How do you solve x=8-2y and x=-3y+12?

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How do you solve x=8-2y and x=-3y+12?

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Answer 1 · 2018-06-12T20:10:43

First solve for $y$ $y$ using substitution, then solve for $x$ $x$ , you will find that $y = 4$ $y=4$ and $x = 0$ $x=0$

Explanation:

We're very lucky for this problem, as both expressions leave $x$ $x$ by itself on one side. If you wanted to write this as one long expression:

$8 - 2 y = x = - 3 y + 12$ $8-2y=x=-3y+12$

Now, we can ignore $x$ $x$ and write the expression as follows (BECAUSE both expressions equal $x$ $x$ ):

$8 - 2 y = - 3 y + 12$ $8-2y=-3y+12$

Since $x$ $x$ is not in either equation, we can solve for $y$ $y$ easily:

$cancel(8)-2ycolor(red)(+3y)color(blue)(cancel(-8))=cancel(-3y)+12color(red)(cancel(+3y))color(blue)(-8)$

$color(green)(y=4$

Finally, we can solve for $x$ :

$x=8-2y$

$x=8-2(4)$

$x=8-8$

$color(green)(x=0)$

Answer 2 · 2018-06-12T20:16:56

$(x,y)to(0,4)$

Explanation:

$x=8-2yto(1)$

$x=-3y+12to(2)$

$"since both equations express x in terms of y , equate"$
$"the right sides"$

$8-2y=-3y+12$

$"add "3y" to both sides"$

$8-2y+3y=12$

$"subtract 8 from both sides"$

$y=12-8=4$

$"substitute "y=4" into either of the 2 equations"$

$(1)tox=8-8=0$

$"the point of intersection "=(0,4)$
graph{(y+1/2x-4)(y+1/3x-4)=0 [-10, 10, -5, 5]}

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How do you solve x=8-2y and x=-3y+12?

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