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THE AI READING LIST

Ilya’s 30 papers as audio

If you really learn all of these, you’ll know 90% of what matters today.

Ilya Sutskever to John Carmack
  1. 01
    Scaling Laws for Neural Language Models

    Jared Kaplan et al. (OpenAI) · 2020

    Paper
  2. 02
    Relational Recurrent Neural Networks

    Adam Santoro et al. (DeepMind) · 2018

    Paper
  3. 03
  4. 04
    Attention Is All You Need

    Ashish Vaswani et al. (Google) · 2017

    Paper
  5. 05
    A Simple Neural Network Module for Relational Reasoning

    Adam Santoro et al. (DeepMind) · 2017

    Paper
  6. 06
    Neural Message Passing for Quantum Chemistry

    Justin Gilmer et al. (Google) · 2017

    Paper
  7. 07
    Identity Mappings in Deep Residual Networks

    Kaiming He, Xiangyu Zhang, Shaoqing Ren, Jian Sun · 2016

    Paper
  8. 08
    Variational Lossy Autoencoder

    Xi Chen et al. (OpenAI) · 2016

    Paper
  9. 09
  10. 10
    Understanding LSTM Networks

    Christopher Olah · 2015

    Article
  11. 11
    Deep Residual Learning for Image Recognition

    Kaiming He, Xiangyu Zhang, Shaoqing Ren, Jian Sun · 2015

    Paper
  12. 12
    Multi-Scale Context Aggregation by Dilated Convolutions

    Fisher Yu, Vladlen Koltun · 2015

    Paper
  13. 13
    Deep Speech 2: End-to-End Speech Recognition in English and Mandarin

    Dario Amodei et al. (Baidu Research) · 2015

    Paper
  14. 14
    Order Matters: Sequence to Sequence for Sets

    Oriol Vinyals, Samy Bengio, Manjunath Kudlur · 2015

    Paper
  15. 15
    Pointer Networks

    Oriol Vinyals, Meire Fortunato, Navdeep Jaitly · 2015

    Paper
  16. 16
    Recurrent Neural Network Regularization

    Wojciech Zaremba, Ilya Sutskever, Oriol Vinyals · 2014

    Paper
  17. 17
    Neural Machine Translation by Jointly Learning to Align and Translate

    Dzmitry Bahdanau, Kyunghyun Cho, Yoshua Bengio · 2014

    Paper
  18. 18
    Neural Turing Machines

    Alex Graves, Greg Wayne, Ivo Danihelka · 2014

    Paper
  19. 19
    Quantifying the Rise and Fall of Complexity in Closed Systems: The Coffee Automaton

    Scott Aaronson, Sean Carroll, Lauren Ouellette · 2014

    Paper
  20. 20
    ImageNet Classification with Deep Convolutional Neural Networks

    Alex Krizhevsky, Ilya Sutskever, Geoffrey Hinton · 2012

    Paper
  21. 21
    The First Law of Complexodynamics

    Scott Aaronson · 2011

    Article
  22. 22

ALSO ON THE LIST

Read the remaining works at the source

These courses, books, and code-heavy pieces do not currently have a ListenDock audio episode.

THE STORY

When legendary game programmer John Carmack decided to move into AI, he asked OpenAI co-founder Ilya Sutskever what he should read. Ilya handed him a list of around thirty works and said that learning them would cover 90% of what matters in modern deep learning.

The version circulated today was reconstructed by the community. It is a coherent tour from convolutional and recurrent nets, through attention and Transformers, to scaling laws and the information-theoretic roots of learning.

Sources: community reading list, Aman’s AI Journal, and Ilya’s List.

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