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SWaV: Unsupervised Learning of Visual Features by Contrasting Cluster Assignments (Mathilde Caron)

Machine Learning Street Talk (MLST)

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Challenges in Re-Implementing Unsupervised Learning

This chapter explores the speakers' journey of re-implementing a research paper on unsupervised learning, focusing on the complexities of multi-crop augmentation and code modularity. They share insights on their experiments, including learning rate adjustments and the balance between fidelity to the original paper and clarity in their own implementation.

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