John wants to calculate the sum of a geometric series with 10 terms, where the 10th term is 5 859 37... ... series with 10 terms, where the 10th term is 5 859 375 and the common ration is 5/3. John solved the problem by considering another ... show more ... Using John's method, a = 5 859 375, r = 3/5.

Question

Steve · Answer

well, since T10 = ar^9 a(5/3)^9 = 5859375 = 3*5^9 So, a = 3^10 = 59049