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sbbq

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PyTorch in One Hour: From Tensors to Training Neural Networks on Multiple GPUs

sebastianraschka.com
4 points·by sbbq·в прошлом году·0 comments

Intermediate ML and AI questions and answers for interview prep

sebastianraschka.com
3 points·by sbbq·в прошлом году·0 comments

Qwen3 Implemented from Scratch

github.com
3 points·by sbbq·в прошлом году·0 comments

Understanding and Coding the KV Cache in LLMs from Scratch

sebastianraschka.com
6 points·by sbbq·в прошлом году·0 comments

Coding LLMs from the Ground Up: A Complete Course

sebastianraschka.com
4 points·by sbbq·в прошлом году·0 comments

The State of Reasoning Models

magazine.sebastianraschka.com
4 points·by sbbq·в прошлом году·0 comments

Understanding Reasoning LLMs

sebastianraschka.com
4 points·by sbbq·в прошлом году·0 comments

Implementing a Byte Pair Encoding (BPE) Tokenizer from Scratch

sebastianraschka.com
4 points·by sbbq·в прошлом году·0 comments

AI Research Recap 2024: From New Scaling Laws to Scaling Inference Compute

magazine.sebastianraschka.com
1 points·by sbbq·в прошлом году·0 comments

Noteworthy AI Research Papers of 2024 (Part One)

magazine.sebastianraschka.com
1 points·by sbbq·2 года назад·0 comments

Collection of 1k LLM Research Papers of 2024

sebastianraschka.com
4 points·by sbbq·2 года назад·0 comments

Understanding Multimodal LLMs: The Main Techniques and Latest Models

sebastianraschka.com
4 points·by sbbq·2 года назад·0 comments

Implementing the Llama 3.2 1B and 3B Architectures from Scratch

github.com
5 points·by sbbq·2 года назад·0 comments

Converting GPT to Llama step-by-step code guide

github.com
2 points·by sbbq·2 года назад·0 comments

New LLM Pre-Training and Post-Training Paradigms: How Modern LLMs Are Trained

magazine.sebastianraschka.com
5 points·by sbbq·2 года назад·0 comments

LLM instruction finetuning from-scratch tutorial

github.com
2 points·by sbbq·2 года назад·0 comments

Tips for LLM Pretraining and Evaluating Reward Models

magazine.sebastianraschka.com
2 points·by sbbq·2 года назад·0 comments

Sharing Deep Learning Research Models: Building a Super Resolution App

sebastianraschka.com
3 points·by sbbq·4 года назад·0 comments

Taking Datasets, DataLoaders, and PyTorch’s New DataPipes for a Spin

sebastianraschka.com
2 points·by sbbq·4 года назад·0 comments

Running PyTorch on the M1 GPU

sebastianraschka.com
2 points·by sbbq·4 года назад·0 comments

comments

sbbq
·9 месяцев назад·discuss
The chips are great. Now they just need to improve the quite stagnant laptop hardware to go with it.
sbbq
·в прошлом году·discuss
I got my first switch in 2017 and still use it as my main console. I used to be a hardcore gamer but as I got older approaching my 40s I appreciate its simplicity and catalog. I game occasionally, maybe 2 hours a week, and it allows me to use it on the couch, bed, favorite chair, whereever I feel most comfortable and relaxed after an intense day of work. That being said, i was excited about a new Switch and must say that I was a bit disappointed because Nintendo always came out with a big surprise regarding their new console designs. On the other hand, I am also just happy that it still retains the handheld form-factor and focus because that's exactly what I love about the original Switch.
sbbq
·3 года назад·discuss
*At Home
sbbq
·3 года назад·discuss
Everyone is buying up H100's (and A100's if they can't find H100's). Sure, in 18 month people may lose interest in buying H100's but then there will already be the next Nvidia model everyone wants to buy to get ahead of the competition in terms of compute capabilities.
sbbq
·3 года назад·discuss
Bluetooth ususally works pretty reliably for me these days. However, if you connect a larger number of bluetooth devices (headphones, mouse, keyboard, trackpad, etc.) it can become a bit flaky.

Since you don't move keyboards like a mouse or headphones, it helps reduce the number of peripheries connected to your computer, which in turn helps with bluetooth connectivity issues if you have a lot of devices connected.

Oh, and it's one fewer thing to charge.
sbbq
·4 года назад·discuss
I think Rapids AI's cuML tried to go into this direction (essentially scikit-learn on the GPU): https://docs.rapids.ai/api/cuml/stable/api.html#logistic-reg.... For some reason it never took really off though.

Btw., going on a tangent, you might like Hummingbird (https://github.com/microsoft/hummingbird). It allows you trained scikit-learn tree-based models to PyTorch. I watched the SciPy talk last year, and it's a super smart & elegant idea.
sbbq
·4 года назад·discuss
Author here. I agree with what you said. I wrote my first book with Packt back when I was a student and was like: "cool, a book deal!" Of course, I didn't know about the caveats :P. Yeah, there was very low (/no) quality control. In fact, they introduced a lot of typos during the layouting (apparently, they re-typed the equations by hand!). However, despite all of that, the book was quite successful, so for the subsequent editions, they gave my book much more attention. Personally, I also got much more flexibility regarding deadlines, etc.

Long story short, yeah, there are definitely issues with quality control, and it's really up to the author to make sure that the content is correct and sound. For this particular book, I must say that I worked with a great layouter who paid a lot of attention to detail this time. Also, with their new layout, they no longer had to re-type the equations, and the typesetting looks so much better now. I am pretty happy with how it turned out this time :)