What is the sum of a 6–term geometric series if the first term is 7 and the last term is 54,432?

1 Answer
Bill K.
Jan 3, 2016

65317

Explanation:

For a geometric series a+ar+ar^{2}+ar^{3}+cdots+ar^{n-1} with n terms and r !=1, the sum is (a(r^{n}-1))/(r-1).

In the given example, a=7 and n=6. We can also set 7*r^{5}=54432 so that r^{5}=7776 and r=7776^{1/5}=6.

Therefore, the sum is (7*(6^{6}-1))/(6-1)=(7*46655)/5=65317.

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