Difference between revisions of "031 Review Part 2, Problem 11"
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<span class="exam">Find all real values of <math style="vertical-align: 0px">k</math> such that the system has only one solution. | <span class="exam">Find all real values of <math style="vertical-align: 0px">k</math> such that the system has only one solution. | ||
| − | |||
{| class="mw-collapsible mw-collapsed" style = "text-align:left;" | {| class="mw-collapsible mw-collapsed" style = "text-align:left;" | ||
| Line 30: | Line 29: | ||
|- | |- | ||
| | | | ||
| − | ::<math> | + | ::<math>\left[\begin{array}{cc|c} |
| − | + | 1 & k & 1 \\ | |
| + | 3 & 5 & 2k | ||
| + | \end{array}\right].</math> | ||
| + | |- | ||
| + | |Now, when we row reduce this matrix, we get | ||
| + | |- | ||
| + | | | ||
| + | ::<math>\left[\begin{array}{cc|c} | ||
1 & k & 1 \\ | 1 & k & 1 \\ | ||
3 & 5 & 2k | 3 & 5 & 2k | ||
| − | \end{ | + | \end{array}\right] \sim \left[\begin{array}{cc|c} |
| + | 1 & k & 1 \\ | ||
| + | 0 & -3k+5 & -3+2k | ||
| + | \end{array}\right].</math> | ||
|} | |} | ||
{| class="mw-collapsible mw-collapsed" style = "text-align:left;" | {| class="mw-collapsible mw-collapsed" style = "text-align:left;" | ||
!Step 2: | !Step 2: | ||
| + | |- | ||
| + | |To guarantee a unique solution, our matrix must contain two pivots. | ||
| + | |- | ||
| + | |So, we must have <math style="vertical-align: -5px">-3k+5\ne 0.</math> | ||
| + | |- | ||
| + | |Hence, we must have | ||
|- | |- | ||
| | | | ||
| + | ::<math>k\ne \frac {5}{3}.</math> | ||
| + | |- | ||
| + | |Therefore, <math style="vertical-align: 0px">k</math> can be any real number except <math style="vertical-align: -13px">\frac{5}{3}.</math> | ||
|} | |} | ||
| Line 47: | Line 65: | ||
!Final Answer: | !Final Answer: | ||
|- | |- | ||
| − | | | + | | The system has only one solution when <math style="vertical-align: 0px">k</math> is any real number except <math style="vertical-align: -13px">\frac{5}{3}.</math> |
|} | |} | ||
| − | [[031_Review_Part_2|'''<u>Return to | + | [[031_Review_Part_2|'''<u>Return to Review Problems</u>''']] |
Latest revision as of 13:43, 15 October 2017
Consider the following system of equations.
Find all real values of such that the system has only one solution.
| Foundations: |
|---|
| 1. To solve a system of equations, we turn the system into an augmented matrix and |
|
| 2. For a system to have a unique solution, we need to have no free variables. |
Solution:
| Step 1: |
|---|
| To begin with, we turn this system into an augmented matrix. |
| Hence, we get |
|
|
| Now, when we row reduce this matrix, we get |
|
|
![{\displaystyle \left[{\begin{array}{cc|c}1&k&1\\3&5&2k\end{array}}\right].}](https://wikimedia.org/api/rest_v1/media/math/render/svg/2ee1ff2550838f2b5fb2db4e4886a6e48b754abd)
![{\displaystyle \left[{\begin{array}{cc|c}1&k&1\\3&5&2k\end{array}}\right]\sim \left[{\begin{array}{cc|c}1&k&1\\0&-3k+5&-3+2k\end{array}}\right].}](https://wikimedia.org/api/rest_v1/media/math/render/svg/4a5d73c6e1b3956f8aa81af764dadc32b351fc40)
| Step 2: |
|---|
| To guarantee a unique solution, our matrix must contain two pivots. |
| So, we must have |
| Hence, we must have |
|
|
| Therefore, can be any real number except |
| Final Answer: |
|---|
| The system has only one solution when is any real number except |