Publication | Closed Access
A Bayesian similarity measure for direct image matching
158
Citations
11
References
1996
Year
Unknown Venue
EngineeringSimilarity MeasureBiometricsBayesian Similarity MeasureFace DetectionFacial Recognition SystemImage AnalysisData SciencePattern RecognitionFacial ReconstructionComputational GeometryGeometric ModelingMachine VisionComputer ScienceImage SimilarityMedical Image ComputingComputer VisionDirect ImageNatural SciencesShape ModelingSimilarity SearchImage Deformations
We propose a probabilistic similarity measure for direct image matching based on a Bayesian analysis of image deformations. We model two classes of variation in object appearance: intra-object and extra-object. The probability density functions for each class are then estimated from training data and used to compute a similarity measure based on the a posteriori probabilities. Furthermore, we use a novel representation for characterizing image differences using a deformable technique for obtaining pixel-wise correspondences. This representation, which is based on a deformable 3D mesh in XYI-space, is then experimentally compared with two simpler representations: intensity differences and optical flow. The performance advantage of our deformable matching technique is demonstrated using a typically hard test set drawn from the US Army's FERET face database.
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