Simon J.D. Prince's Avatar

Simon J.D. Prince

@simonprinceai.bsky.social

Author of "Understanding Deep Learning". http://udlbook.com

139 Followers  |  16 Following  |  11 Posts  |  Joined: 22.11.2024  |  1.5458

Latest posts by simonprinceai.bsky.social on Bluesky

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Wow. Understanding Deep Learning has now been downloaded half a million times. Thank you so much everyone! I was overjoyed when it hit 100k so this is completely mindblowing. I'm so thrilled that people are finding it useful.

23.06.2025 20:52 β€” πŸ‘ 4    πŸ” 0    πŸ’¬ 0    πŸ“Œ 0
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Exciting news! @travislacroix.bsky.social (who co-wrote the chapter on ethics in Understand Deep Learning) has a new book out "AI and Value Alignment". Recommended for anyone serious about ethics and AI. Details at:

value-alignment.github.io

Buy it here:

broadviewpress.com/product/arti...

02.04.2025 20:21 β€” πŸ‘ 3    πŸ” 0    πŸ’¬ 0    πŸ“Œ 0

Oh... annoying.

06.03.2025 21:46 β€” πŸ‘ 1    πŸ” 0    πŸ’¬ 0    πŸ“Œ 0
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Here is part III of my series for @RBCBorealis on ODEs and SDEs in machine learning. This article develops methods for solving first-order ODEs in closed form; we divide ODEs into different families and develop approaches to solve each family.

rbcborealis.com/research-blo...

20.02.2025 20:39 β€” πŸ‘ 3    πŸ” 0    πŸ’¬ 0    πŸ“Œ 0
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Here's the 2nd part of my series on ODEs and SDEs in ML. This article introduces ODEs and is suitable for novices:

rbcborealis.com/research-blo...

We describe ODEs, vector ODEs and PDEs and categorize ODEs by how their solutions are related. We describe conditions for an ODE to have a solution.

18.02.2025 21:25 β€” πŸ‘ 8    πŸ” 1    πŸ’¬ 0    πŸ“Œ 0
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I'm starting a series of articles on ODEs and SDEs in ML for RBCBorealis. I'll describe ODEs and SDEs from first principles without assuming prior knowledge and present applications including neural ODEs, and diffusion models.

Part I: rbcborealis.com/research-blo.... Follow for parts II & III.

05.02.2025 19:47 β€” πŸ‘ 3    πŸ” 0    πŸ’¬ 0    πŸ“Œ 0
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These blogs for RBC Borealis consider infinite-width neural networks from 4 viewpoints. We use gradient descent or a Bayesian approach, and, for each, we focus on either the weights or output function. This leads to the Neural Tangent Kernel, Bayesian NNs and NNGPs. Enjoy!

tinyurl.com/yfsts565

03.02.2025 21:40 β€” πŸ‘ 3    πŸ” 2    πŸ’¬ 0    πŸ“Œ 0
Understanding Deep Learning

Learning or teaching from my book (udlbook.com)? I have now added the complete bibfile (which is accurate and took ages to make) and the LaTeX for all of the equations (helpful if you are making slides).

23.01.2025 21:58 β€” πŸ‘ 7    πŸ” 2    πŸ’¬ 0    πŸ“Œ 0
How I'd learn ML in 2025 (if I could start over)
YouTube video by Boris Meinardus How I'd learn ML in 2025 (if I could start over)

Boris Meinardus: How I'd learn ML in 2025 (if I could start over) www.youtube.com/watch?v=_xIw....

(me too πŸ˜„)

05.01.2025 21:25 β€” πŸ‘ 2    πŸ” 1    πŸ’¬ 0    πŸ“Œ 0
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Tutorial 4 of 4 on Bayesian methods in ML for RBC Borealis
concerns Neural Network Gaussian Processes:

rbcborealis.com/research-blo...

Think your network might perform better if you increased the width? NNGPs are networks with INFINITE width! Includes code and links to background info on GPs.

12.12.2024 15:13 β€” πŸ‘ 2    πŸ” 0    πŸ’¬ 0    πŸ“Œ 0
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Blog 3 of 4 on Bayesian methods in ML for RBC Borealis concerns Bayesian Neural Networks (i.e., Bayesian methods for NNs from a parameter-space perspective):

rbcborealis.com/research-blo...

Parts 1 and 2 (linked in article) introduced Bayesian methods. Coming soon in part 4: NNGPs

22.11.2024 20:33 β€” πŸ‘ 3    πŸ” 0    πŸ’¬ 0    πŸ“Œ 0

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