This program of research investigates the ability of mildly mentally retarded adults to perceive correctly certain classes of stimuli with distinctive attributes. These include global stereoscopic forms produced by random element stereograms and global motion defined forms produced by random element kinematograms, both of which impose substantial computational burdens on the visual system. The ability to integrate cues that define pictorial representations of three-dimensional space will also be examined, and the extent to which perceptual processing can be modified by perceptual learning will be explored. All stimulus conditions involve phenomena that emerge in infancy and are processed by automatic preattentive stages of the perceptual system. They are perceived effortlessly, without error, by nonretarded persons. Yet under these same conditions, mildly retarded persons exhibit substantial perceptual deficits. This is a surprising outcome in that mild retardation is generally regarded to be a product of intellectual and cognitive deficiencies. The proposed inquiry, which builds on prior work, seeks to specify more precisely the characteristics of these perceptual deficits. The resulting data should contribute directly to a deeper understanding of mental retardation. More generally they bear on the issue of the separability of cognitive and perceptual processes.

Project Start
Project End
Budget Start
Budget End
Support Year
11
Fiscal Year
1991
Total Cost
Indirect Cost
Name
Vanderbilt University Medical Center
Department
Type
DUNS #
004413456
City
Nashville
State
TN
Country
United States
Zip Code
37212
Lubinski, David; Benbow, Camilla P; Kell, Harrison J (2014) Life paths and accomplishments of mathematically precocious males and females four decades later. Psychol Sci 25:2217-32
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Lubinski, David (2009) Exceptional cognitive ability: the phenotype. Behav Genet 39:350-8
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Boyd, J D; Casagrande, V A (1999) Relationships between cytochrome oxidase (CO) blobs in primate primary visual cortex (V1) and the distribution of neurons projecting to the middle temporal area (MT). J Comp Neurol 409:573-91
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