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20242026
most citedQ-DiT: Accurate Post-Training Quantization for Diffusion Transformers

2 citations · 3 across the 18 of their papers we have counts for

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5 papers · 1 filter

cs.LG2025

MoETTA: Test-Time Adaptation Under Mixed Distribution Shifts with MoE-LayerNorm

Xiao Fan, Jingyan Jiang, Zhaoru Chen +6

Test-Time adaptation (TTA) has proven effective in mitigating performance drops under single-domain distribution shifts by updating model parameters during inference. However, real…

cs.LG2025

Semantic-Space Exploration and Exploitation in RLVR for LLM Reasoning

Fanding Huang, Guanbo Huang, Xiao Fan +7

Reinforcement Learning with Verifiable Rewards (RLVR) for LLM reasoning is often framed as balancing exploration and exploitation in action space, typically operationalized with to…

cs.LG2025

Taming Latency and Bandwidth: A Theoretical Framework and Adaptive Algorithm for Communication-Constrained Training

Rongwei Lu, Jingyan Jiang, Chunyang Li +2

Regional energy caps limit the growth of any single data center used for large-scale model training. This single-center training paradigm works when model size remains manageable,…

cs.LG2025

Feature-Based Instance Neighbor Discovery: Advanced Stable Test-Time Adaptation in Dynamic World

Qinting Jiang, Chuyang Ye, Dongyan Wei +4

Despite progress, deep neural networks still suffer performance declines under distribution shifts between training and test domains, leading to a substantial decrease in Quality o…

cs.LG2024

Discover Your Neighbors: Advanced Stable Test-Time Adaptation in Dynamic World

Qinting Jiang, Chuyang Ye, Dongyan Wei +3

Despite progress, deep neural networks still suffer performance declines under distribution shifts between training and test domains, leading to a substantial decrease in Quality o…