How do you find the sum of #12(-1/2)^(i-1)# from i=0 to 9?

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Answer 1 · 2016-09-30T12:58:58

The is a geometric series that has #9 - 0 + 1 = 10# terms.

The common ratio will be #-1/2#, and the first term will be #12(-1/2)^(-1) = 12(-2)^1 = -24#.

We use the formula #s_n = (a(1 - r^n))/(1 - r), r !=1# to find the sum of a geometric series.

#s_10 = (-24(1 - (-1/2)^10))/(1 - (-1/2))#

#s_10= -15.984375~= -15.98#

Hopefully this helps!

Answer 2 · 2016-09-30T13:21:03

#"The reqd. Sum="-1023/64.#

Reqd. Sum#=sum_0^9 {12(-1/2)^(i-1)}=12sum_0^9(-1/2)^i(-1/2)^-1}#

#=12sum_0^9(-1/2)^i(-2)}=-24sum_0^9(-1/2)^i#

#=-24[(-1/2)^0+(-1/2)^1+(-1/2)^2+... ...+(-1/2)^9}#

#=-24{1+(-1/2)^1+(-1/2)^2+... ...+(-1/2)^9}#

We realise that the series in #{... ...}# is a Geometric Series,

having #"the First Term, "a=1", and, the Common Ratio "r=-1/2,#

and no. of terms #n=10#

For such a series, the sum #S_n,# of the first #n# terms is,

#S_n=(a(1-r^n))/(1-r).# Therefore,

#S_10=((1)(1-(-1/2)^10))/((1-(-1/2)))=(1-1/1024)/(1+1/2)=1023/1024*2/3#

Finally, we get,

#"The reqd. Sum="-24*1023/64*2/3=-1023/64.#