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Detecting Faces in Impoverished Images

Author(s)
Torralba, Antonio; Sinha, Pawan
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Abstract
The ability to detect faces in images is of critical ecological significance. It is a pre-requisite for other important face perception tasks such as person identification, gender classification and affect analysis. Here we address the question of how the visual system classifies images into face and non-face patterns. We focus on face detection in impoverished images, which allow us to explore information thresholds required for different levels of performance. Our experimental results provide lower bounds on image resolution needed for reliable discrimination between face and non-face patterns and help characterize the nature of facial representations used by the visual system under degraded viewing conditions. Specifically, they enable an evaluation of the contribution of luminance contrast, image orientation and local context on face-detection performance.
Date issued
2001-11-05
URI
http://hdl.handle.net/1721.1/7242
Other identifiers
AIM-2001-028
CBCL-208
Series/Report no.
AIM-2001-028CBCL-208
Keywords
AI, Face detection, image resolution, contrast negation, vertical inversion

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