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20242026
most citedMixture-of-Experts Graph Transformers for Interpretable Particle Collision Detection

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

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cs.CL2025

Attention Sinks in Diffusion Language Models

Maximo Eduardo Rulli, Simone Petruzzi, Edoardo Michielon +3

Masked Diffusion Language Models (DLMs) have recently emerged as a promising alternative to traditional Autoregressive Models (ARMs). DLMs employ transformer encoders with bidirect…

cs.CL2025

From KMMLU-Redux to KMMLU-Pro: A Professional Korean Benchmark Suite for LLM Evaluation

Seokhee Hong, Sunkyoung Kim, Guijin Son +3

The development of Large Language Models (LLMs) requires robust benchmarks that encompass not only academic domains but also industrial fields to effectively evaluate their applica…

cs.CL2025

Q-Filters: Leveraging QK Geometry for Efficient KV Cache Compression

Nathan Godey, Alessio Devoto, Yu Zhao +4

Autoregressive language models rely on a Key-Value (KV) Cache, which avoids re-computing past hidden states during generation, making it faster. As model sizes and context lengths…

cs.CL2025

Analysing the Residual Stream of Language Models Under Knowledge Conflicts

Yu Zhao, Xiaotang Du, Giwon Hong +6

Large language models (LLMs) can store a significant amount of factual knowledge in their parameters. However, their parametric knowledge may conflict with the information provided…

cs.CL2025

Steering Knowledge Selection Behaviours in LLMs via SAE-Based Representation Engineering

Yu Zhao, Alessio Devoto, Giwon Hong +6

Large language models (LLMs) can store a significant amount of factual knowledge in their parameters. However, their parametric knowledge may conflict with the information provided…

cs.CL2025

Are We Done with MMLU?

Aryo Pradipta Gema, Joshua Ong Jun Leang, Giwon Hong +13

Maybe not. We identify and analyse errors in the popular Massive Multitask Language Understanding (MMLU) benchmark. Even though MMLU is widely adopted, our analysis demonstrates nu…