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20222024
most citedMUFFIN: Curating Multi-Faceted Instructions for Improving Instruction-Following

4 citations · 10 across the 5 of their papers we have counts for

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5 papers · 1 filter

cs.CL2024★ 3 cited

AAAR-1.0: Assessing AI's Potential to Assist Research

Renze Lou, Hanzi Xu, Sijia Wang +15

Numerous studies have assessed the proficiency of AI systems, particularly large language models (LLMs), in facilitating everyday tasks such as email writing, question answering, a…

cs.CL2024★ 1 cited

LLMs' Classification Performance is Overclaimed

Hanzi Xu, Renze Lou, Jiangshu Du +6

In many classification tasks designed for AI or human to solve, gold labels are typically included within the label space by default, often posed as "which of the following is corr…

cs.CL2024

X-Shot: A Unified System to Handle Frequent, Few-shot and Zero-shot Learning Simultaneously in Classification

Hanzi Xu, Muhao Chen, Lifu Huang +2

In recent years, few-shot and zero-shot learning, which learn to predict labels with limited annotated instances, have garnered significant attention. Traditional approaches often…

cs.CL2023★ 4 cited

MUFFIN: Curating Multi-Faceted Instructions for Improving Instruction-Following

Renze Lou, Kai Zhang, Jian Xie +5

In the realm of large language models (LLMs), enhancing instruction-following capability often involves curating expansive training data. This is achieved through two primary schem…

cs.CL2022★ 2 cited

OpenStance: Real-world Zero-shot Stance Detection

Hanzi Xu, Slobodan Vucetic, Wenpeng Yin

Prior studies of zero-shot stance detection identify the attitude of texts towards unseen topics occurring in the same document corpus. Such task formulation has three limitations:…