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A Compositional and Dynamic Model for Face Aging

Published: 01 March 2010 Publication History

Abstract

In this paper, we present a compositional and dynamic model for face aging. The compositional model represents faces in each age group by a hierarchical And-Or graph, in which And nodes decompose a face into parts to describe details (e.g., hair, wrinkles, etc.) crucial for age perception and Or nodes represent large diversity of faces by alternative selections. Then a face instance is a transverse of the And-Or graph—parse graph. Face aging is modeled as a Markov process on the parse graph representation. We learn the parameters of the dynamic model from a large annotated face data set and the stochasticity of face aging is modeled in the dynamics explicitly. Based on this model, we propose a face aging simulation and prediction algorithm. Inversely, an automatic age estimation algorithm is also developed under this representation. We study two criteria to evaluate the aging results using human perception experiments: 1) the accuracy of simulation: whether the aged faces are perceived of the intended age group, and 2) preservation of identity: whether the aged faces are perceived as the same person. Quantitative statistical analysis validates the performance of our aging model and age estimation algorithm.

Cited By

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  • (2024)Consensus-Agent Deep Reinforcement Learning for Face AgingIEEE Transactions on Image Processing10.1109/TIP.2024.336407433(1795-1809)Online publication date: 1-Jan-2024
  • (2024)Toward Quantifiable Face Age Transformation Under Attribute UnbiasIEEE Transactions on Circuits and Systems for Video Technology10.1109/TCSVT.2024.342266134:11_Part_2(11768-11782)Online publication date: 3-Jul-2024
  • (2023)Lifelong Age Transformation With a Deep Generative PriorIEEE Transactions on Multimedia10.1109/TMM.2022.315590325(3125-3139)Online publication date: 1-Jan-2023
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Information & Contributors

Information

Published In

cover image IEEE Transactions on Pattern Analysis and Machine Intelligence
IEEE Transactions on Pattern Analysis and Machine Intelligence  Volume 32, Issue 3
March 2010
191 pages

Publisher

IEEE Computer Society

United States

Publication History

Published: 01 March 2010

Author Tags

  1. ANOVA.
  2. And-Or graph
  3. Face aging modeling
  4. face age estimation
  5. generative model

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Cited By

View all
  • (2024)Consensus-Agent Deep Reinforcement Learning for Face AgingIEEE Transactions on Image Processing10.1109/TIP.2024.336407433(1795-1809)Online publication date: 1-Jan-2024
  • (2024)Toward Quantifiable Face Age Transformation Under Attribute UnbiasIEEE Transactions on Circuits and Systems for Video Technology10.1109/TCSVT.2024.342266134:11_Part_2(11768-11782)Online publication date: 3-Jul-2024
  • (2023)Lifelong Age Transformation With a Deep Generative PriorIEEE Transactions on Multimedia10.1109/TMM.2022.315590325(3125-3139)Online publication date: 1-Jan-2023
  • (2023)Face age synthesisPattern Recognition10.1016/j.patcog.2023.109791143:COnline publication date: 1-Nov-2023
  • (2023)A robust kinship verification scheme using face age transformationComputer Vision and Image Understanding10.1016/j.cviu.2023.103662231:COnline publication date: 1-Jun-2023
  • (2022)Facial makeup transfer with GAN for different aging facesJournal of Visual Communication and Image Representation10.1016/j.jvcir.2022.10346485:COnline publication date: 1-May-2022
  • (2022)Multimodal face aging framework via learning disentangled representationJournal of Visual Communication and Image Representation10.1016/j.jvcir.2022.10345283:COnline publication date: 1-Feb-2022
  • (2022)Enhanced IPCGAN-Alexnet model for new face image generating on age targetJournal of King Saud University - Computer and Information Sciences10.1016/j.jksuci.2021.09.00234:9(7236-7246)Online publication date: 1-Oct-2022
  • (2022)Wavelet-based multi-level generative adversarial networks for face agingComputer Vision and Image Understanding10.1016/j.cviu.2022.103524223:COnline publication date: 1-Oct-2022
  • (2022)RETRACTED ARTICLE: Age and gender classification using Seg-Net based architecture and machine learningMultimedia Tools and Applications10.1007/s11042-021-11499-381:29(42285-42308)Online publication date: 1-Dec-2022
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