1 Answer

Ginger · Answer 1 · 2019-04-29T20:41:46+0000

First of all, we can simply the first and second equations by
and
, respectively, to get

x+y+2z=12

2x+y=5

y+2z=11

If we subtract the third equation from the first, we already figure out that
x=1 . The system becomes

y+2z=11

y=3

y+2z=11

so we know
y=3 as well. Let's plug the values for
and
in any of the three equations to get

$y+2z=11 \iff 3+2z=11 \iff 2z=8 \iff z=4$

So, the solution is
x=1 ,
y=3 ,
z=4

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