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How many motion signals can be simultaneously perceived?

机译:可以同时感知多少个运动信号?

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Previous research indicates that the maximum number of motion signals that can be simultaneously perceived is 2, if they are defined only by direction differences, or 3 if they also differ in speed or depth (Greenwood & Edwards, 2006b). Those previous studies used transparent, spatially-sparse stimuli. Here we investigate this motion-number perception limit using spatially-localised stimuli that drive either the standard or form-specific motion systems (Edwards, 2009). Each motion signal was defined by four signal-dots that were arranged in either a square pattern (Square Condition), to drive the form-specific system, or a random pattern (Random Condition), to drive the standard motion-system. A temporal 2AFC procedure was used with each interval (150. ms duration) containing n or n+. 1 signals. The observer had to identify the interval containing the highest number of signals. The total number of dots in each interval was kept constant by varying the number of noise dots (dots that started off in the same spatial arrangement as the signal dots but then each of those dots moved in different directions). A mask was used at the end of each motion sequence to prohibit the use of iconic memory. In the Square Condition, up to five directions could be simultaneously perceived, and only 1 in the Variable condition. Decreasing the number of noise dots improved performance for the Variable condition, and increasing it decreased performance in the Square Condition. These results show that the previously observed limit of 3 is not a universal limit for motion perception and further, that signal-to-noise limits are a fundamental factor in determining the number of directions that can be simultaneously perceived. Hence the greater sensitivity to motion of the form-specific system makes it well suited to extracting the motion of multiple moving objects.
机译:先前的研究表明,如果仅通过方向差定义运动信号,则可以同时感知到的最大运动信号数为2,如果速度或深度也不同,则最大运动信号数为3(Greenwood&Edwards,2006b)。那些先前的研究使用了透明的,空间稀疏的刺激。在这里,我们使用空间定位的刺激来研究运动数感知极限,该刺激会驱动标准运动系统或特定形式的运动系统(Edwards,2009年)。每个运动信号由四个信号点定义,四个信号点以正方形模式(方形条件)排列以驱动特定形式的系统,或者以随机模式(随机条件)排列以驱动标准运动系统。在每个包含n或n +的间隔(持续时间为150 ms)中使用了时间2AFC程序。 1个信号。观察者必须确定包含最高信号数量的间隔。通过改变噪声点(以与信号点相同的空间排列开始但随后每个点沿不同方向移动的点)的数目,可以使每个间隔中的点总数保持恒定。在每个运动序列的末尾都使用了一个遮罩,以禁止使用图标记忆。在方形条件下,最多可以同时感知五个方向,而在可变条件下只能感知一个方向。减少噪声点的数量可提高“可变”条件的性能,而增加噪声点则会降低“平方”条件下的性能。这些结果表明,先前观察到的极限3不是运动感知的通用极限,此外,信噪比极限是确定可以同时感知的方向数量的基本因素。因此,特定于表单的系统对运动的敏感性更高,使其非常适合提取多个运动对象的运动。

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