Laboratory of Action, Perception and Cognition, Faculty of Psychology, Vita-Salute San Raffaele University, via Olgettina 58, 20132, Milan, Italy.
Experimental Psychology Unit, Division of Neuroscience, San Raffaele Scientific Institute, via Olgettina 60, 20132, Milan, Italy.
Sci Rep. 2017 Nov 13;7(1):15379. doi: 10.1038/s41598-017-15619-8.
When watching videos, our sense of reality is continuously challenged. How much can a fundamental dimension of experience such as visual flow be modified before breaking the perception of real time? Here we found a remarkable indifference to speed manipulations applied to a popular video content, a soccer match. In a condition that mimicked real-life TV watching, none of 100 naïve observers spontaneously noticed speed alterations up/down to 12%, even when asked to report motion anomalies, and showed very low sensitivity to video speed changes (Just Noticeable Difference, JND = 18%). When tested with a constant-stimuli speed discrimination task, JND was still high, though much reduced (9%). The presence of the original voice-over with compensation for pitch did not affect perceptual performance. Thus, our results document a rather broad tolerance to speed manipulations in video viewing, even under attentive scrutiny. This finding may have important implications. For example, it can validate video compression strategies based on sub-threshold temporal squeezing. This way, a soccer match can last only 80 min and still be perceived as natural. More generally, knowing the boundaries of natural speed perception may help to optimize the flow of artificial visual stimuli which increasingly surround us.
观看视频时,我们的现实感会不断受到挑战。在打破实时感知之前,视觉流程等基本体验维度可以在多大程度上被修改?在这里,我们发现人们对应用于流行视频内容(足球比赛)的速度操作表现出显著的不敏感。在模仿现实生活中看电视的条件下,即使被要求报告运动异常,100 名天真观察者中的任何人都不会自发地注意到速度提高/降低 12%,并且对视频速度变化的敏感性也非常低(Just Noticeable Difference,JND = 18%)。当使用恒定刺激速度辨别任务进行测试时,JND 虽然有所降低但仍然很高(9%)。即使补偿了音高,原始画外音的存在也不会影响感知表现。因此,我们的结果记录了人们在观看视频时对速度操作的广泛容忍度,即使在仔细观察下也是如此。这一发现可能具有重要意义。例如,它可以验证基于亚阈值时间压缩的视频压缩策略。这样,一场足球比赛只需 80 分钟,仍然可以被视为自然的。更一般地说,了解自然速度感知的界限可能有助于优化我们周围日益增多的人工视觉刺激的流动。