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20172024
most citedGraph-based Neural Multi-Document Summarization

49 citations · 92 across the 11 of their papers we have counts for

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29 papers · 1 filter

cs.CL2024

Direct-Inverse Prompting: Analyzing LLMs' Discriminative Capacity in Self-Improving Generation

Jihyun Janice Ahn, Ryo Kamoi, Lu Cheng +2

Mainstream LLM research has primarily focused on enhancing their generative capabilities. However, even the most advanced LLMs experience uncertainty in their outputs, often produc…

cs.CL2024

When Can LLMs Actually Correct Their Own Mistakes? A Critical Survey of Self-Correction of LLMs

Ryo Kamoi, Yusen Zhang, Nan Zhang +2

Self-correction is an approach to improving responses from large language models (LLMs) by refining the responses using LLMs during inference. Prior work has proposed various self-…

cs.CL2024

Pruning as a Domain-specific LLM Extractor

Nan Zhang, Yanchi Liu, Xujiang Zhao +5

Large Language Models (LLMs) have exhibited remarkable proficiency across a wide array of NLP tasks. However, the escalation in model size also engenders substantial deployment cos…

cs.CL2024

Evaluating LLMs at Detecting Errors in LLM Responses

Ryo Kamoi, Sarkar Snigdha Sarathi Das, Renze Lou +12

With Large Language Models (LLMs) being widely used across various tasks, detecting errors in their responses is increasingly crucial. However, little research has been conducted o…

cs.CL2024

Large Language Models for Mathematical Reasoning: Progresses and Challenges

Janice Ahn, Rishu Verma, Renze Lou +3

Mathematical reasoning serves as a cornerstone for assessing the fundamental cognitive capabilities of human intelligence. In recent times, there has been a notable surge in the de…

cs.CL20242 cited

MT-Ranker: Reference-free machine translation evaluation by inter-system ranking

Ibraheem Muhammad Moosa, Rui Zhang, Wenpeng Yin

Traditionally, Machine Translation (MT) Evaluation has been treated as a regression problem -- producing an absolute translation-quality score. This approach has two limitations: i…