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תוכן מסופק על ידי Dr. Andrew Clark & Sid Mangalik, Dr. Andrew Clark, and Sid Mangalik. כל תוכן הפודקאסטים כולל פרקים, גרפיקה ותיאורי פודקאסטים מועלים ומסופקים ישירות על ידי Dr. Andrew Clark & Sid Mangalik, Dr. Andrew Clark, and Sid Mangalik או שותף פלטפורמת הפודקאסט שלהם. אם אתה מאמין שמישהו משתמש ביצירה שלך המוגנת בזכויות יוצרים ללא רשותך, אתה יכול לעקוב אחר התהליך המתואר כאן https://he.player.fm/legal.
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Truth-based AI: LLMs and knowledge graphs - back to basics

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Manage episode 364830832 series 3475282
תוכן מסופק על ידי Dr. Andrew Clark & Sid Mangalik, Dr. Andrew Clark, and Sid Mangalik. כל תוכן הפודקאסטים כולל פרקים, גרפיקה ותיאורי פודקאסטים מועלים ומסופקים ישירות על ידי Dr. Andrew Clark & Sid Mangalik, Dr. Andrew Clark, and Sid Mangalik או שותף פלטפורמת הפודקאסט שלהם. אם אתה מאמין שמישהו משתמש ביצירה שלך המוגנת בזכויות יוצרים ללא רשותך, אתה יכול לעקוב אחר התהליך המתואר כאן https://he.player.fm/legal.

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.

What did you think? Let us know.

Good AI Needs Great Governance
Define, manage, and automate your AI model governance lifecycle from policy to proof.
Disclaimer: This post contains affiliate links. If you make a purchase, I may receive a commission at no extra cost to you.
Do you have a question or a discussion topic for the AI Fundamentalists? Connect with them to comment on your favorite topics:

  • LinkedIn - Episode summaries, shares of cited articles, and more.
  • YouTube - Was it something that we said? Good. Share your favorite quotes.
  • Visit our page - see past episodes and submit your feedback! It continues to inspire future episodes.
  continue reading

32 פרקים

Artwork
iconשתפו
 
Manage episode 364830832 series 3475282
תוכן מסופק על ידי Dr. Andrew Clark & Sid Mangalik, Dr. Andrew Clark, and Sid Mangalik. כל תוכן הפודקאסטים כולל פרקים, גרפיקה ותיאורי פודקאסטים מועלים ומסופקים ישירות על ידי Dr. Andrew Clark & Sid Mangalik, Dr. Andrew Clark, and Sid Mangalik או שותף פלטפורמת הפודקאסט שלהם. אם אתה מאמין שמישהו משתמש ביצירה שלך המוגנת בזכויות יוצרים ללא רשותך, אתה יכול לעקוב אחר התהליך המתואר כאן https://he.player.fm/legal.

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.

What did you think? Let us know.

Good AI Needs Great Governance
Define, manage, and automate your AI model governance lifecycle from policy to proof.
Disclaimer: This post contains affiliate links. If you make a purchase, I may receive a commission at no extra cost to you.
Do you have a question or a discussion topic for the AI Fundamentalists? Connect with them to comment on your favorite topics:

  • LinkedIn - Episode summaries, shares of cited articles, and more.
  • YouTube - Was it something that we said? Good. Share your favorite quotes.
  • Visit our page - see past episodes and submit your feedback! It continues to inspire future episodes.
  continue reading

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