The local lipschitz condition implies differentiability?

No. Consider $f(x))=|x|$, which is Lipschitz but not differentiable.

However, Rademacher's theorem states that a (locally) Lipschitz function is differentiable almost everywhere.


Think about $f(x)=|x|$. Is it (globally) Lipschitz continuous? What about differentiable?

Tags:

Analysis

Derivatives

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