AI Article Synopsis

  • Surveillance cameras often capture low-resolution face images under varying conditions, which makes it difficult for face matching algorithms to work effectively.
  • This paper introduces a new automatic method that aligns these low-quality images with high-resolution frontal images using multidimensional scaling and tensor analysis for improved facial feature localization.
  • The proposed method is tested against existing techniques on the Multi-PIE dataset and shows promising results for applications in tracking and recognition within surveillance videos.

Article Abstract

Face images captured by surveillance cameras usually have poor resolution in addition to uncontrolled poses and illumination conditions, all of which adversely affect the performance of face matching algorithms. In this paper, we develop a completely automatic, novel approach for matching surveillance quality facial images to high-resolution images in frontal pose, which are often available during enrollment. The proposed approach uses multidimensional scaling to simultaneously transform the features from the poor quality probe images and the high-quality gallery images in such a manner that the distances between them approximate the distances had the probe images been captured in the same conditions as the gallery images. Tensor analysis is used for facial landmark localization in the low-resolution uncontrolled probe images for computing the features. Thorough evaluation on the Multi-PIE dataset and comparisons with state-of-the-art super-resolution and classifier-based approaches are performed to illustrate the usefulness of the proposed approach. Experiments on surveillance imagery further signify the applicability of the framework. We also show the usefulness of the proposed approach for the application of tracking and recognition in surveillance videos.

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Source
http://dx.doi.org/10.1109/TPAMI.2013.68DOI Listing

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