#147 Fast Approximate Inference without Convergence Worries, with Martin Ingram
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Takeaways:
- DADVI is a new approach to variational inference that aims to improve speed and accuracy.
- DADVI allows for faster Bayesian inference without sacrificing model flexibility.
- Linear response can help recover covariance estimates from mean estimates.
- DADVI performs well in mixed models and hierarchical structures.
- Normalizing flows present an interesting avenue for enhancing variational inference.
- DADVI can handle large datasets effectively, improving predictive performance.
- Future enhancements for DADVI may include GPU support and linear response integration.
Chapters:
13:17 Understanding DADVI: A New Approach
21:54 Mean Field Variational Inference Explained
26:38 Linear Response and Covariance Estimation
31:21 Deterministic vs Stochastic Optimization in DADVI
35:00 Understanding DADVI and Its Optimization Landscape
37:59 Theoretical Insights and Practical Applications of DADVI
42:12 Comparative Performance of DADVI in Real Applications
45:03 Challenges and Effectiveness of DADVI in Various Models
48:51 Exploring Future Directions for Variational Inference
53:04 Final Thoughts and Advice for Practitioners
Thank you to my Patrons for making this episode possible!
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