction, which had average mesopic and photopic magnitudes of 38 and 40%. Moreover, confusion matrices representing photopic and mesopic contour interaction differed in the fovea but not in the periphery. The extent of contour interaction did not change with luminance at either retinal location.

CONCLUSIONS

Our results indicate that, although the characteristics of foveal contour interaction can be accounted for by the antagonistic structure of neural receptive fields, the same mechanism is not compatible with the characteristics of peripheral contour interaction.

摘要

意义

尚不清楚目前的神经机制是如何导致中央凹和周边轮廓相互作用的。我们的研究结果表明,与中央凹轮廓相互作用不同,周边轮廓相互作用不能基于神经感受野的拮抗结构来解释。

目的

与明视靶标相比,中视靶标时中央凹轮廓相互作用明显降低。这一发现与基于神经感受野拮抗结构的解释是一致的。然而,在外周低亮度靶标中没有发现这种降低,这可能是因为以前使用的亮度仍然大大高于外周暗视检测阈值。在这项研究中,我们比较了长波长明视和中视靶标时的中央凹和外周轮廓相互作用,这预计会显著提高外周视网膜检测阈值。

方法

5 名正常观察者在几个边缘到边缘的分离处(最小弧),通过选择性的红色滤光片观察一个随机选择的 Sloan 字母,该字母周围有四个边框条。明视和中视刺激分别在中央凹和 6°外周通过选择性的红色滤光片进行观察,该滤光片确保在这两个视网膜位置,中视靶标都在 1 个对数单位的检测阈值内。

结果

虽然与明视亮度相比,中视时中央凹轮廓相互作用的幅度明显降低(平均减少 20%和 46%的正确百分比),但在外周轮廓相互作用中没有观察到显著差异,其平均中视和明视幅度分别为 38%和 40%。此外,代表明视和中视轮廓相互作用的混淆矩阵在中央凹处不同,但在外周处相同。在视网膜的两个位置,轮廓相互作用的程度都不会随亮度而改变。

结论

我们的结果表明,虽然中央凹轮廓相互作用的特征可以用神经感受野的拮抗结构来解释,但相同的机制与周边轮廓相互作用的特征不兼容。

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