0708-1300/Class notes for Thursday, October 4: Difference between revisions

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Movie Time

With the word "immersion" in our minds, we watch the movie "Outside In". Also see the movie's home, a talk I once gave, and the movie itself, on google video.

Class Notes

Definition

Let ${\displaystyle \theta :M^{m}\rightarrow N^{n}\!}$ be a smooth map between manifolds. If for each ${\displaystyle p\in M\!}$ the differential ${\displaystyle d\theta _{p}:T_{p}M\rightarrow T_{\theta (p)}N\!}$ is surjective, ${\displaystyle \theta \!}$ is called a submersion.

Theorem

If ${\displaystyle \theta :M^{m}\rightarrow N^{n}\!}$ is a smooth map between manifolds and for some ${\displaystyle p\in M\!}$ the differential ${\displaystyle d\theta _{p}:T_{p}M\rightarrow T_{\theta (p)}N\!}$ is surjective then there exist charts ${\displaystyle \phi :U\rightarrow U'\subset \mathbb {R} ^{m}\!}$ and ${\displaystyle \psi :V\rightarrow V'\subset \mathbb {R} ^{n}\!}$ on ${\displaystyle M\!}$ and ${\displaystyle N\!}$ respectively such that

1. ${\displaystyle \phi (p)=0\!}$
2. ${\displaystyle \psi \left(\theta (p)\right)=0\!}$
3. The diagram

   

   commutes, where ${\displaystyle \pi :\mathbb {R} ^{m}=\mathbb {R} ^{n}\times \mathbb {R} ^{m-n}\rightarrow \mathbb {R} ^{n}\!}$ is the canonical projection.

Proof

Since translations are diffeomorphisms of ${\displaystyle \mathbb {R} ^{k}\!}$ for every ${\displaystyle k\in \mathbb {N} \!}$, it is trivial to find charts ${\displaystyle \phi _{0}:U_{0}\rightarrow U_{0}'\subset \mathbb {R} ^{m}\!}$ and ${\displaystyle \psi :V\rightarrow V'\subset \mathbb {R} ^{m}\!}$ such that ${\displaystyle \phi (p)=0\in \mathbb {R} ^{m}\!}$ and ${\displaystyle \psi (\theta (p))=0\in \mathbb {R} ^{n}\!}$. Furthermore, since ${\displaystyle V\!}$ is open, ${\displaystyle U_{0}\!}$ is open and ${\displaystyle \theta \!}$ is continuous, ${\displaystyle U_{0}\cap \theta ^{-1}\left(V\right)\subset M\!}$ is open so that we may assume ${\displaystyle U_{0}\subset \theta ^{-1}\left(V\right)\!}$ without loss of generality.

Let ${\displaystyle \theta _{0}=\psi \circ \theta \circ \phi _{0}^{-1}:U_{0}'\rightarrow V'\!}$ be the local representative of ${\displaystyle \theta \!}$ and let ${\displaystyle D_{0}:\mathbb {R} ^{m}\rightarrow \mathbb {R} ^{n}\!}$ be the local representative of ${\displaystyle d\theta _{p}\!}$. Since ${\displaystyle d\theta _{p}\!}$ is onto, we may apply a change of basis ${\displaystyle T:\mathbb {R} ^{m}\rightarrow \mathbb {R} ^{m}}$ such that ${\displaystyle D_{0}=T^{-1}\circ \pi \circ T}$.

Let ${\displaystyle \phi _{1}=T\circ \phi _{0}\!}$. Then ${\displaystyle \phi _{1}\!}$ is a chart because ${\displaystyle T\!}$ is a diffeomorphism. Let ${\displaystyle \theta _{1}=\psi \circ \theta \circ \phi _{1}^{-1}:U_{0}'\rightarrow V'\!}$ be the corresponding local representative, define ${\displaystyle \zeta :U_{0}'\rightarrow \mathbb {R} ^{m}\!}$ by ${\displaystyle \zeta (x,y)=(\theta _{1}(x,y),y)\!}$, and let ${\displaystyle D_{1}:\mathbb {R} ^{m}\rightarrow \mathbb {R} ^{n}\!}$ be the differential of ${\displaystyle \theta _{1}\!}$ at ${\displaystyle 0\!}$. Then, by construction of ${\displaystyle T\!}$ we have that ${\displaystyle D_{1}=\pi \!}$ and hence ${\displaystyle d\zeta _{0}=\mathrm {id} _{\mathbb {R} ^{m}}\!}$, which is invertible. Hence, the inverse function gives the existence of non-empty open set ${\displaystyle U'\subset \zeta (U_{1}')\!}$ such that ${\displaystyle \zeta |_{\zeta ^{-1}(U')}\!}$ is a diffeomorphism. Put ${\displaystyle U=\phi _{1}^{-1}(\zeta ^{-1}(U'))\!}$ and ${\displaystyle \phi =\zeta \circ \phi _{1}|_{U}\!}$. Then ${\displaystyle \phi \!}$ is a chart.

It remains to check that ${\displaystyle \pi \circ \phi =\psi \circ \theta |_{U}\!}$, but this is clear: if ${\displaystyle (x,y)=\phi _{1}(q)\!}$ for some ${\displaystyle q\in U\!}$, then ${\displaystyle \pi \circ \phi (q)=\pi \circ \zeta (x,y)=\theta _{1}(x,y)=\psi (\theta (q))\!}$ by definition of ${\displaystyle \theta _{1}\!}$. ${\displaystyle \Box \!}$