Motion perception
1534578
224997345
2008-07-11T11:19:26Z
The Anome
76
/* Motion integration */ mathematical [[optical flow]] estimation techniques.
[[Image:Ventral-dorsal streams.svg|thumb|right|300px|The [[dorsal stream]] (green) and [[ventral stream]] (purple) are shown. They originate from a common source in visual cortex. The dorsal stream is responsible for detection of location and motion.]]
'''Motion perception''' is the process of inferring the speed and direction of elements in a scene based on [[Visual perception|visual]] input. Although this process appears straightforward to most observers, it has proven to be a difficult problem from a computational perspective, and extraordinarily difficult to explain in terms of [[neural]] processing.
Motion perception is studied by many disciplines, including [[psychology]] (i.e. [[visual perception]]), [[neurology]], [[neurophysiology]], [[engineering]], and [[computer science]].
==Neuropsychology==
Area V5 seems to be important to the processing of visual motion and damage to this area can disrupt motion perception. [[Neuropsychology|Neuropsychological]] studies of a patient who could not see motion, seeing the world in a series of static "frames" instead, suggested that visual area V5 in the human is homologous to area MT in the primate. <ref name=Hess1989>{{cite journal | title=The" motion-blind" patient: low-level spatial and temporal filters | author=Hess, Baker, Zihl | journal=Journal of Neuroscience | year=1989 | volume=9 | issue=5 | pages=1628–1640}}</ref><ref name=Baker1991>{{cite journal | title=Residual motion perception in a" motion-blind" patient, assessed with limited-lifetime random dot stimuli | author=Baker, Hess, Zihl | journal=Journal of Neuroscience | year=1991 | volume=11 | issue=2 | pages=454–461}}</ref>
==First-order motion perception ==
First-order motion perception refers to the perception of the motion of an object that differs in [[luminance]] from its background, such as a black bug crawling across a white page. This sort of motion can be detected by a relatively simple motion sensor designed to detect a change in luminance at one point on the retina and correlate it with a change in luminance at a neighbouring point on the retina after a delay. Sensors that work this way have been referred to as ''Reichardt detectors'' (after the scientist Werner Reichardt, who first modelled them), <ref name="Reichardt1961">{{cite journal
| author=Reichardt, W.
| year=1961
| title=Autocorrelation, a principle for the evaluation of sensory information by the central nervous system
| journal=W.A. Rosenblith (Ed.) Sensory communication (
| pages=303–317
| publisher=MIT Press}}</ref> motion-energy sensors, <ref name="AdelsonBergen">{{cite journal
| author=Adelson, E.H., & Bergen, J.R.
| year=1985
| title=Spatiotemporal energy models for the perception of motion
| journal=J Opt Soc Am A,
| volume=2
| issue=2
| pages=284–299}}</ref> or Elaborated Reichardt Detectors. <ref name="VanSantenSperling">{{cite journal
| author=van Santen, J.P., & Sperling, G.
| year=1985
| title=Elaborated Reichardt detectors
| journal=J Opt Soc Am A,
| volume=2
| issue=2
| pages=300–321}}</ref> These sensors detect motion by spatio-temporal [[correlation]] and are plausible models for how the visual system may detect motion. Debate still rages about the exact nature of this process. First-order motion sensors suffer from the [[Motion perception#The aperture problem|aperture problem]], which means that they can detect motion only perpendicular to the [[orientation]] of the contour that is moving. Further processing is required to disambiguate true [[Motion perception#Motion integration|global motion]] direction.
==Second-order motion perception==
''Second-order'' motion is motion in which the moving contour is defined by [[contrast (vision)|contrast]], [[texture]], flicker or some other quality that does not result in an increase in luminance or motion energy in the [[Fourier transform|Fourier spectrum]] of the stimulus.<ref name="CavanaghMather">{{cite journal | author=Cavanagh, P & Mather, G | year=1989 | title=Motion: the long and short of it | journal=Spatial vision | volume=4 | pages=103–129 | doi=10.1163/156856889X00077}}</ref><ref name="ChubbSperling">{{cite journal | author=Chubb, C & Sperling, G | year=1988 | title=Drift-balanced random stimuli: A general basis for studying non-Fourier motion perception | journal=J Opt Soc Amer A, | volume=5 | pages=1986–2007}}</ref> There is much evidence to suggest that early processing of first- and second-order motion is carried out by separate pathways.<ref name="Nishida">{{cite journal | author=Nishida, S., Ledgeway, T. & Edwards, M. | year=1997| title=Dual multiple-scale processing for motion in the human visual system | journal=Vision Research | volume=37 | pages=2685–2698| doi=10.1016/S0042-6989(97)00092-8}}</ref> Second-order mechanisms have poorer temporal resolution and are [[low-pass filter|low-pass]] in terms of the range of [[spatial frequency|spatial frequencies]] that they respond to. Second-order motion produces a weaker [[motion aftereffect]] unless tested with dynamically flickering stimuli.<ref name="LedgewaySmith">{{cite journal | author=Ledgeway, T. & Smith, A.T.
| year=1994 | title=The duration of the motion aftereffect following adaptation to first- and second-order motion | journal=Perception | volume=23
| pages=1211–1219 | doi=10.1068/p231211}}</ref> First and second-order signals appear to be fully combined at the level of Area [[visual cortex#V5/MT|V5/MT]] of the visual system.
==Motion integration==
Having extracted motion signals (first- or second-order) from the retinal image, the visual system must integrate those individual ''local'' motion signals at various parts of the visual field into a 2-dimensional or ''global'' representation of moving objects and surfaces.
===The aperture problem===
<!-- [[Aperture problem]] redirects here. -->
[[Image:aperture problem animated.gif|frame|The Aperture Problem. The [[grating]] appears to be moving down and to the right, [[perpendicular]] to the orientation of the bars. But it could be moving in many other directions, such as only down, or only to the right. It is impossible to tell unless the ends of the bars become visible in the aperture.]]
Each [[neuron]] in the visual system is sensitive to visual input in a small part of the [[visual field]], as if each neuron is looking at the visual field through a small window or ''aperture.'' The motion direction of a contour is ambiguous, because the motion component parallel to the line cannot be inferred based on the visual input. This means that a variety of contours of different orientations moving at different speeds can cause identical responses in a motion sensitive neuron in the visual system.
Individual neurons early in the visual system ([[LGN]] or [[visual cortex#V1|V1]]) respond to motion that occurs locally within their receptive field. Because each local motion-detecting neuron will suffer from the aperture problem, the estimates from many neurons need to be ''integrated'' into a global motion estimate. This appears to occur in Area [[visual cortex#V5/MT|MT/V5]] in human [[visual cortex]].
The same problem is found in mathematical [[optical flow]] estimation techniques. See also the [[barberpole illusion]].
==Motion in depth==
As in other aspects of vision, the observer's visual input is generally insufficient to determine the true nature of stimulus sources, in this case their velocity in the real world. In monocular vision for example, the visual input will be a 2D projection of a 3D scene. The motion cues present in the 2D projection will by default be insufficient to reconstruct the motion present in the 3D scene. Put differently, many 3D scenes will be compatible with a single 2D projection. The problem of motion estimation generalizes to [[binocular vision]] when we consider occlusion or motion perception at relatively large distances, where binocular disparity is a poor cue to depth. This fundamental difficulty is referred to as the [[inverse problem]].
==References==
{{reflist}}
== See also ==
*[[Beta movement]]
*[[Eye movement]]
*[[Induced movement]]
*[[Jerkiness]]
*[[Lilac chaser]]
*[[Max Wertheimer]]
*[[Motion aftereffect]]
*[[Optic flow]]
*[[Persistence of vision]]
*[[Phi phenomenon]]
*[[Pulfrich effect]]
*[[Rudolf Arnheim]]
*[[Strobe light]]
*[[Temporal aliasing]]
*[[Visual cortex]]
*[[Visual_Perception]]
*[[Wagon-wheel effect]]
*[[Motion (physics)]]
==External links==
===Labs specialising in motion research===
*[http://www.psychology.nottingham.ac.uk/research/vision/ University of Nottingham Visual Neuroscience]
*[http://www.mvr.mcgill.ca/home.html McGill Vision Research]
*[http://www.purveslab.net/main Purves Lab]
*[http://cvr.yorku.ca/home/ Center for Vision Research]
*[http://ilab.usc.edu/ iLab at the University of Southern California]
[[Category:Vision]]
[[Category:Cognition]]
[[Category:Cognitive neuroscience]]
[[Category:Cognitive science]]
[[de:Bewegungssehen]]