感知基于变形的运动方向。

IF 1.1 4区 心理学 Q2 PSYCHOLOGY, EXPERIMENTAL
I-Perception Pub Date : 2025-08-25 eCollection Date: 2025-07-01 DOI:10.1177/20416695251364725
Takahiro Kawabe
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引用次数: 0

摘要

在动态的视觉场景中,许多材料——包括布料、果冻状的物体和流动的液体——都经历了非刚性变形,传递了关于它们的物理状态的信息。在这些线索中,我们专注于基于变形的运动-定义为图像变形的空间位移。研究基于变形的运动是必要的,因为它是运动感知和材料感知的交叉点。本研究探讨了两个基本属性-空间频率和位移速度-如何共同塑造基于变形的运动的感知。我们之所以关注这些参数,是因为在基于亮度的运动感知中,空间频率和位移速度已被证明对运动灵敏度有重要影响。在使用顺序变形的1/f噪声图像作为中性背景的三个实验中,我们系统地操纵了变形的空间频率分量和这些变形位移的速度。结果表明,空间频率和位移速度的相互作用对方向识别性能有很强的调制作用。抑制局部变形线索可以提高低频下的识别能力,这表明局部信号可能会干扰全局运动推断。这些发现揭示了图像变形的空间结构和动态如何约束运动感知,并为大脑如何解释来自非刚性材料的动态视觉信息提供了见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Perceiving direction of deformation-based motion.

In dynamic visual scenes, many materials-including cloth, jelly-like bodies, and flowing liquids-undergo non-rigid deformations that convey information about their physical state. Among such cues, we focus on deformation-based motion-defined as the spatial shifts of image deformation. Studying deformation-based motion is essential because it lies at the intersection of motion perception and material perception. This study examines how two fundamental properties-spatial frequency and displacement speed-jointly shape the perception of deformation-based motion. We focused on these parameters because, in luminance-based motion perception, spatial frequency and displacement speed have been shown to critically influence motion sensitivity. Across three experiments using sequentially deformed 1/f noise images as a neutral background, we systematically manipulated the spatial frequency components of the deformation and the speed at which these deformations were displaced. Results showed that direction discrimination performance was strongly modulated by the interaction between spatial frequency and displacement speed. Suppressing local deformation cues improved discrimination at low frequencies, suggesting that local signals may interfere with global motion inference. These findings reveal how the spatial structure and dynamics of image deformation constrain motion perception and provide insights into how the brain interprets dynamic visual information from non-rigid materials.

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来源期刊
I-Perception
I-Perception PSYCHOLOGY, EXPERIMENTAL-
CiteScore
4.30
自引率
5.30%
发文量
39
审稿时长
12 weeks
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