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Xiaoyang Huang

10 accepted papers

2025

InstantSticker: Realistic Decal Blending via Disentangled Object Reconstruction

AAAI 2025technical

We present InstantSticker, a disentangled reconstruction pipeline based on Image-Based Lighting (IBL), which focuses on highly realistic decal blending, simulates stickers attached to the reconstructed surface, and allows for instant editing and real-time rendering. To achieve stereoscopic impressio…

2024

Towards High-fidelity Artistic Image Vectorization via Texture-Encapsulated Shape Parameterization

CVPR 2024poster

We develop a novel vectorized image representation scheme accommodating both shape/geometry and texture in a decoupled way particularly tailored for reconstruction and editing tasks of artistic/design images such as Emojis and Cliparts. In the heart of this representation is a set of sparsely and un…

Cited by 1SourcePDFScholar
2023

AudioEar: Single-View Ear Reconstruction for Personalized Spatial Audio

AAAI 2023technical

Spatial audio, which focuses on immersive 3D sound rendering, is widely applied in the acoustic industry. One of the key problems of current spatial audio rendering methods is the lack of personalization based on different anatomies of individuals, which is essential to produce accurate sound source…

2023

Boosting Point Clouds Rendering via Radiance Mapping

AAAI 2023technical

Recent years we have witnessed rapid development in NeRF-based image rendering due to its high quality. However, point clouds rendering is somehow less explored. Compared to NeRF-based rendering which suffers from dense spatial sampling, point clouds rendering is naturally less computation intensive…

2023

Fast Fluid Simulation via Dynamic Multi-Scale Gridding

AAAI 2023technical

Recent works on learning-based frameworks for Lagrangian (i.e., particle-based) fluid simulation, though bypassing iterative pressure projection via efficient convolution operators, are still time-consuming due to excessive amount of particles. To address this challenge, we propose a dynamic multi-s…

Cited by 4SourcePDFScholar
2023

Frequency-Modulated Point Cloud Rendering With Easy Editing

CVPR 2023highlight

We develop an effective point cloud rendering pipeline for novel view synthesis, which enables high fidelity local detail reconstruction, real-time rendering and user-friendly editing. In the heart of our pipeline is an adaptive frequency modulation module called Adaptive Frequency Net (AFNet), whic…

2023

Interpret ESG Rating’s Impact on the Industrial Chain Using Graph Neural Networks

IJCAI 2023poster

We conduct a quantitative analysis of the development of the industry chain from the environmental, social, and governance (ESG) perspective, which is an overall measure of sustainability. Factors that may impact the performance of the industrial chain have been studied in the literature, such as g…

Cited by 9SourcePDFScholar
2023

Learning Shape Primitives via Implicit Convexity Regularization

ICCV 2023poster

Shape primitives decomposition has been an important and long-standing task in 3D shape analysis. Prior arts heavily rely on 3D point clouds or voxel data for shape primitives extraction, which are less practical in real-world scenarios. This paper proposes to learn shape primitives from multi-view…

Cited by 3PDFcodeScholar
2022

Representation-Agnostic Shape Fields

ICLR 2022poster

3D shape analysis has been widely explored in the era of deep learning. Numerous models have been developed for various 3D data representation formats, e.g., MeshCNN for meshes, PointNet for point clouds and VoxNet for voxels. In this study, we present Representation-Agnostic Shape Fields (RASF), a…

2020

Learning Black-Box Attackers with Transferable Priors and Query Feedback

NeurIPS 2020poster

This paper addresses the challenging black-box adversarial attack problem, where only classification confidence of a victim model is available. Inspired by consistency of visual saliency between different vision models, a surrogate model is expected to improve the attack performance via transferabil…