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20192024
most citedSeed Word Selection for Weakly-Supervised Text Classification with Unsupervised Error Estimation

2 citations · 2 across the 2 of their papers we have counts for

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7 papers · 1 filter

cs.CL2024

Disentangling Hate Across Target Identities

Yiping Jin, Leo Wanner, Aneesh Moideen Koya

Hate speech (HS) classifiers do not perform equally well in detecting hateful expressions towards different target identities. They also demonstrate systematic biases in predicted…

cs.CL2024

ARAIDA: Analogical Reasoning-Augmented Interactive Data Annotation

Chen Huang, Yiping Jin, Ilija Ilievski +2

Human annotation is a time-consuming task that requires a significant amount of effort. To address this issue, interactive data annotation utilizes an annotation model to provide s…

cs.CL2024

GPT-HateCheck: Can LLMs Write Better Functional Tests for Hate Speech Detection?

Yiping Jin, Leo Wanner, Alexander Shvets

Online hate detection suffers from biases incurred in data sampling, annotation, and model pre-training. Therefore, measuring the averaged performance over all examples in held-out…

cs.CL2023

Towards Weakly-Supervised Hate Speech Classification Across Datasets

Yiping Jin, Leo Wanner, Vishakha Laxman Kadam +1

As pointed out by several scholars, current research on hate speech (HS) recognition is characterized by unsystematic data creation strategies and diverging annotation schemata. Su…

cs.CL20212 cited

Seed Word Selection for Weakly-Supervised Text Classification with Unsupervised Error Estimation

Yiping Jin, Akshay Bhatia, Dittaya Wanvarie

Weakly-supervised text classification aims to induce text classifiers from only a few user-provided seed words. The vast majority of previous work assumes high-quality seed words a…

cs.CL2021

Toward Improving Coherence and Diversity of Slogan Generation

Yiping Jin, Akshay Bhatia, Dittaya Wanvarie +1

Previous work in slogan generation focused on utilising slogan skeletons mined from existing slogans. While some generated slogans can be catchy, they are often not coherent with t…