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Haolin Wang

17 accepted papers

2026

FineCycle: Towards a Full-Cycle Management Paradigm for Robotic Deployment and Development

ICRA 2026poster

Typical robotic workflows involve deploying applications from servers to robots for testing or distributing validated applications across a fleet to unify capabilities. Because these processes are often slowed by tedious environment configurations, we need a way to improve deployment and development…

Cited by 0Scholar
2026

Latent Diffusion Model without Variational Autoencoder

ICLR 2026poster

Recent progress in diffusion-based visual generation has largely relied on latent diffusion models with Variational Autoencoders (VAEs). While effective for high-fidelity synthesis, this VAE+Diffusion paradigm still suffers from limited training and inference efficiency, along with poor transferabil…

Cited by 0SourcecodeScholar
2026

Sparse3DPR: Training-Free 3D Hierarchical Scene Parsing and Task-Adaptive Subgraph Reasoning from Sparse RGB Views

AAAI 2026technical

Recently, large language models (LLMs) have been explored widely for 3D scene understanding. Among them, training-free approaches are gaining attention for their flexibility and generalization over training-based methods. However, they typically struggle with accuracy and efficiency in practical dep

Cited by 0SourcePDFScholar
2026

VARestorer: One-Step VAR Distillation for Real-World Image Super-Resolution

ICLR 2026poster

Recent advancements in visual autoregressive models (VAR) have demonstrated their effectiveness in image generation, highlighting their potential for real-world image super-resolution (Real-ISR). However, adapting VAR for ISR presents critical challenges. The next-scale prediction mechanism, constra…

Cited by 0SourcecodeScholar
2025

BLS-GAN: A Deep Layer Separation Framework for Eliminating Bone Overlap in Conventional Radiographs

AAAI 2025technical

Conventional radiography is the widely used imaging technology in diagnosing, monitoring, and prognosticating musculoskeletal (MSK) diseases because of its easy availability, versatility, and cost-effectiveness. Bone overlaps are prevalent in conventional radiographs, and can impede the accurate ass…

2025

Can Federated Learning Safeguard Private Data in LLM Training? Vulnerabilities, Attacks, and Defense Evaluation

EMNLP 2025

Fine-tuning large language models (LLMs) with local data is a widely adopted approach for organizations seeking to adapt LLMs to their specific domains. Given the shared characteristics in data across different organizations, the idea of collaboratively fine-tuning an LLM using data from multiple so

Cited by 0SourcePDFScholar
2025

FADE: Frequency-Aware Diffusion Model Factorization for Video Editing

CVPR 2025poster

Recent advancements in diffusion frameworks have significantly enhanced video editing, achieving high fidelity and strong alignment with textual prompts. However, conventional approaches using image diffusion models fall short in handling video dynamics, particularly for challenging temporal edits l…

2025

Floorplan-SLAM: A Real-Time, High-Accuracy, and Long-Term Multi-Session Point-Plane SLAM for Efficient Floorplan Reconstruction

IROS 2025

Floorplan reconstruction provides structural priors essential for reliable indoor robot navigation and high-level scene understanding. However, existing approaches either require time-consuming offline processing with a complete map, or rely on expensive sensors and substantial computational resourc

Cited by 1SourceScholar
2025

InstaRevive: One-Step Image Enhancement via Dynamic Score Matching

ICLR 2025poster

Image enhancement finds wide-ranging applications in real-world scenarios due to complex environments and the inherent limitations of imaging devices. Recent diffusion-based methods yield promising outcomes but necessitate prolonged and computationally intensive iterative sampling. In response, we p…

Cited by 0SourcePDFScholar
2025

Maximum Clique-Based Floorplan Association for Robust Multi-Session Stereo SLAM in Challenging Indoor Environments

IROS 2025

Existing multi-session visual simultaneous localization and mapping (SLAM) systems struggle severely to achieve robust localization and map merging under extreme viewpoint and illumination variations, particularly when handling completely opposite viewpoints and drastic day-night lighting changes. T

Cited by 0SourceScholar
2025

RAM-W600: A Multi-Task Wrist Dataset and Benchmark for Rheumatoid Arthritis

NeurIPS 2025poster

Rheumatoid arthritis (RA) is a common autoimmune disease that has been the focus of research in computer-aided diagnosis (CAD) and disease monitoring. In clinical settings, conventional radiography (CR) is widely used for the screening and evaluation of RA due to its low cost and accessibility. The…

Cited by 0SourcecodeScholar
2025

Triad: Empowering LMM-based Anomaly Detection with Expert-guided Region-of-Interest Tokenizer and Manufacturing Process

ICCV 2025poster

Although recent methods have tried to introduce large multimodal models (LMMs) into industrial anomaly detection (IAD), their generalization in the IAD field is far inferior to that for general purposes. We summarize the main reasons for this gap into two aspects. On one hand, general-purpose LMMs l…

2024

DC-Solver: Improving Predictor-Corrector Diffusion Sampler via Dynamic Compensation

ECCV 2024poster

"Diffusion probabilistic models (DPMs) have shown remarkable performance in visual synthesis but are computationally expensive due to the need for multiple evaluations during the sampling. Recent predictor-corrector diffusion samplers have significantly reduced the required number of function evalua…

2024

RSS: Robust Stereo SLAM With Novel Extraction and Full Exploitation of Plane Features

RA-L 2024

Planar structures, prevalent in man-made environments, can be observed by a camera for significant periods of time due to their large spatial presence. These structures provide strong planar regularities for Simultaneous Localization and Mapping (SLAM) systems, facilitating long-term navigation. The

Cited by 12SourceScholar
2024

Why Go Full? Elevating Federated Learning Through Partial Network Updates

NeurIPS 2024poster

Federated learning is a distributed machine learning paradigm designed to protect user data privacy, which has been successfully implemented across various scenarios. In traditional federated learning, the entire parameter set of local models is updated and averaged in each training round. Although…

2021

Learning RAW-to-sRGB Mappings With Inaccurately Aligned Supervision

ICCV 2021poster

Learning RAW-to-sRGB mapping has drawn increasing attention in recent years, wherein an input raw image is trained to imitate the target sRGB image captured by another camera. However, the severe color inconsistency makes it very challenging to generate well-aligned training pairs of input raw and t…

Cited by 52PDFcodeScholar
2020

Learning Flow-based Feature Warping for Face Frontalization with Illumination Inconsistent Supervision

ECCV 2020poster

Despite recent advances in deep learning-based face frontalization methods, photo-realistic and illumination preserving frontal face synthesis is still challenging due to large pose and illumination discrepancy during training. We propose a novel Flow-based Feature Warping Model (FFWM) which can lea…