3min chapter

Machine Learning Street Talk (MLST) cover image

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

Machine Learning Street Talk (MLST)

CHAPTER

Using a Centroids to Measure Distances Between Points

There are some significant deviations on some of the classes. This must just be, for whatever reason, that inductive prior is quite useful. For class number 18, the quadruple at loss was flat line. But this is much flatter. What's going on? It's like, what's the probability of this picture are similar? And the answer is, wo, 50%. Meaning it don't know anything. So i try to avoid that and just rpoint to point distances. I can't get my head around that. A sontrurit is somehow an average or something. so if there were some hal varients in one class, for example, you woudn

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