Please use this identifier to cite or link to this item: https://hdl.handle.net/10356/102715
Title: Patch distribution compatible semisupervised dimension reduction for face and human gait recognition
Authors: Huang, Yi
Xu, Dong
Nie, Feiping
Keywords: DRNTU::Engineering::Computer science and engineering::Computing methodologies::Pattern recognition
Issue Date: 2012
Source: Huang, Y., Xu, D., & Nie, F. (2012). Patch distribution compatible semisupervised dimension reduction for face and human gait recognition. IEEE transactions on circuits and systems for video technology, 22(3), 479-488.
Series/Report no.: IEEE transactions on circuits and systems for video technology
Abstract: We propose a new semisupervised learning algorithm, referred to as patch distribution compatible semisupervised dimension reduction, for face and human gait recognition. Each image (a face image or an average human silhouette image) is first represented as a set of local patch features and it is further characterized as the corresponding patch distribution feature, which can be expressed as an image-specific Gaussian mixture model (GMM) adapted from the universal background model. Assuming that the individual components of the image-specific GMMs from all the training images reside on a submanifold, we assign a component-level prediction label matrix to each individual GMM component and introduce a new regularizer based on a set of local submanifold smoothness assumptions in our objective function. We also constrain each component-level prediction label matrix to be consistent with the image-level prediction label matrix , as well as enforce to be close to the given labels for the labeled samples. We further use a linear regression function to provide embeddings for the training data and the unseen test data. Inspired by the recent work flexible manifold embedding, we additionally integrate the regression residue in our objective function to measure the mismatch between and , such that our method can better cope with the data sampled from a nonlinear manifold. Finally, the optimal solutions of the component-level prediction label matrix , the image-level prediction label matrix , the projection matrix , and the bias term b can be simultaneously obtained. Comprehensive experiments on three benchmark face databases CMU PIE, FERET, and AR as well as the USF HumanID gait database clearly demonstrate the effectiveness of our algorithm over other state-of-the-art semisupervised dimension reduction methods.
URI: https://hdl.handle.net/10356/102715
http://hdl.handle.net/10220/16418
DOI: 10.1109/TCSVT.2012.2186731
Schools: School of Computer Engineering 
Fulltext Permission: none
Fulltext Availability: No Fulltext
Appears in Collections:SCSE Journal Articles

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