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Optimal linear representations of images for object recognition
Authors:Liu Xiuwen  Srivastava Anuj  Gallivan Kyle
Affiliation:Dept. of Comput. Sci., Florida State Univ., Tallahassee, FL, USA;
Abstract:Although linear representations are frequently used in image analysis, their performances are seldom optimal in specific applications. This paper proposes a stochastic gradient algorithm for finding optimal linear representations of images for use in appearance-based object recognition. Using the nearest neighbor classifier, a recognition performance function is specified and linear representations that maximize this performance are sought. For solving this optimization problem on a Grassmann manifold, a stochastic gradient algorithm utilizing intrinsic flows is introduced. Several experimental results are presented to demonstrate this algorithm.
Keywords:
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