Nonpositively curved implies conjugate-free: Difference between revisions

Statement

Verbal statement

If the sectional curvature of a Riemannian manifold is everywhere nonpositive, then the Riemannian manifold is conjugate-free, viz it does not contain a pair of conjugate points.

Proof

Let ${\displaystyle M}$ be the Riemannian manifold, ${\displaystyle \gamma }$ a geodesic in ${\displaystyle M}$ and ${\displaystyle J}$ a Jacobi field about ${\displaystyle \gamma }$ that vanishes at the endpoints. We must show that ${\displaystyle J}$ is everywhere zero.

Consider the Jacobi equation:

${\displaystyle \frac{D^{2}J}{d{t}^2}}+R(J,V)V=0$

Taking the inner product of both these with ${\displaystyle J}$, the second term becomes the sectional curvature of the tangent plane spanned by ${\displaystyle J}$ and ${\displaystyle V}$, which is negative. Hence we conclude that:

${\displaystyle <\frac{D^{2}J}{d{t}^2},J>\ge 0}$

This tells us that ${\displaystyle <\frac{DJ}{dt},J>}$ is nondecreasing, and hence, that ${\displaystyle <J,J>}$ is nondecreasing. Thus ${\displaystyle J}$ cannot be zero at both endpoints unless it is identically zero.