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Junyu Dong

27 accepted papers

2026

Dual-Channel Hybrid Graph Neural Network for Mobility Social Relationship Inference

IJCAI 2026

Inferring latent social ties from large-scale spatiotemporal mobility traces is a foundational AI task with broad applicability. Existing hypergraph-based methods often model higher-order relations by treating hyperedges as static snapshots, thus failing to capture the temporal dynamics and co-evolu

Cited by 0Scholar
2026

NimbusGS: Unified 3D Scene Reconstruction under Hybrid Weather

CVPR 2026

We present NimbusGS, a unified framework for reconstructing high-quality 3D scenes from degraded multi-view inputs captured under diverse and mixed adverse weather conditions. Unlike existing methods that target specific weather types, NimbusGS addresses the broader challenge of generalization by mo

Cited by 0SourcecodeScholar
2026

SEA-PACE: Semi-Supervised Underwater Image Enhancement via Gaussian Process–Assisted Self-Paced Learning

AAAI 2026technical

The scarcity of paired data severely limits the performance and generalization of learning-based underwater image enhancement (UIE) methods. This challenge is particularly prominent in scenes with complex degradations. Semi-supervised learning has emerged as a promising solution by enabling the util

Cited by 0SourcePDFScholar
2025

Correlation-Attention Masked Temporal Transformer for User Identity Linkage Using Heterogeneous Mobility Data

AAAI 2025technical

With the rise of social media and Location-Based Social Networks (LBSN), check-in data across platforms has become crucial for User Identity Linkage (UIL). These data not only reveal users' spatio-temporal information but also provide insights into their behavior patterns and interests. However, cro…

2025

DGraFormer: Dynamic Graph Learning Guided Multi-Scale Transformer for Multivariate Time Series Forecasting

IJCAI 2025

Multivariate time series forecasting is a critical focus across many fields. Existing transformer-based models have overlooked the explicit modeling of inter-variable correlations. Similarly, the graph-based methods have also failed to address the dynamic nature of multivariate correlations and the

2025

Forensics Adapter: Adapting CLIP for Generalizable Face Forgery Detection

CVPR 2025poster

We describe the Forensics Adapter, an adapter network designed to transform CLIP into an effective and generalizable face forgery detector. Although CLIP is highly versatile, adapting it for face forgery detection is non-trivial as forgery-related knowledge is entangled with a wide range of unrelate…

Cited by 5SourcePDFScholar
2025

NexusGS: Sparse View Synthesis with Epipolar Depth Priors in 3D Gaussian Splatting

CVPR 2025highlight

Neural Radiance Field (NeRF) and 3D Gaussian Splatting (3DGS) have noticeably advanced photo-realistic novel view synthesis using images from densely spaced camera viewpoints. However, these methods struggle in few-shot scenarios due to limited supervision. In this paper, we present NexusGS, a 3DGS-…

2025

OmniVTON: Training-Free Universal Virtual Try-On

ICCV 2025poster

Image-based Virtual Try-On (VTON) techniques rely on either supervised in-shop approaches, which ensure high fidelity but struggle with cross-domain generalization, or unsupervised in-the-wild methods, which improve adaptability but remain constrained by data biases and limited universality. A unifi…

2025

PersonaMagic: Stage-Regulated High-Fidelity Face Customization with Tandem Equilibrium

AAAI 2025technical

Personalized image generation has made significant strides in adapting content to novel concepts. However, a persistent challenge remains: balancing the accurate reconstruction of unseen concepts with the need for editability according to the prompt, especially when dealing with the complex nuances…

2025

Spatiotemporal-aware Trend-Seasonality Decomposition Network for Traffic Flow Forecasting

AAAI 2025technical

Traffic prediction is critical for optimizing travel scheduling and enhancing public safety, yet the complex spatial and temporal dynamics within traffic data present significant challenges for accurate forecasting. In this paper, we introduce a novel model, the Spatiotemporal-aware Trend-Seasonalit…

2024

A Method for X-Ray Image Landmarks Localization using Cyclic Coordinate-Guided Strategy

ICASSP 2024accepted

In this study, we present a novel method for pinpointing landmarks in X-ray images, which simultaneously offers computational efficiency and localization precision. Our method leverages a cyclic coordinate-guided strategy that requires fewer model parameters and lower computational costs than tradit…

Cited by 0SourceScholar
2024

D4-VTON: Dynamic Semantics Disentangling for Differential Diffusion based Virtual Try-On

ECCV 2024poster

"In this paper, we introduce D4 -VTON, an innovative solution for image-based virtual try-on. We address challenges from previous studies, such as semantic inconsistencies before and after garment warping, and reliance on static, annotation-driven clothing parsers. Additionally, we tackle the comple…

2024

Exploring Cross-Domain Few-Shot Classification via Frequency-Aware Prompting

IJCAI 2024poster

Cross-Domain Few-Shot Learning has witnessed great stride with the development of meta-learning. However, most existing methods pay more attention to learning domain-adaptive inductive bias (meta-knowledge) through feature-wise manipulation or task diversity improvement while neglecting the phenomen…

2024

FreqBlender: Enhancing DeepFake Detection by Blending Frequency Knowledge

NeurIPS 2024poster

Generating synthetic fake faces, known as pseudo-fake faces, is an effective way to improve the generalization of DeepFake detection. Existing methods typically generate these faces by blending real or fake faces in spatial domain. While these methods have shown promise, they overlook the simulation…

Cited by 8SourcePDFScholar
2024

Multi-Relational Graph Attention Network for Social Relationship Inference from Human Mobility Data

IJCAI 2024poster

Inferring social relationships from human mobility data holds significant value in real-life spatio-temporal applications, which inspires the development of a series of graph-based methods for inferring social relationships. Despite their effectiveness, we argue that previous methods either rely sol…

2024

Spherical Pseudo-Cylindrical Representation for Omnidirectional Image Super-resolution

AAAI 2024technical

Omnidirectional images have attracted significant attention in recent years due to the rapid development of virtual reality technologies. Equirectangular projection (ERP), a naive form to store and transfer omnidirectional images, however, is challenging for existing two-dimensional (2D) image super…

Cited by 6SourcePDFScholar
2023

Curricular Contrastive Regularization for Physics-Aware Single Image Dehazing

CVPR 2023poster

Considering the ill-posed nature, contrastive regularization has been developed for single image dehazing, introducing the information from negative images as a lower bound. However, the contrastive samples are nonconsensual, as the negatives are usually represented distantly from the clear (i.e., p…

2023

Efficient Feature Fusion for Learning-Based Photometric Stereo

ICASSP 2023accepted

How to handle an arbitrary number for input images is a fundamental problem of learning-based photometric stereo methods. Existing approaches adopt max-pooling or observation map to fuse an arbitrary number of extracted features. However, these methods discard a large amount of the features from the…

Cited by 0SourceScholar
2023

Graph Structure Learning on User Mobility Data for Social Relationship Inference

AAAI 2023technical

With the prevalence of smart mobile devices and location-based services, uncovering social relationships from human mobility data is of great value in real-world spatio-temporal applications ranging from friend recommendation, advertisement targeting to transportation scheduling. While a handful of…

2022

Editing Out-of-Domain GAN Inversion via Differential Activations

ECCV 2022poster

"Despite the demonstrated editing capacity in the latent space of a pretrained GAN model, inverting real-world images is stuck in a dilemma that the reconstruction cannot be faithful to the original input. The main reason for this is that the distributions between training and real-world data are mi…

2022

Mutual Distillation Learning Network for Trajectory-User Linking

IJCAI 2022poster

Trajectory-User Linking (TUL), which links trajectories to users who generate them, has been a challenging problem due to the sparsity in check-in mobility data. Existing methods ignore the utilization of historical data or rich contextual features in check-in data, resulting in poor performance for…

2021

Image Harmonization With Transformer

ICCV 2021poster

Image harmonization, aiming to make composite images look more realistic, is an important and challenging task. The composite, synthesized by combining foreground from one image with background from another image, inevitably suffers from the issue of inharmonious appearance caused by distinct imagin…

Cited by 91PDFcodeScholar
2021

Multi-Modal Multi-Action Video Recognition

ICCV 2021poster

Multi-action video recognition is much more challenging due to the requirement to recognize multiple actions co-occurring simultaneously or sequentially. Modeling multi-action relations is beneficial and crucial to understand videos with multiple actions, and actions in a video are usually presented…

Cited by 12PDFcodeScholar
2020

Pay Attention to Devils: A Photometric Stereo Network for Better Details

IJCAI 2020poster

We present an attention-weighted loss in a photometric stereo neural network to improve 3D surface recovery accuracy in complex-structured areas, such as edges and crinkles, where existing learning-based methods often failed. Instead of using a uniform penalty for all pixels, our method employs the…

Cited by 0SourcePDFScholar