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10:21
Hi, I'm trying to study the [Graph Kernel](http://jmlr.csail.mit.edu/papers/volume11/vishwanathan10a/vishwanathan10a.pdf) paper, which describes ways to compute similarity measures between edge-labeled graphs.

Unfortunately, I'm an undergraduate, and while most of the mathematical background is known to me, some of it isn't. Specifically, the authors talk about so called __feature maps__. What are they and where do I learn about them? It looks like it is a concept from ML/AI, but I'm not sure. They also mention Hilbert Spaces and RKHS, but in a less pervasive way
I'd like to determine if I have the necessary background to study that paper, and if not whether it's doable to acquire it in a reasonably short time span
 
6 hours later…
16:00
I determined I cannot tackle that paper before I have taken a proper coures on ML/AI

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