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Machine Learning Street Talk (MLST) cover image

#55 Self-Supervised Vision Models (Dr. Ishan Misra - FAIR).

Machine Learning Street Talk (MLST)

NOTE

Barlow Twins: Reducing Redundancy in Representations for Improved Image Classification

Barlow Twins is a self-supervised learning technique that reduces redundancy and enhances classification accuracy. It works well with smaller batch sizes and does not require asymmetric learning updates or large amounts of negative samples. Ishan and Yan Likun argue in their blog post that self-supervised learning is crucial for building common sense knowledge. They compare the challenges of representing vision and language, with vision being more complex. Barlow Twins address the issues of dimensionality, uncertainty, and discrete versus continuous problems. They propose latent predictive models for image representation learning.

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