How do you solve the system of equations #y=-x-4# and #y=x+2#?

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Answer 1 · 2018-03-20T22:04:17

#x = -3# and #y = -1#.

#y = -x-4#
#y = x + 2#
Substituting #-x-4# for #y#:
#-x-4=x+2#
#2x = -6#
#x=-6/2#
#x=-3#
Substituting -3 for x to find y:
#y = 3 -4#
#y=-1#

Answer 2 · 2018-03-20T22:10:54

#x = -3#
#y = -1#

Since both equations are set in terms of y (y equals), we can set both equations equal to each other:

#-x-4=x+2#

From here we can solve a very simple equation:

#-x-x=-2x# (Get like terms on both sides, x's on the left, coefficients on the right)
#4+2=6#
#-2x=6#
#x=-3#

Now that we have x, we can choose one of either equations to solve for y, and plug both values in after to double check:

#y=-(-3)-4#
#y=3-4#
#y=-1#

Let's double check by using the other equation:

#y=x+2#
#(-1)=(-3)+2#
#-1=-1#,
True