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Xinhao Tao

5 accepted papers

2025

Shadow Generation Using Diffusion Model with Geometry Prior

CVPR 2025poster

Image composition involves integrating foreground object into background image to obtain a composite image. One of the key challenges is to produce realistic shadow for the inserted foreground object. Recently, diffusion-based methods have shown superior performance compared to GAN-based methods in…

2024

Shadow Generation for Composite Image Using Diffusion Model

CVPR 2024poster

In the realm of image composition generating realistic shadow for the inserted foreground remains a formidable challenge. Previous works have developed image-to-image translation models which are trained on paired training data. However they are struggling to generate shadows with accurate shapes an…

2024

Shadow Generation with Decomposed Mask Prediction and Attentive Shadow Filling

AAAI 2024technical

Image composition refers to inserting a foreground object into a background image to obtain a composite image. In this work, we focus on generating plausible shadows for the inserted foreground object to make the composite image more realistic. To supplement the existing small-scale dataset, we crea…

2023

Deep Image Harmonization with Globally Guided Feature Transformation and Relation Distillation

ICCV 2023poster

Given a composite image, image harmonization aims to adjust the foreground illumination to be consistent with background. Previous methods have explored transforming foreground features to achieve competitive performance. In this work, we show that using global information to guide foreground featur…

Cited by 12PDFcodeScholar
2022

High-Resolution Image Harmonization via Collaborative Dual Transformations

CVPR 2022poster

Given a composite image, image harmonization aims to adjust the foreground to make it compatible with the background. High-resolution image harmonization is in high demand, but still remains unexplored. Conventional image harmonization methods learn global RGB-to-RGB transformation which could effor…

Cited by 101PDFcodeScholar