The AI Fundamentalists

Truth-based AI: LLMs and knowledge graphs - back to basics


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Truth-based AI: Large language models (LLMs) and knowledge graphs - The AI Fundamentalists, Episode 2


Show Notes

  • What’s NOT new and what is new in the world of LLMs. 3:10
    •  Getting back to the basics of modeling best practices and rigor.
  • What is AI and subsequently LLM regulation going to look like for tech organizations? 5:55
    • Recommendations for reading on the topic.
    • Andrew talks about regulation, monitoring, assurance, and alarm.
  • What does it mean to regulate generative AI models? 7:51
    • Concerns with regulating generative AI models.
    • Concerns about the call for regulation from Open AI.
  • What is data privacy going to look like in the future? 10:16
    • Regulation of AI models and data privacy.
    • The NIST AI Risk Management Framework.
    • Making sure it's being used as a productivity tool.
    • How it's different from existing processes.
  • What’s different about these models vs old models? 15:07
    • Public perception of new machine learning models vs old models.
    • Hallucination in the field.
  • Does the use of chatbots change the tendency toward hallucinations? 17:27
    • Bing still suffers from the same problem with their LLMs.
    • Multi-objective modeling and multi-language modeling.
  • What does truth-based AI look like? 20:17
    • Public perception vs. modeling best practices
    • Knowledge graphs vs. generative AI: ideal use cases for each
  • Algorithms have a really interesting potential application which is a plugin library model. 23:00
    • Algorithms have an interesting potential application.
    • The benefits of a plugin library model.
  • What’s the future of large language models? 25:35
    • Practical uses for ML and knowledge base knowledge databases.
    • Predictions on ML and ML-based databases.
    • Finding a way to make LLM useful.
    • Next episodes of the podcast.


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The AI FundamentalistsBy Dr. Andrew Clark & Sid Mangalik

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