Question #ece03

1 Answer
GiĆ³
Jan 7, 2015

Considering a GP of the type:
#a,ar,ar^2,ar^3,...ar^n#
where:
#a# is the first term;
#r# is the common ratio.
We have:
#ar^3=56# and
#ar^5=7/8#
From the first:
#a=56/r^3#
Substituting in the second you get:
#(56r^5)/r^3=7/8# and
#r=1/8#
#a=28672#

and

#sum_(k=0)^ooar^k=a/(1-r)=28672/(1-1/8)=32768#

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