Li Shen
145 papers · 2012–2026 · 16 conferences · across top CS/AI conferences
Achievements
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Dynamic Duo
(55)
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Prolific Year
(39)
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Century Club
(144)
Conferences
ICML (32)
CVPR (23)
NIPS (23)
ICLR (21)
AAAI (9)
EMNLP (8)
IJCAI (7)
ACL (4)
ECCV (4)
ICCV (4)
AISTATS (2)
JMLR (2)
MICCAI (2)
UAI (2)
ACML (1)
COLING (1)
Top co-authors
Research topics
Keywords
federated learning
(10)
knowledge distillation
(8)
model compression
(8)
transfer learning
(7)
large language model
(7)
non-convex optimization
(7)
domain adaptation
(6)
distributed learning
(5)
stochastic gradient descent
(5)
sharpness-aware minimization
(4)
data augmentation
(4)
neural network
(4)
convolutional neural network
(4)
catastrophic forgetting
(4)
decentralized learning
(4)
continual learning
(4)
multi-task learning
(4)
offline reinforcement learning
(4)
loss landscape
(4)
model aggregation
(3)
Papers
CTRAP: Embedding Collapse Trap to Safeguard Large Language Models from Harmful Fine-Tuning
ACL 2026
Restoring Calibration for Aligned Large Language Models: A Calibration-Aware Fine-Tuning Approach
ICML 2025
Divide, Conquer and Combine: A Training-Free Framework for High-Resolution Image Perception in Multimodal Large Language Models
AAAI 2025
Image-to-video Adaptation with Outlier Modeling and Robust Self-learning
AAAI 2025
Edit Once, Update Everywhere: A Simple Framework for Cross-Lingual Knowledge Synchronization in LLMs
ACL 2025
Investigating the Role of Weight Decay in Enhancing Nonconvex SGD
CVPR 2025
LoRA Recycle: Unlocking Tuning-Free Few-Shot Adaptability in Visual Foundation Models by Recycling Pre-Tuned LoRAs
CVPR 2025
DynamicKV: Task-Aware Adaptive KV Cache Compression for Long Context LLMs
EMNLP 2025
Robust Knowledge Editing via Explicit Reasoning Chains for Distractor-Resilient Multi-Hop QA
EMNLP 2025
PEARL: Towards Permutation-Resilient LLMs
ICLR 2025
Enhancing Learning with Label Differential Privacy by Vector Approximation
ICLR 2025
Mitigating the Backdoor Effect for Multi-Task Model Merging via Safety-Aware Subspace
ICLR 2025
Near-Optimal Online Learning for Multi-Agent Submodular Coordination: Tight Approximation and Communication Efficiency
ICLR 2025
Combatting Dimensional Collapse in LLM Pre-Training Data via Submodular File Selection
ICLR 2025
Dynamic Neural Fortresses: An Adaptive Shield for Model Extraction Defense
ICLR 2025
Fine-Tuning Attention Modules Only: Enhancing Weight Disentanglement in Task Arithmetic
ICLR 2025
Understanding the Stability-based Generalization of Personalized Federated Learning
ICLR 2025
Open-Vocabulary Customization from CLIP via Data-Free Knowledge Distillation
ICLR 2025
Vulnerability-Aware Alignment: Mitigating Uneven Forgetting in Harmful Fine-Tuning
ICML 2025
Mastering Massive Multi-Task Reinforcement Learning via Mixture-of-Expert Decision Transformer
ICML 2025
Network Sparsity Unlocks the Scaling Potential of Deep Reinforcement Learning
ICML 2025
Targeted Low-rank Refinement: Enhancing Sparse Language Models with Precision
ICML 2025
Retrieval-Augmented Perception: High-resolution Image Perception Meets Visual RAG
ICML 2025
Safety Reasoning with Guidelines
ICML 2025
GraphCL: Graph-based Clustering for Semi-Supervised Medical Image Segmentation
ICML 2025
Modeling Multi-Task Model Merging as Adaptive Projective Gradient Descent
ICML 2025
Multinoulli Extension: A Lossless Yet Effective Probabilistic Framework for Subset Selection over Partition Constraints
ICML 2025
Contextual Bandits for Unbounded Context Distributions
ICML 2025
Decision Mixer: Integrating Long-term and Local Dependencies via Dynamic Token Selection for Decision-Making
ICML 2025
Mask-Enhanced Autoregressive Prediction: Pay Less Attention to Learn More
ICML 2025
Hypernetwork Aggregation for Decentralized Personalized Federated Learning
IJCAI 2025
FusionBench: A Unified Library and Comprehensive Benchmark for Deep Model Fusion
JMLR 2025
DALK: Dynamic Co-Augmentation of LLMs and KG to answer Alzheimerβs Disease Questions with Scientific Literature
EMNLP 2024
AdaMerging: Adaptive Model Merging for Multi-Task Learning
ICLR 2024
Parameter-Efficient Multi-Task Model Fusion with Partial Linearization
ICLR 2024
Revisiting Knowledge Distillation for Autoregressive Language Models
ACL 2024
A Huber Loss Minimization Approach to Mean Estimation under User-level Differential Privacy
NIPS 2024
Decomposed Prompt Decision Transformer for Efficient Unseen Task Generalization
NIPS 2024
A-FedPD: Aligning Dual-Drift is All Federated Primal-Dual Learning Needs
NIPS 2024
A Unified and General Framework for Continual Learning
ICLR 2024
Learning Multi-Agent Communication from Graph Modeling Perspective
ICLR 2024
Uncovering, Explaining, and Mitigating the Superficial Safety of Backdoor Defense
NIPS 2024
Is Mamba Compatible with Trajectory Optimization in Offline Reinforcement Learning?
NIPS 2024
Fairness-Aware Estimation of Graphical Models
NIPS 2024
DREAM: Dual Structured Exploration with Mixup for Open-set Graph Domain Adaption
ICLR 2024
Improving Non-Transferable Representation Learning by Harnessing Content and Style
ICLR 2024
Revisiting Plasticity in Visual Reinforcement Learning: Data, Modules and Training Stages
ICLR 2024
Merging Multi-Task Models via Weight-Ensembling Mixture of Experts
ICML 2024
Sparse Model Inversion: Efficient Inversion of Vision Transformers for Data-Free Applications
ICML 2024
OOP: Object-Oriented Programming Evaluation Benchmark for Large Language Models
ACL 2024
Representation Surgery for Multi-Task Model Merging
ICML 2024
Dude: Dual Distribution-Aware Context Prompt Learning For Large Vision-Language Model
ACML 2024
Task Groupings Regularization: Data-Free Meta-Learning with Heterogeneous Pre-trained Models
ICML 2024
Online Bilevel Optimization: Regret Analysis of Online Alternating Gradient Methods
AISTATS 2024
FREE: Faster and Better Data-Free Meta-Learning
CVPR 2024
POCE: Primal Policy Optimization with Conservative Estimation for Multi-constraint Offline Reinforcement Learning
CVPR 2024
Your Transferability Barrier is Fragile: Free-Lunch for Transferring the Non-Transferable Learning
CVPR 2024
Embodied Multi-Modal Agent trained by an LLM from a Parallel TextWorld
CVPR 2024
Sheared Backpropagation for Fine-tuning Foundation Models
CVPR 2024
Decentralized Directed Collaboration for Personalized Federated Learning
CVPR 2024
HarmoDT: Harmony Multi-Task Decision Transformer for Offline Reinforcement Learning
ICML 2024
Q-value Regularized Transformer for Offline Reinforcement Learning
ICML 2024
Volume-optimal persistence homological scaffolds of hemodynamic networks covary with MEG theta-alpha aperiodic dynamics
MICCAI 2024
Subject-Adaptive Transfer Learning Using Resting State EEG Signals for Cross-Subject EEG Motor Imagery Classification
MICCAI 2024
Unmasking Bias in Diffusion Model Training
ECCV 2024
Training A Secure Model against Data-Free Model Extraction
ECCV 2024
MuEP: A Multimodal Benchmark for Embodied Planning with Foundation Models
IJCAI 2024
Generalization Analysis of Stochastic Weight Averaging with General Sampling
ICML 2024
Neural Network Approximation for Pessimistic Offline Reinforcement Learning
AAAI 2024
Evaluate Geometry of Radiance Fields with Low-Frequency Color Prior
AAAI 2024
Is C4 Dataset Optimal for Pruning? An Investigation of Calibration Data for LLM Pruning
EMNLP 2024
Enhancing Fine-Tuning Based Backdoor Defense with Sharpness-Aware Minimization
ICCV 2023
MetaMix: Towards Corruption-Robust Continual Learning With Temporally Self-Adaptive Data Transformation
CVPR 2023
Robust Generalization Against Photon-Limited Corruptions via Worst-Case Sharpness Minimization
CVPR 2023
Architecture, Dataset and Model-Scale Agnostic Data-Free Meta-Learning
CVPR 2023
Make Landscape Flatter in Differentially Private Federated Learning
CVPR 2023
Compressing Volumetric Radiance Fields to 1 MB
CVPR 2023
Zero-shot Sharpness-Aware Quantization for Pre-trained Language Models
EMNLP 2023
Merging Experts into One: Improving Computational Efficiency of Mixture of Experts
EMNLP 2023
Towards Making the Most of ChatGPT for Machine Translation
EMNLP 2023
Data Augmented Flatness-aware Gradient Projection for Continual Learning
ICCV 2023
Global Balanced Experts for Federated Long-Tailed Learning
ICCV 2023
Rethinking the Role of Pre-Trained Networks in Source-Free Domain Adaptation
ICCV 2023
FedSpeed: Larger Local Interval, Less Communication Round, and Higher Generalization Accuracy
ICLR 2023
Towards One-shot Neural Combinatorial Solvers: Theoretical and Empirical Notes on the Cardinality-Constrained Case
ICLR 2023
Harnessing Out-Of-Distribution Examples via Augmenting Content and Style
ICLR 2023
Fairness-aware class imbalanced learning on multiple subgroups
UAI 2023
Learning to Learn from APIs: Black-Box Data-Free Meta-Learning
ICML 2023
Are Large Kernels Better Teachers than Transformers for ConvNets?
ICML 2023
Improving the Model Consistency of Decentralized Federated Learning
ICML 2023
Dynamic Regularized Sharpness Aware Minimization in Federated Learning: Approaching Global Consistency and Smooth Landscape
ICML 2023
CoCo: A Coupled Contrastive Framework for Unsupervised Domain Adaptive Graph Classification
ICML 2023
Defending against Data-Free Model Extraction by Distributionally Robust Defensive Training
NIPS 2023
Fair Canonical Correlation Analysis
NIPS 2023
FlatMatch: Bridging Labeled Data and Unlabeled Data with Cross-Sharpness for Semi-Supervised Learning
NIPS 2023
Stability and Generalization of the Decentralized Stochastic Gradient Descent Ascent Algorithm
NIPS 2023
Federated Learning with Manifold Regularization and Normalized Update Reaggregation
NIPS 2023
Learning Better with Less: Effective Augmentation for Sample-Efficient Visual Reinforcement Learning
NIPS 2023
An Efficient Dataset Condensation Plugin and Its Application to Continual Learning
NIPS 2023
Dynamic Sparsity Is Channel-Level Sparsity Learner
NIPS 2023
Towards Stable Backdoor Purification through Feature Shift Tuning
NIPS 2023
Understanding How Consistency Works in Federated Learning via Stage-wise Relaxed Initialization
NIPS 2023
Offline Quantum Reinforcement Learning in a Conservative Manner
AAAI 2023
FedABC: Targeting Fair Competition in Personalized Federated Learning
AAAI 2023
AdaTask: A Task-Aware Adaptive Learning Rate Approach to Multi-Task Learning
AAAI 2023
Evaluating Model-Free Reinforcement Learning toward Safety-Critical Tasks
AAAI 2023
Understanding Robust Overfitting of Adversarial Training and Beyond
ICML 2022
Fine-Tuning Global Model via Data-Free Knowledge Distillation for Non-IID Federated Learning
CVPR 2022
Learning To Learn and Remember Super Long Multi-Domain Task Sequence
CVPR 2022
MissDAG: Causal Discovery in the Presence of Missing Data with Continuous Additive Noise Models
NIPS 2022
Streaming Radiance Fields for 3D Video Synthesis
NIPS 2022
Boosting the Transferability of Adversarial Attacks with Reverse Adversarial Perturbation
NIPS 2022
Make Sharpness-Aware Minimization Stronger: A Sparsified Perturbation Approach
NIPS 2022
Robust Unlearnable Examples: Protecting Data Privacy Against Adversarial Learning
ICLR 2022
The Unreasonable Effectiveness of Random Pruning: Return of the Most Naive Baseline for Sparse Training
ICLR 2022
Robust Weight Perturbation for Adversarial Training
IJCAI 2022
Few-Shot Adaptation of Pre-Trained Networks for Domain Shift
IJCAI 2022
Penalized Proximal Policy Optimization for Safe Reinforcement Learning
IJCAI 2022
Improving Sharpness-Aware Minimization with Fisher Mask for Better Generalization on Language Models
EMNLP 2022
Towards Practical Adam: Non-Convexity, Convergence Theory, and Mini-Batch Acceleration
JMLR 2022
Meta-Learning with Less Forgetting on Large-Scale Non-stationary Task Distributions
ECCV 2022
Meta-learning without data via Wasserstein distributionally-robust model fusion
UAI 2022
DisPFL: Towards Communication-Efficient Personalized Federated Learning via Decentralized Sparse Training
ICML 2022
Deep Neural Network Fusion via Graph Matching with Applications to Model Ensemble and Federated Learning
ICML 2022
Improving Task-free Continual Learning by Distributionally Robust Memory Evolution
ICML 2022
On the Complementarity between Pre-Training and Random-Initialization for Resource-Rich Machine Translation
COLING 2022
Depth-Aware Generative Adversarial Network for Talking Head Video Generation
CVPR 2022
Sparse Training via Boosting Pruning Plasticity with Neuroregeneration
NIPS 2021
Communication Efficient Primal-Dual Algorithm for Nonconvex Nonsmooth Distributed Optimization
AISTATS 2021
Communication-Efficient Distributed Stochastic AUC Maximization with Deep Neural Networks
ICML 2020
Adaptive Activation Network and Functional Regularization for Efficient and Flexible Deep Multi-Task Learning
AAAI 2020
MiLeNAS: Efficient Neural Architecture Search via Mixed-Level Reformulation
CVPR 2020
A Decomposition Algorithm for the Sparse Generalized Eigenvalue Problem
CVPR 2019
Discrete Trust-aware Matrix Factorization for Fast Recommendation
IJCAI 2019
A Sufficient Condition for Convergences of Adam and RMSProp
CVPR 2019
Gather-Excite: Exploiting Feature Context in Convolutional Neural Networks
NIPS 2018
Squeeze-and-Excitation Networks
CVPR 2018
An Algorithmic Framework of Variable Metric Over-Relaxed Hybrid Proximal Extra-Gradient Method
ICML 2018
Comparator Networks
ECCV 2018
GSOS: Gauss-Seidel Operator Splitting Algorithm for Multi-Term Nonsmooth Convex Composite Optimization
ICML 2017
Shadow Optimization From Structured Deep Edge Detection
CVPR 2015
Adaptive Sharing for Image Classification
IJCAI 2015
A New Perspective on Material Classification and Ink Identification
CVPR 2014
Multi-level Discriminative Dictionary Learning towards Hierarchical Visual Categorization
CVPR 2013
High-Order Multi-Task Feature Learning to Identify Longitudinal Phenotypic Markers for Alzheimer's Disease Progression Prediction
NIPS 2012