Learning local pixel structure for face hallucination

Yu Hu*, Kin Man Lam, Guoping Qiu, Tingzhi Shen, Hui Tian

*Corresponding author for this work

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    Abstract

    In this paper, we present a novel learning-based face hallucination method based on the assumption that similar faces will have similar local pixel structures. We use the low- resolution (LR) input face to search a database for K example faces that are the most similar to the input and align them with the input accordingly. The local pixel structures of the target high-resolution (HR) image are learned from those warped HR example faces in a neighbor embedding manner, and a total variation (TV) constraint is employed to aid the learning of all pixels'embedding weights. The learned local pixel structures are then used as constraints to reconstruct a HR version of the input face. Experimental results show that the method performs well in terms of both reconstruction error and visual quality.

    Original languageEnglish
    Title of host publication2010 IEEE International Conference on Image Processing, ICIP 2010 - Proceedings
    Pages2797-2800
    Number of pages4
    DOIs
    Publication statusPublished - 2010
    Event2010 17th IEEE International Conference on Image Processing, ICIP 2010 - Hong Kong, Hong Kong
    Duration: 26 Sept 201029 Sept 2010

    Publication series

    NameProceedings - International Conference on Image Processing, ICIP
    ISSN (Print)1522-4880

    Conference

    Conference2010 17th IEEE International Conference on Image Processing, ICIP 2010
    Country/TerritoryHong Kong
    CityHong Kong
    Period26/09/1029/09/10

    Keywords

    • Face hallucination
    • Local pixel structure
    • Super resolution
    • TV norm

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    Cite this

    Hu, Y., Lam, K. M., Qiu, G., Shen, T., & Tian, H. (2010). Learning local pixel structure for face hallucination. In 2010 IEEE International Conference on Image Processing, ICIP 2010 - Proceedings (pp. 2797-2800). Article 5651052 (Proceedings - International Conference on Image Processing, ICIP). https://doi.org/10.1109/ICIP.2010.5651052