Given:#" "color(brown)(5.3+u=3.2u-2.7)#
Subtract #color(blue)(u)# from both sides
#" "color(brown)(5.3+ucolor(blue)(-u)=3.2u-2.7color(blue)(-u))#
But #u-u=0#
#" "5.3+0=3.2u-u-2.7#
But #3.2u-u=2.3u#
#" "5.3=2.3u-2.7#
Add #color(blue)(2.7)# to both sides
#" "color(brown)(5.3color(blue)(+2.7)=2.3u-2.7color(blue)(+2.7)#
But #5.3+2.7 = 8.0" and "-2.7+2.7=0#
#" "8=2.3u+0#
Divide both sides by 2.3
#" "8/2.3=2.3/2.3xxu#
But #2.3/2.3=1" so "u=8/2.3#
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But dividing #2.3" into "8# gives a never ending decimal so the answer would not be accurate. It is much more accurate to express it as a fraction.
So write #" "u=8/2.3" "# as #" "u=(8xx10)/(2.3xx10)= 80/23#
#=> u= 3 11/23#
