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XIAOBO LI

10 accepted papers

2025

RRG-Mamba: Efficient Radiology Report Generation with State Space Model

IJCAI 2025

Recent advancements in radiology report generation have utilized deep neural networks such as CNNs and Transformers, achieving notable improvements in generating accurate and detailed reports. However, their practical adoption is hindered by the challenge of balancing global dependency modeling with

2025

SPT: Sequence Prompt Transformer for Interactive Image Segmentation

ICASSP 2025accepted

Interactive segmentation aims to extract objects of interest from an image based on user-provided clicks. In real-world applications, there is often a need to segment a series of images featuring the same target object. However, existing methods typically process one image at a time, failing to cons…

Cited by 0SourceScholar
2023

GANHead: Towards Generative Animatable Neural Head Avatars

CVPR 2023poster

To bring digital avatars into people's lives, it is highly demanded to efficiently generate complete, realistic, and animatable head avatars. This task is challenging, and it is difficult for existing methods to satisfy all the requirements at once. To achieve these goals, we propose GANHead (Genera…

Cited by 20SourcePDFScholar
2023

NeRF-IBVS: Visual Servo Based on NeRF for Visual Localization and Navigation

NeurIPS 2023poster

Visual localization is a fundamental task in computer vision and robotics. Training existing visual localization methods requires a large number of posed images to generalize to novel views, while state-of-the-art methods generally require dense ground truth 3D labels for supervision. However, acqui…

Cited by 9SourcePDFScholar
2022

A Contrastive Framework for Learning Sentence Representations from Pairwise and Triple-wise Perspective in Angular Space

ACL 2022long

Learning high-quality sentence representations is a fundamental problem of natural language processing which could benefit a wide range of downstream tasks. Though the BERT-like pre-trained language models have achieved great success, using their sentence representations directly often results in po…

Cited by 68SourcePDFScholar
2022

GEN-VLKT: Simplify Association and Enhance Interaction Understanding for HOI Detection

CVPR 2022poster

The task of Human-Object Interaction (HOI) detection could be divided into two core problems, i.e., human-object association and interaction understanding. In this paper, we reveal and address the disadvantages of the conventional query-driven HOI detectors from the two aspects. For the association,…

Cited by 163PDFcodeScholar
2022

Unbiased Manifold Augmentation for Coarse Class Subdivision

ECCV 2022poster

"Class Subdivision (CCS) is important for many practical applications, where the training set originally annotated for a coarse class (e.g. bird) needs to further support its sub-classes recognition (e.g. swan, crow) with only very few fine-grained labeled samples. From the perspective of causal rep…

2022

Weakly Supervised High-Fidelity Clothing Model Generation

CVPR 2022poster

The development of online economics arouses the demand of generating images of models on product clothes, to display new clothes and promote sales. However, the expensive proprietary model images challenge the existing image virtual try-on methods in this scenario, as most of them need to be trained…

Cited by 8PDFcodeScholar
2021

Mining the Benefits of Two-stage and One-stage HOI Detection

NeurIPS 2021poster

Two-stage methods have dominated Human-Object Interaction~(HOI) detection for several years. Recently, one-stage HOI detection methods have become popular. In this paper, we aim to explore the essential pros and cons of two-stage and one-stage methods. With this as the goal, we find that conventiona…