As the sum of all the eigenvalues of\(A\)is equal to the sum of the diagonal entries of\(A\), we can find the third eigenvalue:
\(\begin{array}{c}2 + 8 + x = 4 + 4 + 4\\x = 12 - 10\\x = 2\end{array}\)
So, the eigenvalues are\(2,2,8\).
Find eigenvectors.
Write the matrix form for finding the eigenvector for\(\lambda = 2\).
\(\begin{array}{c}A - 2I = 0\\\left( {\begin{array}{*{20}{c}}4&2&2\\2&4&2\\2&2&4\end{array}} \right) - 2\left( {\begin{array}{*{20}{c}}1&0&0\\0&1&0\\0&1&1\end{array}} \right) = \left( {\begin{array}{*{20}{c}}0\\0\\0\end{array}} \right)\\\left( {\begin{array}{*{20}{c}}4&2&2\\2&4&2\\2&2&4\end{array}} \right) - \left( {\begin{array}{*{20}{c}}2&0&0\\0&2&0\\0&1&2\end{array}} \right) = \left( {\begin{array}{*{20}{c}}0\\0\\0\end{array}} \right)\\\left( {\begin{array}{*{20}{c}}2&2&2\\2&2&2\\2&2&2\end{array}} \right) = \left( {\begin{array}{*{20}{c}}0\\0\\0\end{array}} \right)\end{array}\)
Write the Row-reduced augmented matrix.
\(\begin{array}{c}M = \left( {\begin{array}{*{20}{c}}2&2&2&0\\2&2&2&0\\2&2&2&0\end{array}} \right)\\ = \left( {\begin{array}{*{20}{c}}2&2&2&0\\0&0&0&0\\0&0&0&0\end{array}} \right)\;\left\{ \begin{array}{l}{R_3} = {R_3} - {R_1}\\{R_2} = {R_2} - {R_1}\end{array} \right\}\\ = \left( {\begin{array}{*{20}{c}}1&1&1&0\\0&0&0&0\\0&0&0&0\end{array}} \right)\;\left\{ {{R_1} = \frac{{{R_1}}}{2}} \right\}\end{array}\)
Therefore, the parametric form of the solution is shown below:
\(\begin{array}{c}\left( {\begin{array}{*{20}{c}}{{x_1}}\\{{x_2}}\\{{x_3}}\end{array}} \right) = \left( {\begin{array}{*{20}{c}}{ - {x_2} - {x_3}}\\{{x_2}}\\{{x_3}}\end{array}} \right)\\ = \left( {\begin{array}{*{20}{c}}{ - {x_2}}\\{{x_2}}\\0\end{array}} \right) + \left( {\begin{array}{*{20}{c}}{ - {x_3}}\\0\\{{x_3}}\end{array}} \right)\\ = {x_2}\left( {\begin{array}{*{20}{c}}{ - 1}\\1\\0\end{array}} \right) + {x_3}\left( {\begin{array}{*{20}{c}}{ - 1}\\0\\1\end{array}} \right)\end{array}\)
Therefore, the eigenvector for \(\lambda = 2\)are\(\left\{ {{{\rm{v}}_1},{{\rm{v}}_2}} \right\} = \left\{ {\left( {\begin{array}{*{20}{c}}\begin{array}{l} - 1\\1\end{array}\\0\end{array}} \right),\left( {\begin{array}{*{20}{c}}\begin{array}{l} - 1\\0\end{array}\\1\end{array}} \right)} \right\}\).
Write the matrix form for finding the Eigenvector for\(\lambda = 8\).
\(\begin{array}{c}A - 8I = 0\\\left( {\begin{array}{*{20}{c}}4&2&2\\2&4&2\\2&2&4\end{array}} \right) - 8\left( {\begin{array}{*{20}{c}}1&0&0\\0&1&0\\0&1&1\end{array}} \right) = \left( {\begin{array}{*{20}{c}}0\\0\\0\end{array}} \right)\\\left( {\begin{array}{*{20}{c}}4&2&2\\2&4&2\\2&2&4\end{array}} \right) - \left( {\begin{array}{*{20}{c}}8&0&0\\0&8&0\\0&1&8\end{array}} \right) = \left( {\begin{array}{*{20}{c}}0\\0\\0\end{array}} \right)\\\left( {\begin{array}{*{20}{c}}{ - 4}&2&2\\2&{ - 4}&2\\2&2&{ - 4}\end{array}} \right) = \left( {\begin{array}{*{20}{c}}0\\0\\0\end{array}} \right)\end{array}\)
Write the Row-reduced Augmented matrix.
\(\begin{array}{c}M = \left( {\begin{array}{*{20}{c}}{ - 4}&2&2&0\\2&{ - 4}&2&0\\2&2&{ - 4}&0\end{array}} \right)\\ = \left( {\begin{array}{*{20}{c}}1&{ - \frac{1}{2}}&{ - \frac{1}{2}}&0\\2&{ - 4}&2&0\\2&2&{ - 4}&0\end{array}} \right)\;\left\{ {{R_1} = - \frac{1}{4}{R_1}} \right\}\\ = \left( {\begin{array}{*{20}{c}}1&{ - \frac{1}{2}}&{ - \frac{1}{2}}&0\\0&{ - 3}&3&0\\0&3&{ - 3}&0\end{array}} \right)\;\left\{ \begin{array}{l}{R_3} = {R_3} - 2{R_1}\\{R_2} = {R_2} - 2{R_1}\end{array} \right\}\\ = \left( {\begin{array}{*{20}{c}}1&{ - \frac{1}{2}}&{ - \frac{1}{2}}&0\\0&{ - 3}&3&0\\0&0&0&0\end{array}} \right)\;\left\{ {{R_3} = {R_3} + {R_2}} \right\}\\ = \left( {\begin{array}{*{20}{c}}1&0&{ - 1}&0\\0&1&{ - 1}&0\\0&0&0&0\end{array}} \right)\;\left\{ \begin{array}{l}{R_2} = \frac{1}{6}{R_2}\\{R_1} = {R_1} - {R_2}\\{R_2} = - 2R2\end{array} \right\}\end{array}\)
Therefore, the parametric form of the solution is shown below:
\(\begin{array}{c}\left( {\begin{array}{*{20}{c}}{{x_1}}\\{{x_2}}\\{{x_3}}\end{array}} \right) = \left( {\begin{array}{*{20}{c}}{{x_3}}\\{{x_3}}\\{{x_3}}\end{array}} \right)\\ = {x_3}\left( {\begin{array}{*{20}{c}}1\\1\\1\end{array}} \right)\end{array}\)
Therefore, the eigenvector for \(\lambda = 8\)are\(\left\{ {{{\rm{v}}_3}} \right\} = \left( {\begin{array}{*{20}{c}}1\\1\\1\end{array}} \right)\).
The determinant is shown below:
\(\begin{array}{c}{\rm{Det}}\left( {{v_1},{v_2},{v_3}} \right) = \left( {\begin{array}{*{20}{c}}{ - 1}&{ - 1}&1\\0&1&1\\1&0&1\end{array}} \right)\\ = - 1\end{array}\)
