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Methods/ACGPN

ACGPN

Adaptive Content Generating and Preserving Network

GeneralIntroduced 20003 papers
Source Paper

Description

ACGPN, or Adaptive Content Generating and Preserving Network, is a generative adversarial network for virtual try-on clothing applications.

In Step I, the Semantic Generation Module (SGM) takes the target clothing image T_c\mathcal{T}\_{c}T_c, the pose map M_p\mathcal{M}\_{p}M_p, and the fused body part mask MF\mathcal{M}^{F}MF as the input to predict the semantic layout and to output the synthesized body part mask MS_ω\mathcal{M}^{S}\_{\omega}MS_ω and the target clothing mask \mathcal{M}^{S\_{c}.

In Step II, the Clothes Warping Module (CWM) warps the target clothing image to TR_c\mathcal{T}^{R}\_{c}TR_c according to the predicted semantic layout, where a second-order difference constraint is introduced to stabilize the warping process.

In Steps III and IV, the Content Fusion Module (CFM) first produces the composited body part mask MC_ω\mathcal{M}^{C}\_{\omega}MC_ω using the original clothing mask M_c\mathcal{M}\_{c}M_c, the synthesized clothing mask MS_c\mathcal{M}^{S}\_{c}MS_c, the body part mask M_ω\mathcal{M}\_{\omega}M_ω, and the synthesized body part mask M_ωS\mathcal{M}\_{\omega}^{S}M_ωS, and then exploits a fusion network to generate the try-on images IS\mathcal{I}^{S}IS by utilizing the information TR_c\mathcal{T}^{R}\_{c}TR_c, MS_c\mathcal{M}^{S}\_{c}MS_c, and the body part image I_ωI\_{\omega}I_ω from previous steps.

Papers Using This Method

Towards Photo-Realistic Virtual Try-On by Adaptively Generating-Preserving Image Content2020-06-01Towards Photo-Realistic Virtual Try-On by Adaptively Generating$\leftrightarrow$Preserving Image Content2020-03-12Online Cyber-Attack Detection in Smart Grid: A Reinforcement Learning Approach2018-09-14