University of Milano-Bicocca, Italy.
University of Southampton, United Kingdom.
Neuropsychologia. 2021 Dec 10;163:108088. doi: 10.1016/j.neuropsychologia.2021.108088. Epub 2021 Nov 18.
Whether the visuomotor coding of size in grasping obeys Weber's law is currently debated. Following up on previous work from our laboratory, here we investigated the precision associated with the maximum in-flight index-thumb aperture (MGA) in grasping small-to-medium sized objects. We report three main findings. First, grasp preparation was longer with 5 mm objects and became increasingly faster as object size increased from 10 to 20-40 mm. Second, MGA variable errors increased as sizes increased from 5 to 10-20 mm, whereas they decreased as size reached 40 mm. Third, MGA distributions were symmetrical with 5 mm objects, but became increasingly right-skewed as size increased. These results, as well as a re-analysis of previous findings, suggest that the precision of visuomotor representations varies as a function of size, consistent with the key principle underlying Weber's law. However, a fundamental constraint on precision grips (the MGA must always exceed physical size) changes the skew of the distribution and reduces the variability of MGAs as size increases from very small to medium.
目前对于抓握中大小的视动编码是否遵循韦伯定律仍存在争议。在我们实验室之前的工作基础上,我们研究了在抓握小至中等大小物体时与最大飞行中指-拇指开口(MGA)相关的精度。我们报告了三个主要发现。首先,抓握准备时间随着 5mm 物体的增加而延长,并且当物体尺寸从 10mm 增加到 20-40mm 时,准备时间变得越来越快。其次,MGA 可变误差随着尺寸从 5mm 增加到 10-20mm 而增加,而当尺寸达到 40mm 时则减小。第三,5mm 物体的 MGA 分布是对称的,但随着尺寸的增加,分布变得越来越右偏。这些结果以及对先前发现的重新分析表明,视动代表的精度随尺寸而变化,这与韦伯定律的关键原理一致。然而,对精确抓握的基本限制(MGA 必须始终超过物理尺寸)改变了分布的偏度,并随着尺寸从非常小增加到中等,降低了 MGAs 的可变性。