On the space-time statistics of motion pictures

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초록

It is well known that natural images possess statistical regularities that can be captured by bandpass decomposition and divisive normalization processes that approximate early neural processing in the human visual system. We expand on these studies and present new findings on the properties of space-time natural statistics that are inherent in motion pictures. Our model relies on the concept of temporal bandpass (e.g., lag) filtering in lateral geniculate nucleus (LGN) and area V1, which is similar to smoothed frame differencing of video frames. Specifically, we model the statistics of the differences between adjacent or neighboring video frames that have been slightly spatially displaced relative to one another. We find that when these space-time differences are further subjected to locally pooled divisive normalization, statistical regularities (or lack thereof) arise that depend on the local motion trajectory. We find that bandpass and divisively normalized frame differences that are displaced along the motion direction exhibit stronger statistical regularities than for other displacements. Conversely, the direction-dependent regularities of displaced frame differences can be used to estimate the image motion (optical flow) by finding the space-time displacement paths that best preserve statistical regularity. © 2021 Optical Society of America

키워드

Image codingMotion picturesOptical flowsDisplaced frame differenceFrame differencesFrame differencingHuman Visual SystemLateral geniculate nucleusNeural-processingNormalization processStatistical regularityStatistics
제목
On the space-time statistics of motion pictures
저자
Lee, Dae YeolKo, HyunsukKim, JonghoBovik, Alan C.
DOI
10.1364/JOSAA.413772
발행일
2021-07
유형
Article
저널명
Journal of the Optical Society of America A: Optics and Image Science, and Vision
38
7
페이지
908 ~ 923