- ๐ญ Hello! I am a final-year PhD Candidate in computer science at HKBU. My objective is to develop intelligent agents capable of interacting with both digital and physical environments. To break it down further:
- Foundation Models: Large Foundation Models, Models Alignment, etc.
- Applications: Foundation Models as Agents, Code Intelligence, etc.
- See my HomePage or Google Scholar for more about me and my research.
- ๐ซ Email: [email protected]
๐ป
Focusing
CS Ph.D. Candidate at HKBU, Hong Kong.
My research revolves around LLMs/LMMs.
(Ziyang Luo in Pinyin)
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Hong Kong Baptist University
- Hong Kong, China
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11:35
(UTC +08:00) - https://chiyeunglaw.github.io/
- @ChiYeung_Law
- https://www.zhihu.com/people/Chi-YeungLaw
Pinned Loading
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nlpxucan/WizardLM
nlpxucan/WizardLM PublicLLMs build upon Evol Insturct: WizardLM, WizardCoder, WizardMath
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LexLIP-ICCV23
LexLIP-ICCV23 PublicOfficial Code for the ICCV23 Paper: "LexLIP: Lexicon-Bottlenecked Language-Image Pre-Training for Large-Scale Image-Text Sparse Retrieval"
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HKBUNLP/Mr.Harm-EMNLP2023
HKBUNLP/Mr.Harm-EMNLP2023 PublicCode for our EMNLP 2023 paper - Beneath the Surface: Unveiling Harmful Memes with Multimodal Reasoning Distilled from Large Language Models
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HKBUNLP/ExplainHM-WWW2024
HKBUNLP/ExplainHM-WWW2024 PublicOfficial Code for the WWW'24 Paper: "Towards Explainable Harmful Meme Detection through Multimodal Debate between Large Language Models"
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CodeLLM-Research/CodeJudge-Eval
CodeLLM-Research/CodeJudge-Eval PublicCodeJudge-Eval: Can Large Language Models be Good Judges in Code Understanding?
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