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20242026
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cs.CL2025

SoAy: A Solution-based LLM API-using Methodology for Academic Information Seeking

Yuanchun Wang, Jifan Yu, Zijun Yao +13

Applying large language models (LLMs) for academic API usage shows promise in reducing researchers' academic information seeking efforts. However, current LLM API-using methods str…

cs.CL2025

CoT-based Synthesizer: Enhancing LLM Performance through Answer Synthesis

Bohan Zhang, Xiaokang Zhang, Jing Zhang +3

Current inference scaling methods, such as Self-consistency and Best-of-N, have proven effective in improving the accuracy of LLMs on complex reasoning tasks. However, these method…

cs.CL2025

TableLLM: Enabling Tabular Data Manipulation by LLMs in Real Office Usage Scenarios

Xiaokang Zhang, Sijia Luo, Bohan Zhang +12

We introduce TableLLM, a robust large language model (LLM) with 8 billion parameters, purpose-built for proficiently handling tabular data manipulation tasks, whether they are embe…

cs.CL2025

Dynamic Scaling of Unit Tests for Code Reward Modeling

Zeyao Ma, Xiaokang Zhang, Jing Zhang +3

Current large language models (LLMs) often struggle to produce accurate responses on the first attempt for complex reasoning tasks like code generation. Prior research tackles this…

cs.CL2024

SpreadsheetBench: Towards Challenging Real World Spreadsheet Manipulation

Zeyao Ma, Bohan Zhang, Jing Zhang +6

We introduce SpreadsheetBench, a challenging spreadsheet manipulation benchmark exclusively derived from real-world scenarios, designed to immerse current large language models (LL…

cs.CL2024

Transferable and Efficient Non-Factual Content Detection via Probe Training with Offline Consistency Checking

Xiaokang Zhang, Zijun Yao, Jing Zhang +4

Detecting non-factual content is a longstanding goal to increase the trustworthiness of large language models (LLMs) generations. Current factuality probes, trained using humananno…