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Pascale Fung

Hong Kong University of Science and Technology

dataset

robustness

framing bias

multi-document summarizaiton

low-resource

multilingual

bias mitigation

adversarial attack

evaluation

dialogue

code-mixing

fine-tuning

benchmark

knowledge distillation

language models

27

presentations

93

number of views

SHORT BIO

Pascale Fung is a Chair Professor at the Department of Electronic & Computer Engineering at The Hong Kong University of Science & Technology (HKUST), and a visiting professor at the Central Academy of Fine Arts in Beijing. She is the Director of HKUST Centre for AI Research (CAiRE) at HKUST. She is a Fellow of the AAAI, ACL, IEEE and ISCA. She is an expert on the Global Future Council for AI of the World Economic Forum. She represents HKUST on Partnership on AI to Benefit People and Society. She is on the Board of Governors of the IEEE Signal Processing Society. She is a member of the IEEE Working Group to develop an IEEE standard – Recommended Practice for Organizational Governance of Artificial Intelligence. She was the Distinguished Consultant on RAI at Meta in 2022 and a Faculty Visiting Researcher at Google in fall 2023. She served as Editor and Associate Editor for Computer Speech and Language, IEEE/ACM Transactions on Audio, Speech and Language Processing, Transactions for ACL, Journal of Machine Learning and others. Her team has won several best and outstanding paper awards at ACL, ACL and NeurIPS workshops. She is listed as one of the Forbes 50 over 50 Asia 2024.

Presentations

Measuring Political Bias in Large Language Models: What Is Said and How It Is Said

Yejin Bang and 3 other authors

Flatness-Aware Gradient Descent for Safe Conversational AI

Leila Khalatbari and 3 other authors

LLMs Are Few-Shot In-Context Low-Resource Language Learners

Samuel Cahyawijaya and 2 other authors

AAAI Invited Talk: Machines Make Up Stuff: Why Do Generative Models Hallucinate?

Pascale Fung

Mitigating Framing Bias with Polarity Minimization Loss

Yejin Bang and 2 other authors

RoAST: Robustifying Language Models via Adversarial Perturbation with Selective Training

Jaehyung Kim and 9 other authors

Contrastive Learning for Inference in Dialogue | VIDEO

Etsuko Ishii and 6 other authors

Mitigating Framing Bias with Polarity Minimization Loss | VIDEO

Yejin Bang and 2 other authors

A Multitask, Multilingual, Multimodal Evaluation of ChatGPT on Reasoning, Hallucination, and Interactivity

Yejin Bang and 12 other authors

PICK: Polished & Informed Candidate Scoring for Knowledge-Grounded Dialogue Systems

Bryan Wilie and 5 other authors

Enabling Classifiers to Make Judgements Explicitly Aligned with Human Values

Yejin Bang and 5 other authors

Plausible May Not Be Faithful: Probing Object Hallucination in Vision-Language Pre-training

Wenliang Dai and 4 other authors

NusaX: Multilingual Parallel Sentiment Dataset for 10 Indonesian Local Languages

Genta Indra Winata and 9 other authors

IndoRobusta: Towards Robustness Against Diverse Code-Mixed Indonesian Local Languages

Muhammad Adilazuarda and 4 other authors

NeuS: Neutral Multi-News Summarization for Mitigating Framing Bias

Nayeon Lee and 4 other authors

SNP2Vec: Scalable Self-Supervised Pre-Training for Genome-Wide Association Study

Samuel Cahyawijaya and 6 other authors

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