How do you solve the system of equations #y- 3x = - 3# and #2y = 3x#?

1 Answer
May 10, 2017

I got:
#x=2#
#y=3#

Explanation:

We can substitute the second equation into the first for #3x# and get:

#y-color(red)(2y)=-3#

so that:

#-y=-3#

and:

#y=3#

Let us use this into, say, the second equation:

#2*color(blue)(3)=3x#

giving:

#x=6/3=2#