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One Shot and Metric Learning - Quadruplet Loss (Machine Learning Dojo)

Machine Learning Street Talk (MLST)

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Exploring Triplet Loss and One-Shot Learning

This chapter discusses triplet loss within contrastive learning, focusing on its use in classifying sports equipment and leveraging Siamese networks. It also covers the significance of one-shot learning, effective embedding representations, and the complexities of implementing quadruplet loss for improved clustering and classification. The speakers share personal insights into their journeys in machine learning, highlighting its applications in software development and automation.

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