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Let $n \ge 1.$ and let $f: S^n \to S^n$ be continuous self-map of the unit $n$-sphere. If $f$ has no fixed points, what is the degree of $f$ , and why?

Thanks in advance.

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    Possible duplicate of [For $n$ even, antipodal map of $S^n$ is homotopic to reflection and has degree $-1$?](http://math.stackexchange.com/questions/1613911/for-n-even-antipodal-map-of-sn-is-homotopic-to-reflection-and-has-degree)2016-03-23

1 Answers 1

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As froggie hints, you can show that $f$ is homotopic to the antipodal map. [What's the degree of that? It's a composition of reflections.] Start with the straight line homotopy taking each $f(x)$ to $-x$. This won't lie in the sphere, so you have to fix that. In doing this, you'll need to show that a certain vector is non-zero, and that's when you'll use your hypothesis. It might help to remember that $|f(x)| = |x| = 1$ for $x \in S^n$.