Solve the homogeneous system of linear equations
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Dr.Peterson
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Did you forget to proofread before submitting this? Check the numbers in your augmented matrix; one is wrong (unless you copied the problem incorrectly).
HallsofIvy
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And what were those conclusions? What are \(\displaystyle x_1\), \(\displaystyle x_2\), and \(\displaystyle x_3\)?
Personally, I wouldn't use matrices at all. Perhaps I am just too "simple" for that! I would observe that adding the two equations immediately eliminates \(\displaystyle x_2\) leaving \(\displaystyle 4x_1- 8x_3= 0\) so that \(\displaystyle x_1= 2x_3\). And, of course, \(\displaystyle x_2= \frac{3}{2}x_1= \frac{3}{2}(2x_3)= 3x_3\). Taking \(\displaystyle x_3= a\), \(\displaystyle (x_1, x_2, x_3)= (2a, 3a, a)\).
Personally, I wouldn't use matrices at all. Perhaps I am just too "simple" for that! I would observe that adding the two equations immediately eliminates \(\displaystyle x_2\) leaving \(\displaystyle 4x_1- 8x_3= 0\) so that \(\displaystyle x_1= 2x_3\). And, of course, \(\displaystyle x_2= \frac{3}{2}x_1= \frac{3}{2}(2x_3)= 3x_3\). Taking \(\displaystyle x_3= a\), \(\displaystyle (x_1, x_2, x_3)= (2a, 3a, a)\).
D
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No - the second row of your augmented matrix is incorrect.
For this homogeneous equation, only the trivial equation:
x1 = x2 = x3 = 0
is possible.
Steven G
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\(\displaystyle x_2= -\frac{3}{2}x_1= -\frac{3}{2}(2x_3)= -3x_3\)
Steven G
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Subhotosh, Prof Halls did get a non trivial solution (one you fix the minor error)
HallsofIvy
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One of these days, I really need to learn arithmetic!