Sample compression schemes for balls in graphs

Abstract
One of the open problems in machine learning is whether any set-family of VC-dimension admits a sample compression scheme of size~. In this paper, we study this problem for balls in graphs. For balls of arbitrary radius , we design proper sample compression schemes of size for trees, of size for cycles, of size for interval graphs, of size for trees of cycles, and of size for cube-free median graphs. For balls of a given radius, we design proper labeled sample compression schemes of size for trees and of size for interval graphs. We also design approximate sample compression schemes of size 2 for balls of -hyperbolic graphs.
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