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cs.CL2026

More Computational Resources Do Not Ensure Higher Scholarly Impact: Evidence from Leading NLP Conference Papers

Shuai Chen, Tong Bao, Jitong Peng +1

Computational resources are increasingly central to NLP research, but how closely reported GPU capability aligns with scholarly impact remains unclear. We analyze 13,921 ACL, EMNLP…

cs.CL2026

Enhancing Scientific Named Entity Recognition via Large Language Models: A Type-driven Multi-task Learning Approach

Tong Bao, Yi Zhao, Heng Zhang +1

Scientific named entity recognition (SciNER) plays a crucial role in information extraction and knowledge discovery from scientific texts. Recently, large language models (LLMs) ha…

cs.CL2026

Impact of large language models on peer review opinions from a fine-grained perspective: Evidence from top conference proceedings in AI

Wenqing Wu, Chengzhi Zhang, Yi Zhao +1

With the rapid advancement of Large Language Models (LLMs), the academic community has faced unprecedented disruptions, particularly in the realm of academic communication. The pri…

cs.CL2025

SurveyGen: Quality-Aware Scientific Survey Generation with Large Language Models

Tong Bao, Mir Tafseer Nayeem, Davood Rafiei +1

Automatic survey generation has emerged as a key task in scientific document processing. While large language models (LLMs) have shown promise in generating survey texts, the lack…

cs.CL2025

SC4ANM: Identifying Optimal Section Combinations for Automated Novelty Prediction in Academic Papers

Wenqing Wu, Chengzhi Zhang, Tong Bao +1

Novelty is a core component of academic papers, and there are multiple perspectives on the assessment of novelty. Existing methods often focus on word or entity combinations, which…

cs.CL2025

Enhancing Abstractive Summarization of Scientific Papers Using Structure Information

Tong Bao, Heng Zhang, Chengzhi Zhang

Abstractive summarization of scientific papers has always been a research focus, yet existing methods face two main challenges. First, most summarization models rely on Encoder-Dec…