Here $\Gamma_{jk}^{t}$ is the Christoffel symbol of the second kind, and $g$ is the Riemann metric on a Riemann manifold.When learning Riemann Geometry, we are usually introduced to the following equation:
$g_{ij,k}-g_{lj}\Gamma_{ik}^{l}-g_{il}\Gamma_{jk}^{l}=0$.
Then to get an expression of $\Gamma$ in terms of $g_{ij}$, we will replace $(ijk)$ with $(jki),(kij)$, and so on...
But what about the following way:
Suppose $(A^{i})$ is any tensor, behaving like $(dx^i)$.By contraction, we will get
$A^{i}A^{j}(g_{ij,k}-g_{lj}\Gamma_{ik}^{l}-g_{il}\Gamma_{jk}^{l})=0$,
$A^{i}A^{j}g_{ij,k}=A^{i}A^{j}g_{lj}\Gamma_{ik}^{l}+A^{i}A^{j}g_{il}\Gamma_{jk}^{l}= A^{j}A^{i}g_{li}\Gamma_{jk}^{l}+A^{i}A^{j}g_{il}\Gamma_{jk}^{l}=2A^{i}A^{j}g_{li}\Gamma_{jk}^{l}$.
Since $(A^{i})$ is arbitary , we then get that
$g_{ij,k}=2g_{li}\Gamma_{jk}^{l}$.i.e.$\Gamma_{jk}^{t}=\frac{1}{2}g^{it}g_{ij,k}$.
It is a bit weird, isn't it?Is the above calculation right?
Will someone be kind enough to point out the flaws in the above reasoning or give me some hints on this problem?Thank you very much!