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Yulan He

Researcher at University of Warwick

Publications -  249
Citations -  8784

Yulan He is an academic researcher from University of Warwick. The author has contributed to research in topics: Computer science & Sentiment analysis. The author has an hindex of 42, co-authored 181 publications receiving 7411 citations. Previous affiliations of Yulan He include University of Cambridge & Open University.

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PHEE: A Dataset for Pharmacovigilance Event Extraction from Text

TL;DR: PHEE is presented, a novel dataset for pharmacovigilance comprising over 5000 annotated events from medical case reports and biomedical literature, making it the largest such public dataset to date and a thorough experimental evaluation of current state-of-theart approaches for biomedical event extraction is presented.
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Addressing Token Uniformity in Transformers via Singular Value Transformation

TL;DR: This paper proposes to use the distribution of singular values of outputs of each transformer layer to characterise the phenomenon of token uniformity and empirically illustrate that a less skewed singular value distribution can alleviate the ‘token uniformity’ problem.
Proceedings ArticleDOI

Natural Language Inference with Self-Attention for Veracity Assessment of Pandemic Claims

TL;DR: A comprehensive work on automated veracity assessment from dataset creation to developing novel methods based on Natural Language Inference, focusing on misinformation related to the COVID-19 pandemic, and proposed techniques including graph convolutional networks and attention based approaches.
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A Hybrid Generative/Discriminative Framework to Train a Semantic Parser from an Un-annotated Corpus

TL;DR: A hybrid generative/discriminative framework for semantic parsing which combines the hidden vector state (HVS) model and the hidden Markov support vector machines (HM-SVMs) gave a comparable performance with only a small set of lightly annotated sentences.
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A Large-Scale English Multi-Label Twitter Dataset for Cyberbullying and Online Abuse Detection

TL;DR: A new English Twitter-based dataset for cyberbullying detection and online abuse, sourced from Twitter using specific query terms designed to retrieve tweets with high probabilities of various forms of bullying and offensive content, is introduced.