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20202025
most citedERGO: Event Relational Graph Transformer for Document-level Event Causality Identification

16 citations · 49 across the 9 of their papers we have counts for

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9 papers · 1 filter

cs.CL2025

EconProver: Towards More Economical Test-Time Scaling for Automated Theorem Proving

Mukai Li, Linfeng Song, Zhenwen Liang +5

Large Language Models (LLMs) have recently advanced the field of Automated Theorem Proving (ATP), attaining substantial performance gains through widely adopted test-time scaling s…

cs.CL2024

Scaling Diffusion Language Models via Adaptation from Autoregressive Models

Shansan Gong, Shivam Agarwal, Yizhe Zhang +9

Diffusion Language Models (DLMs) have emerged as a promising new paradigm for text generative modeling, potentially addressing limitations of autoregressive (AR) models. However, c…

cs.CL2023

L-Eval: Instituting Standardized Evaluation for Long Context Language Models

Chenxin An, Shansan Gong, Ming Zhong +5

Recently, there has been growing interest in extending the context length of large language models (LLMs), aiming to effectively process long inputs of one turn or conversations wi…

cs.CL20235 cited

In-Context Learning with Many Demonstration Examples

Mukai Li, Shansan Gong, Jiangtao Feng +4

Large pre-training language models (PLMs) have shown promising in-context learning abilities. However, due to the backbone transformer architecture, existing PLMs are bottlenecked…

cs.CL202216 cited

ERGO: Event Relational Graph Transformer for Document-level Event Causality Identification

Meiqi Chen, Yixin Cao, Kunquan Deng +4

Document-level Event Causality Identification (DECI) aims to identify causal relations between event pairs in a document. It poses a great challenge of across-sentence reasoning wi…

cs.CL2022

Prompt for Extraction? PAIE: Prompting Argument Interaction for Event Argument Extraction

Yubo Ma, Zehao Wang, Yixin Cao +4

In this paper, we propose an effective yet efficient model PAIE for both sentence-level and document-level Event Argument Extraction (EAE), which also generalizes well when there i…