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20242026
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cs.CL2026

Lexicalized Constituency Parsing for Middle Dutch: Low-resource Training and Cross-Domain Generalization

Yiming Liang, Fang Zhao

Recent years have seen growing interest in applying neural networks and contextualized word embeddings to the parsing of historical languages. However, most advances have focused o…

cs.CL2026

Encyclo-K: Evaluating LLMs with Dynamically Composed Knowledge Statements

Yiming Liang, Yizhi Li, Yantao Du +14

Benchmarks play a crucial role in tracking the rapid advancement of large language models (LLMs) and identifying their capability boundaries. However, existing benchmarks predomina…

cs.CL2025

OmniBench: Towards The Future of Universal Omni-Language Models

Yizhi Li, Yinghao Ma, Ge Zhang +20

Recent advancements in multimodal large language models (MLLMs) have aimed to integrate and interpret data across diverse modalities. However, the capacity of these models to concu…

cs.CL2025

SuperGPQA: Scaling LLM Evaluation across 285 Graduate Disciplines

P Team, Xinrun Du, Yifan Yao +94

Large language models (LLMs) have demonstrated remarkable proficiency in mainstream academic disciplines such as mathematics, physics, and computer science. However, human knowledg…

cs.CL2024

I-SHEEP: Self-Alignment of LLM from Scratch through an Iterative Self-Enhancement Paradigm

Yiming Liang, Ge Zhang, Xingwei Qu +9

Large Language Models (LLMs) have achieved significant advancements, however, the common learning paradigm treats LLMs as passive information repositories, neglecting their potenti…

cs.CL2024

TEGEE: Task dEfinition Guided Expert Ensembling for Generalizable and Few-shot Learning

Xingwei Qu, Yiming Liang, Yucheng Wang +10

Large Language Models (LLMs) exhibit the ability to perform in-context learning (ICL), where they acquire new tasks directly from examples provided in demonstrations. This process…