4min chapter

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

Machine Learning Street Talk (MLST)

CHAPTER

The Simplest Visual I Can Make Is Linear Regression.

The basis of machine learning models are interprative. We're just kind of moving around in these little, kind of enclosures, the euclidian space. And i think when people talk about extrapolation, that's what they mean. So imagine we had a spiral manifold, and i want to be able to and predict inside the spiral manifold, outside of the training range. That's what i mean by litt franlage circus that always breaks, breaks. O mitit.

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