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Abhinav Chinta

3 accepted papers

2025

Premise-Augmented Reasoning Chains Improve Error Identification in Math reasoning with LLMs

ICML 2025poster

Chain-of-Thought (CoT) prompting enhances mathematical reasoning in large language models (LLMs) by enabling detailed step-by-step solutions. However, due to the verbosity of LLMs, the resulting reasoning chains can be long, making it harder to verify the reasoning steps and trace issues resulting f…

Cited by 1SourcePDFScholar
2023

Democratizing LLMs: An Exploration of Cost-Performance Trade-offs in Self-Refined Open-Source Models

EMNLP 2023long findings

The dominance of proprietary LLMs has led to restricted access and raised information privacy concerns. The SoTA open-source alternatives are crucial for information-sensitive and high-volume applications but often lag behind in performance. To address this gap, we propose (1) A generalized variant…

Cited by 0SourceScholar