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Start 5 June 2026 18:58

Einde 5 June 2026

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LLMs for More Reliable Small Data Learning - Lecture 43

Explore how Large Language Models can enhance learning from limited datasets, focusing on reliability and effectiveness in small data scenarios with Prof. Sean Gong.
AI Doctoral Academy via YouTube

AI Doctoral Academy

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1 hour 14 minutes

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Overzicht

Explore how Large Language Models can enhance learning from limited datasets, focusing on reliability and effectiveness in small data scenarios with Prof. Sean Gong.

Lesprogramma

  • Introduction to Large Language Models (LLMs)
  • Overview of LLM capabilities
    Historical development and underlying architecture
  • Challenges of Small Data Learning
  • Limitations and issues of small datasets
    Importance of reliability and accuracy in small data scenarios
  • Leveraging LLMs for Small Data
  • Techniques for enhancing model reliability
    Transfer learning and fine-tuning strategies
  • Data Augmentation with LLMs
  • Methods to synthesize data effectively
    Case studies and examples of augmentation success
  • Model Generalization in Small Data Contexts
  • Strategies to ensure model robustness
    Avoiding overfitting with limited data
  • Evaluation Metrics for Small Data Learning
  • Choosing the right metrics for reliability
    Comparative analysis with traditional methods
  • Ethical and Practical Considerations
  • Addressing biases inherent in small data
    Ensuring ethical deployment of AI models
  • Case Studies and Applications
  • Real-world examples demonstrating LLM effectiveness
    Discussion on cross-industry applications
  • Q&A with Prof. Sean Gong
  • In-depth discussion on specific questions
    Future trends and research directions in LLMs and small data
  • Conclusion
  • Summary of key learnings
    Resources for further reading and study
  • Closing remarks by Prof. Sean Gong

Vakgebieden

Data Science