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Jingxiang Sun

11 accepted papers

2026

FlexAvatar: Flexible Large Reconstruction Model for Animatable Gaussian Head Avatars with Detailed Deformation

CVPR 2026

We present FlexAvatar, a flexible large reconstruction model for high-fidelity 3D head avatars with detailed dynamic deformation from single or sparse images, without requiring camera poses or expression labels. It leverages a transformer-based reconstruction model with structured head query tokens

Cited by 0SourceScholar
2026

GeoDiff4D: Geometry-Aware Diffusion for 4D Head Avatar Reconstruction

CVPR 2026

Reconstructing photorealistic and animatable 4D head avatars from a single portrait image remains a fundamental challenge in computer vision. While diffusion models have enabled remarkable progress in image and video generation for avatar reconstruction, existing methods primarily rely on 2D priors

Cited by 0SourceScholar
2026

GeoSAM2: Unleashing the Power of SAM2 for 3D Part Segmentation

CVPR 2026

We introduce GeoSAM2, a prompt-controllable framework for 3D part segmentation that casts the task as multi-view 2D mask prediction. Given a textureless object, we render normal and point maps from predefined viewpoints and accept simple 2D prompts--clicks or boxes--to guide part selection. These pr

Cited by 0SourceScholar
2026

MoReMouse: Monocular Reconstruction of Laboratory Mouse

AAAI 2026technical

Laboratory mice, particularly the C57BL/6 strain, are essential animal models in biomedical research. However, accurate 3D surface motion reconstruction of mice remains a significant challenge due to their complex non-rigid deformations, textureless fur-covered surfaces, and the lack of realistic 3D

Cited by 0SourcePDFScholar
2024

Control4D: Efficient 4D Portrait Editing with Text

CVPR 2024poster

We introduce Control4D an innovative framework for editing dynamic 4D portraits using text instructions. Our method addresses the prevalent challenges in 4D editing notably the inefficiencies of existing 4D representations and the inconsistent editing effect caused by diffusion-based editors. We fir…

Cited by 22SourcePDFScholar
2024

DreamCraft3D: Hierarchical 3D Generation with Bootstrapped Diffusion Prior

ICLR 2024poster

We present DreamCraft3D, a hierarchical 3D content generation method that produces high-fidelity and coherent 3D objects. We tackle the problem by leveraging a 2D reference image to guide the stages of geometry sculpting and texture boosting. A central focus of this work is to address the consistenc…

2024

RAM-Avatar: Real-time Photo-Realistic Avatar from Monocular Videos with Full-body Control

CVPR 2024poster

This paper focuses on advancing the applicability of human avatar learning methods by proposing RAM-Avatar which learns a Real-time photo-realistic Avatar that supports full-body control from Monocular videos. To achieve this goal RAM-Avatar leverages two statistical templates responsible for modeli…

Cited by 3SourcePDFScholar
2023

High-Fidelity Facial Avatar Reconstruction From Monocular Video With Generative Priors

CVPR 2023poster

High-fidelity facial avatar reconstruction from a monocular video is a significant research problem in computer graphics and computer vision. Recently, Neural Radiance Field (NeRF) has shown impressive novel view rendering results and has been considered for facial avatar reconstruction. However, th…

2023

Next3D: Generative Neural Texture Rasterization for 3D-Aware Head Avatars

CVPR 2023highlight

3D-aware generative adversarial networks (GANs) synthesize high-fidelity and multi-view-consistent facial images using only collections of single-view 2D imagery. Towards fine-grained control over facial attributes, recent efforts incorporate 3D Morphable Face Model (3DMM) to describe deformation in…

2022

DiffuStereo: High Quality Human Reconstruction via Diffusion-Based Stereo Using Sparse Cameras

ECCV 2022poster

"We propose DiffuStereo, a novel system using only sparse cameras (8 in this work) for high-quality 3D human reconstruction. At its core is a novel diffusion-based stereo module, which introduces diffusion models, a type of powerful generative models, into the iterative stereo matching network. To t…

Cited by 68SourcePDFScholar
2022

FENeRF: Face Editing in Neural Radiance Fields

CVPR 2022poster

Previous portrait image generation methods roughly fall into two categories: 2D GANs and 3D-aware GANs. 2D GANs can generate high fidelity portraits but with low view consistency. 3D-aware GAN methods can maintain view consistency but their generated images are not locally editable. To overcome thes…

Cited by 169PDFcodeScholar