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About this item
Highlights
- How statistical invariances will help us build AI systems exhibiting human-like performance by following human-like strategies.
- About the Author: David Lopez-Paz is a research scientist at FAIR, Meta.
- 400 Pages
- Computers + Internet, Intelligence (AI) & Semantics
Description
Book Synopsis
How statistical invariances will help us build AI systems exhibiting human-like performance by following human-like strategies. Current machine learning systems crumble when the distributions of training and testing examples differ in spurious correlations. This is a major roadblock toward the development of advanced machine intelligence, which demands not only human-like performance but the deployment of human-like strategies. The prevalent approach in AI, fixated on recklessly minimizing average training error, falls short in producing AI systems capable of authentic out-of-distribution generalization. This book introduces the Invariance Principle, a new epistemological tool to unearth correlations invariant across diverse collections of empirical data. The Invariance Principle, encapsulated in the axiom "frame your problem so its answer matches across circumstances," will not only find its practical incarnation in the family of Invariant Risk Minimization algorithms, but also illuminate our understanding of causation. It will permeate topics such as environment discovery, large-language models, self-supervised learning, mixing data augmentation, uncertainty estimation, and fairness. The author argues that the Invariance Principle is a central inductive bias fueling advances across fields of knowledge, such as physics, metaphysics, and cognitive science. The final chapter includes personal examples of how invariance has shaped the author's understanding of his own subjective experience, as well as how he has interpreted both Eastern and Western philosophical traditions.About the Author
David Lopez-Paz is a research scientist at FAIR, Meta. Previously, he held positions in the European Space Agency, RedBull, Formula 1, and Google Research.Dimensions (Overall): 9.0 Inches (H) x 6.0 Inches (W)
Weight: .81 Pounds
Suggested Age: 22 Years and Up
Number of Pages: 400
Genre: Computers + Internet
Sub-Genre: Intelligence (AI) & Semantics
Publisher: MIT Press
Format: Paperback
Author: David Lopez-Paz
Language: English
Street Date: April 21, 2026
TCIN: 1005316594
UPC: 9780262053341
Item Number (DPCI): 247-31-4610
Origin: Made in the USA or Imported
Shipping details
Estimated ship dimensions: 1 inches length x 6 inches width x 9 inches height
Estimated ship weight: 0.812 pounds
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