Vahe Hagopian, Taka Hasegawa, Farrukh Rahman

Argmax

Science EN ↓ Odcinki: 17

A show where three machine learning enthusiasts talk about recent papers and developments in machine learning. Watch our video on YouTube https://www.youtube.com/@argmaxfm

Koniecznie odwiedź stronę podcastu i wesprzyj twórcę: www.argmax.fm

Autor

Vahe Hagopian, Taka Hasegawa, Farrukh Rahman

Kategoria

Science

Strona podcastu

www.argmax.fm

Ostatni odcinek

8 paź 2024

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Odcinki

Mixture of Experts 08.10.2024

In this episode we talk about the paper "Outrageously Large Neural Networks: The Sparsely-Gated Mixture-of-Experts Layer" by Noam Shazeer, Azalia Mirhoseini, Krzysztof Maziarz, Andy Davis, Quoc Le, Geoffrey Hinton, Jeff Dean.

LoRA 02.09.2023

We talk about Low Rank Approximation for fine tuning Transformers. We are also on YouTube now! Check out the video here: https://youtu.be/lLzHr0VFi3Y

15: InstructGPT 28.03.2023

In this episode we discuss the paper "Training language models to follow instructions with human feedback" by Ouyang et al (2022). We discuss the RLHF paradigm and how important RL is to tuning GPT.

14: Whisper 17.03.2023

This week we talk about Whisper. It is a weakly supervised speech recognition model.

13: AlphaTensor 11.03.2023

We talk about AlphaTensor, and how researchers were able to find a new algorithm for matrix multiplication.

12: SIRENs 25.10.2022

In this episode we talked about "Implicit Neural Representations with Periodic Activation Functions" and the strength of periodic non-linearities.

11: CVPR Workshop on Autonomous Driving Keynote by Ashok Elluswamy, a Tesla engineer 30.09.2022

In this episode we discuss this video: https://youtu.be/jPCV4GKX9Dw How Tesla approaches collision detection with novel methods.

10: Outracing champion Gran Turismo drivers with deep reinforcement learning 23.08.2022

We discuss Sony AI's accomplishment of creating a novel AI agent that can beat professional racers in Gran Turismo. Some topics include: - The crafting of rewards to make the agent behave nicely - What is QR-SAC? - How to deal with "rare" experiences in the replay buffer Link to paper: https://www.nature.com/articles/s41586-021-04357-7

8: GATO (A Generalist Agent) 29.07.2022

Today we talk about GATO, a multi-modal, multi-task, multi-embodiment generalist agent.

9: Heads-Up Limit Hold'em Poker Is Solved 29.07.2022

Today we talk about recent AI advances in Poker; specifically the use of counterfactual regret minimization to solve the game of 2-player Limit Texas Hold'em.

7: Deep Unsupervised Learning Using Nonequilibrium Thermodynamics (Diffusion Models) 14.06.2022

We start talking about diffusion models as a technique for generative deep learning.

6: Deep Reinforcement Learning at the Edge of the Statistical Precipice 06.06.2022

We discuss NeurIPS outstanding paper award winning paper, talking about important topics surrounding metrics and reproducibility.

5: QMIX 26.04.2022

We talk about QMIX https://arxiv.org/abs/1803.11485 as an example of Deep Multi-agent RL.

4: Can Neural Nets Learn the Same Model Twice? 06.04.2022

Todays paper: Can Neural Nets Learn the Same Model Twice? Investigating Reproducibility and Double Descent from the Decision Boundary Perspective (https://arxiv.org/pdf/2203.08124.pdf) Summary: A discussion of reproducibility and double descent through visualizations of decision boundaries. Highlights of the discussion: Relationship between model performance and reproducibility Which models are ro...

3: VICReg 21.03.2022

Todays paper: VICReg ( https://arxiv.org/abs/2105.04906 ) Summary of the paper VICReg prevents representation collapse using a mixture of variance, invariance and covariance when calculating the loss. It does not require negative samples and achieves great performance on downstream tasks. Highlights of discussion The VICReg architecture (Figure 1) Sensitivity to hyperparameters (Table 7) Top 5 met...

2: data2vec 07.03.2022

Todays paper: data2vec (https://arxiv.org/abs/2202.03555) Summary of the paper A multimodal SSL algorithm that predicts latent representation of different types of input. Highlights of discussion What are the motivations of SSL and multimodal How does the student teacher learning work? What are similarities and differences between ViT, BYOL, and Reinforcement Learning algorithms.

1: Reward is Enough 21.02.2022

This is the first episode of Argmax! We talk about our motivations for doing a podcast, and what we hope listeners will get out of it. Todays paper: Reward is Enough Summary of the paper The authors present the Reward is Enough hypothesis: Intelligence, and its associated abilities, can be understood as subserving the maximisation of reward by an agent acting in its environment. Highlights of disc...

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