How do you solve the system of equations #4x + 10y = 4# and #8x + 20y = 8#?

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Answer 1 · 2017-05-25T23:02:27

#x=1, y=0#

#color(white)(-)4x+10y=4#
#color(white)(-)#
#color(white)(-)8x+10y=8#

Let's use elimination to solve this!

I'm going to multiply the top equation by #1/2# to change all the #y#s to #10y#:

#1/2 xxcolor(white)()(4x+10y=4)#
#color(black)(-)#
#color(white)(1/2 xx)8x+10y=8#
....................................

becomes

#color(white)(-)2x+10y=2#
#color(black)(-)#
#color(white)(-)8x+10y=8#
........................................
#-6x=-6#

divide by #-6# on both sides

#x=1#

Now let's solve for #y#:

#4x+10y=4#

#4(1)+10y=4#

#4+10y=4#

subtract #4# on both sides

#10y=0#

divide by #10# on both sides

#y=0#

Just to check our work, let's solve for the other equation, replacing #x# and #y# with #1# and #0#:

#8x+10y=8#

#8(1)+10(0)# should equal #8#

#8+0# does equal #8#! We were right!