How do you find #S_n# for the geometric series #a_1=1296#, #a_n=1#, r=-1/6?

1 Answer
bp
Jan 1, 2017

1111

Explanation:

One important observation to make here is, that first term is 1296 that is #6^4# and nth term is #6^0# =1. That means the series consists of 5 terms. So n=5. Now

Sum of a geometric series is given by the formula #a (1-r^n)/(1-r)#

Here a = 1296, # r= (-1/6)#, thus Sum= #1296 (1- (-1/6)^n)/ (1+1/6)# = #1296 (1+1/7776)/(7/6)# = 1111.

The sum can be found more easily by writing the 5 terms of the series 1296, -216, 36,-6 ,1 and adding.

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