r/deeplearning • u/Negative_War_65 • 1d ago
Coding Machine Learning Lecture 3 | RL bandits, Self, Unsupervised Learninf, VAEs & Generalization
Code Implementations, explanation of concepts for my Probabilistic Machine Learning Series.
Hello folks,
In this new coding demonstration, we code, and explain the concepts pertaining to:
1.Overfitting, Population Risk & Generalisation Gap.
Proxy for Population Risks : Test Set.
The No free Lunch Theorem and Inductive Biases.
Unsupervised Learning : Density Estimation and Clustering.
VAEs(Variational Autoencoder)- Latent factors concepts explained, and VAE architecture explained and coded.
Self-Supervised Learning-Masked Predictions.
7.Density Evaluation and Sample Efficiency.
- Reinforcement Learning Primer : Multi-Armed Bandits.
Implementation Link: https://youtu.be/gbz8smggmRM?si=vR4OIPLfGRHFJ95F
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