Why is [G] Sandwiched by Epsilon Inverses in Tensor Inverse Calculation?

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SUMMARY

The discussion centers on the mathematical notation and matrix algebra involved in the calculation of the tensor inverse, specifically the expression for the epsilon inverse, represented as $$\varepsilon^{'-1}=1/(\varepsilon+i\epsilon_{0}[G])$$. Participants emphasize the importance of proper notation to avoid errors in elementary matrix algebra, suggesting a reformulation of the expression as $$\left[ \epsilon + i \epsilon_0 G \right]^{-1} = \left[ \epsilon \left( I + i \epsilon_0 \epsilon^{-1} G \right) \right]^{-1}$$. The conversation highlights the necessity of clarity in mathematical expressions to facilitate accurate computations. Ultimately, the participants arrive at a clearer understanding of the tensor inverse calculation.

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  • Knowledge of binomial expansion
  • Basic concepts of complex numbers
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Motocross9
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Homework Statement
Given $$\varepsilon^{'}=\varepsilon+i\epsilon_{0}[G]$$
$$(\varepsilon^{'}$$ is a hermitian, second rank tensor) show that
$$\varepsilon^{'-1}=\varepsilon^{-1}-i\epsilon_{0}\varepsilon^{-1}[G]\varepsilon^{-1}$$, note that $$[G]$$ is small. Also, $$\varepsilon$$ is a diagonal second rank tensor, and $$[G]$$ is a real antisymmetric matrix.
Relevant Equations
$$\varepsilon^{'}=\varepsilon+i\epsilon_{0}*[G]$$
Clearly, they used the binomial expansion on this; however, I cannot figure out why [G] is sandwiched by the epsilon inverses:
$$\varepsilon^{'-1}=1/(\varepsilon+i\epsilon_{0}[G])\approx(1-i\epsilon_{0}[G]\varepsilon^{-1})\varepsilon^{-1}$$
 
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Hi Motocross9,

While most of us who are scientists or engineers use abusive (incorrect!) mathematical notation at times, in this case I think it is causing you to make mistakes in elementary matrix algebra. Using more proper notation, you first step is something like this
$$
\begin{eqnarray}
\left[ \epsilon + i \epsilon_0 G \right]^{-1} & = & \left[ \epsilon \left( I + i \epsilon_0 \epsilon^{-1} G \right) \right]^{-1}.
\end{eqnarray}
$$
What do you get if you continue from here?

jason
 
jasonRF said:
Hi Motocross9,

While most of us who are scientists or engineers use abusive (incorrect!) mathematical notation at times, in this case I think it is causing you to make mistakes in elementary matrix algebra. Using more proper notation, you first step is something like this
$$
\begin{eqnarray}
\left[ \epsilon + i \epsilon_0 G \right]^{-1} & = & \left[ \epsilon \left( I + i \epsilon_0 \epsilon^{-1} G \right) \right]^{-1}.
\end{eqnarray}
$$
What do you get if you continue from here?

jason

Thanks so much! I see my mistake now.
 

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