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3 months ago

VTON-IT: Virtual Try-On using Image Translation

Santosh Adhikari Bishnu Bhusal Prashant Ghimire Anil Shrestha

VTON-IT: Virtual Try-On using Image Translation

Abstract

Virtual Try-On (trying clothes virtually) is a promising application of the Generative Adversarial Network (GAN). However, it is an arduous task to transfer the desired clothing item onto the corresponding regions of a human body because of varying body size, pose, and occlusions like hair and overlapped clothes. In this paper, we try to produce photo-realistic translated images through semantic segmentation and a generative adversarial architecture-based image translation network. We present a novel image-based Virtual Try-On application VTON-IT that takes an RGB image, segments desired body part, and overlays target cloth over the segmented body region. Most state-of-the-art GAN-based Virtual Try-On applications produce unaligned pixelated synthesis images on real-life test images. However, our approach generates high-resolution natural images with detailed textures on such variant images.

Code Repositories

shuntos/viton-it
Official
pytorch
Mentioned in GitHub

Benchmarks

BenchmarkMethodologyMetrics
virtual-try-on-on-microsoft-coco-datasetVTON-IT
SSIM: 0.93

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VTON-IT: Virtual Try-On using Image Translation | Papers | HyperAI