2min chapter

Machine Learning Street Talk (MLST) cover image

#69 DR. THOMAS LUX - Interpolation of Sparse High-Dimensional Data

Machine Learning Street Talk (MLST)

CHAPTER

The Secret of M L Ps in Neural Networks

The main reason m l ps out perform simple space partitioning agritms is that they work in high dimensions. They canr at least to some degree, disentangle data density and info ation density. Having lots of data sampled in a region of the function space doesn't necessarily mean that it's salient, right? That it's a salient place to learn from. Nowe neural networks also support creating a non regular, imper specific to decompose the impet space. This is something that other geometric methods, like delanoi trianguilization, that cannot do.

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