How do I use substitution to find the solution of the system of equations #y=1/3x+7/3# and #y=-5/4x+11/4#?

1 Answer
AJ Speller
Sep 26, 2014

In this problem we have 2 different expressions that represent the value of #y#. Because they both represent #y# we can set them equal to each other.

#(1/3)x+7/3=-(5/4)x+11/4#

Because all of the terms share a common multiple of 12 I will multiply each term by 12 to eliminate the fractions.

#12[(1/3)x+7/3=-(5/4)x+11/4]#

#[(12/3)x+84/3=-(60/4)x+132/4]#

#4x+28=-15x+33#

#19x=5#

#x=5/19#

Substitute in this newly found #x#-value into one of the original equations.

#y=(1/3)x+7/3#

#y=(1/3)*(5/19)+7/3#

#y=(5/57)+7/3*19/19#

#y=5/57+133/57#

#y=138/57#

#y=46/19#

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