EDBT 2026 Demo / reviewers in the wild / expert
Ruitao Wu
dblp:385/0638
· DBLP profile ↗
2ranked-venue papers
2as first author
2since 2021 · last 2025
—ORCID · none
Domains — the database's venue-derived domains; a paper can count in several
Artificial intelligence and machine learning · 2 · 2 first-author · 2 since 2021Graphics, computer vision, multimedia, augmented reality and games · 1 · 1 first-author · 1 since 2021
Expertise — from the expertise taxonomy: the topics of the expert's papers under the CCF categories. A weight counts papers with recency: 1 for a paper about the topic, 0.3 when the topic is its context, halved every five years.
| Artificial intelligence
2 papers |
Segmentation and scene understanding · 32% Vision and language · 16% Deep learning architectures and training · 16% |
Topics — the 7 heaviest of 7, each with the papers that count most for it
| Topic | Weight | Papers | Last | Evidence papers |
|---|---|---|---|---|
Computer vision › Segmentation and scene understanding › semantic segmentation
continual semantic segmentation |
0.9 | 1 | 2025 | Learning Yourself: Class-Incremental Semantic Segmentation with Language-Inspired Bootstrapped Disentanglement · ICCV 2025 |
Machine learning › Deep learning architectures and training
data augmentation |
0.9 | 1 | 2025 | Diffusion-Classifier Synergy: Reward-Aligned Learning via Mutual Boosting Loop for FSCIL · NeurIPS 2025 |
Machine learning › Generative modeling › diffusion model
diffusion-based data augmentation |
0.9 | 1 | 2025 | Diffusion-Classifier Synergy: Reward-Aligned Learning via Mutual Boosting Loop for FSCIL · NeurIPS 2025 |
Machine learning › Transfer learning and domain adaptation › few-shot learning
few-shot class-incremental learning |
0.9 | 1 | 2025 | Diffusion-Classifier Synergy: Reward-Aligned Learning via Mutual Boosting Loop for FSCIL · NeurIPS 2025 |
Computer vision › Segmentation and scene understanding
semantic segmentation |
0.9 | 1 | 2025 | Learning Yourself: Class-Incremental Semantic Segmentation with Language-Inspired Bootstrapped Disentanglement · ICCV 2025 |
Computer vision › Vision and language
vision-language model |
0.9 | 1 | 2025 | Learning Yourself: Class-Incremental Semantic Segmentation with Language-Inspired Bootstrapped Disentanglement · ICCV 2025 |
Natural language and speech › Language models and text generation
prompt tuning |
0.3 | 1 | 2025 | Learning Yourself: Class-Incremental Semantic Segmentation with Language-Inspired Bootstrapped Disentanglement · ICCV 2025 |
Methods — techniques the papers use, named apart from their topics
soft prompt tuning · 0.9reward-aligned learning · 0.9manifold mutual background disentanglement · 0.9language-guided prototypical disentanglement · 0.9diffusion model · 0.9contrastive reasoning · 0.9
| Year | Publication | Venue | Position |
|---|---|---|---|
| 2025 | Learning Yourself: Class-Incremental Semantic Segmentation with Language-Inspired Bootstrapped DisentanglementabstractClass-Incremental Semantic Segmentation (CISS) requires continuous learning of newly introduced classes while retaining knowledge of past classes. By abstracting mainstream methods into two stages (visual feature extraction and prototype-feature matching), we identify a more fundamental challenge termed catastrophic semantic entanglement. This phenomenon involves Prototype-Feature Entanglement caused by semantic misalignment during the incremental process, and Background-Increment Entanglement due to dynamic data evolution. Existing techniques, which rely on visual feature learning without sufficient cues to distinguish targets, introduce significant noise and errors. To address these issues, we introduce a Language-inspired Bootstrapped Disentanglement framework (LBD). We leverage the prior class semantics of pre-trained visual-language models (e.g., CLIP) to guide the model in autonomously disentangling features through Language-guided Prototypical Disentanglement and Manifold Mutual Background Disentanglement. The former guides the disentangling of new prototypes by treating hand-crafted text features as topological templates, while the latter employs multiple learnable prototypes and mask-pooling-based supervision for background-incremental class disentanglement. By incorporating soft prompt tuning and encoder adaptation modifications, we further bridge the capability gap of CLIP between dense and sparse tasks, achieving state-of-the-art performance on both Pascal VOC and ADE20k, particularly in multi-step scenarios. Ruitao Wu, Yifan Zhao 0002, Jia Li 0003 |
ICCV | 1 |
| 2025 | Diffusion-Classifier Synergy: Reward-Aligned Learning via Mutual Boosting Loop for FSCILabstractFew-Shot Class-Incremental Learning (FSCIL) challenges models to sequentially learn new classes from minimal examples without forgetting prior knowledge, a task complicated by the stability-plasticity dilemma and data scarcity. Current FSCIL methods often struggle with generalization due to their reliance on limited datasets. While diffusion models offer a path for data augmentation, their direct application can lead to semantic misalignment or ineffective guidance. This paper introduces Diffusion-Classifier Synergy (DCS), a novel framework that establishes a mutual boosting loop between diffusion model and FSCIL classifier. DCS utilizes a reward-aligned learning strategy, where a dynamic, multi-faceted reward function derived from the classifier's state directs the diffusion model. This reward system operates at two levels: the feature level ensures semantic coherence and diversity using prototype-anchored maximum mean discrepancy and dimension-wise variance matching, while the logits level promotes exploratory image generation and enhances inter-class discriminability through confidence recalibration and cross-session confusion-aware mechanisms. This co-evolutionary process, where generated images refine the classifier and an improved classifier state yields better reward signals, demonstrably achieves state-of-the-art performance on FSCIL benchmarks, significantly enhancing both knowledge retention and new class learning. Ruitao Wu, Yifan Zhao 0002, Jia Li 0003 |
NeurIPS | 1 |