2006
DOI: 10.1007/11919629_46
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Fusing Individual Algorithms and Humans Improves Face Recognition Accuracy

Abstract: Abstract. Recent work indicates that state-of-the-art face recognition algorithms can surpass humans matching identity in pairs of face images taken under different illumination conditions. It has been demonstrated further that fusing algorithm-and human-derived face similarity estimates cuts error rates substantially over the performance of the best algorithms. Here we employed a pattern-based classification procedure to fuse individual human subjects and algorithms with the goal of determining whether strate… Show more

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