Artificial Intelligence Privacy and Optimization Lab

Directed by Dr. Xinyue Zhang, our lab explores the intersection of artificial intelligence, privacy preservation, secure communications and quantum computing. We focus on federated learning, deep learning model compression, ensemble learning, explainable AI, and large language models (LLMs) to build trustworthy and efficient algorithms for tomorrow's intelligent systems.

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Artificial Intelligence

Artificial Intelligence

We investigate communication‑efficient federated learning, privacy preservation in machine learning, AI in medical applications and large language models.

Privacy

Privacy

Our work extends to secure wireless communications, cyber‑physical systems and data‑driven optimizations, ensuring that sensitive information remains protected.

Optimization

Optimization

We push the boundaries of quantum machine learning and explore privacy‑aware optimisation techniques for emerging computing platforms.

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Prospective Students

AIPO Lab is always looking for motivated Ph.D. students who are passionate about advancing the state of the art in secure and trustworthy artificial intelligence. If you are interested in joining our team, please visit our prospective students page for more information on how to apply.

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