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First, we need to find the determinant of matrix $A$. $$|A| = \begin{vmatrix}1&2&-3\\ 2&0&-3\\ 1&2&0\end{vmatrix} = 1(0 - (-6)) - 2(0 - (-3)) + (-3)(4 - 0) = 6 - 6 - 12 = -12$$ Since $|A| \neq 0$, the inverse $A^{-1}$ exists.
Now, we find the cofactors of each element of matrix $A$: $C_{11} = (0 - (-6)) = 6$ $C_{12} = -(0 - (-3)) = -3$ $C_{13} = (4 - 0) = 4$ $C_{21} = -(0 - (-6)) = -6$ $C_{22} = (0 - (-3)) = 3$ $C_{23} = -(2 - (-3)) = -5$ $C_{31} = (-6 - 0) = -6$ $C_{32} = -(-3 - (-6)) = -3$ $C_{33} = (0 - 4) = -4$
The cofactor matrix is: $$C = \begin{bmatrix}6&-3&4\\ -6&3&-5\\ -6&-3&-4\end{bmatrix}$$ The adjoint of $A$ is the transpose of the cofactor matrix: $$adj(A) = C^T = \begin{bmatrix}6&-6&-6\\ -3&3&-3\\ 4&-5&-4\end{bmatrix}$$
The inverse of $A$ is given by: $$A^{-1} = \frac{1}{|A|} adj(A) = \frac{1}{-12} \begin{bmatrix}6&-6&-6\\ -3&3&-3\\ 4&-5&-4\end{bmatrix} = \begin{bmatrix}-1/2&1/2&1/2\\ 1/4&-1/4&1/4\\ -1/3&5/12&1/3\end{bmatrix}$$
The given system of equations can be written in matrix form as $AX = B$, where: $$A = \begin{bmatrix}1&2&-3\\ 2&0&-3\\ 1&2&0\end{bmatrix}, X = \begin{bmatrix}x\\ y\\ z\end{bmatrix}, B = \begin{bmatrix}1\\ 2\\ 3\end{bmatrix}$$
To solve for $X$, we use the formula $X = A^{-1}B$: $$X = \begin{bmatrix}-1/2&1/2&1/2\\ 1/4&-1/4&1/4\\ -1/3&5/12&1/3\end{bmatrix} \begin{bmatrix}1\\ 2\\ 3\end{bmatrix} = \begin{bmatrix}(-1/2) + (1) + (3/2)\\ (1/4) - (1/2) + (3/4)\\ (-1/3) + (5/6) + (1)\end{bmatrix} = \begin{bmatrix}2\\ 1/2\\ 5/6\end{bmatrix}$$ Therefore, $x = 2$, $y = 1/2$, and $z = 5/6$.
Final Answer: x = 2, y = 1/2, z = 5/6
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