Geometric Series
If the first term of a geometric progression is $t_1=a$t1=a and the common ratio is $r$r, then the sequence becomes:
$t_1=a,t_2=ar,t_3=ar^2,t_4=ar^3,t_5=ar^4,\ldots$t1=a,t2=ar,t3=ar2,t4=ar3,t5=ar4,…
Suppose we wish to add the first $n$n terms of this sequence. Technically, this is known as a series, or alternatively the partial sum of the sequence. We could write the sum as:
$S_n=a+ar+ar^2+ar^3+...+ar^{n-1}$Sn=a+ar+ar2+ar3+...+arn−1
If we multiply both sides of this equation by the common ratio $r$r we see that:
$rS_n=ar+ar^2+ar^3+...+ar^{n-1}+ar^n$rSn=ar+ar2+ar3+...+arn−1+arn
Then, by carefully subtracting $rS_n$rSn from $S_n$Sn term by term, we see that all of the middle terms disappear:
$S_n-rS_n=a+\left(ar-ar\right)+\left(ar^2-ar^2\right)+...+\left(ar^{n-1}-ar^{n-1}\right)-ar^n$Sn−rSn=a+(ar−ar)+(ar2−ar2)+...+(arn−1−arn−1)−arn
This means that $S_n-rS_n=a-ar^n$Sn−rSn=a−arn and when common factors are taken out on both sides of this equation, we find $S_n\left(1-r\right)=a\left(1-r^n\right)$Sn(1−r)=a(1−rn). Finally, by dividing both sides by $\left(1-r\right)$(1−r) (excluding the trivial case of $r=1$r=1) we reveal the geometric sum formula:
$S_n=\frac{a\left(1-r^n\right)}{1-r}$Sn=a(1−rn)1−r
An extra step, multiplying the numerator and denominator by $-1$−1, reveals a slightly different form for $S_n$Sn:
$S_n=\frac{a\left(r^n-1\right)}{r-1}$Sn=a(rn−1)r−1
This form is usually easier to use when $\left|r\right|>1$|r|>1.
As an example, adding up the first $10$10 terms of the geometric progression that begins $96+48+12+...$96+48+12+... is straightforward. Since $a=96$a=96 and $r=\frac{1}{2}$r=12 we have:
$S_{10}=\frac{96\times\left(1-\left(\frac{1}{2}\right)^{10}\right)}{1-\left(\frac{1}{2}\right)}=191.8125$S10=96×(1−(12)10)1−(12)=191.8125
To add up the first $20$20 terms of the sequence $2,6,18,...$2,6,18,... we might use the second version of the formula to reveal:
$S_{10}=\frac{2\times\left(3^{20}-1\right)}{3-1}=3486784400$S10=2×(320−1)3−1=3486784400
You might be wondering that the two forms of the sum formula excludes the case for $r=1$r=1. This is not an issue, for if $r=1$r=1, then the series becomes:
$S_n=a+a+a+...+a=a\times n$Sn=a+a+a+...+a=a×n
Practice questions
Question 1
Consider the series $5+10+20$5+10+20 ...
Find the sum of the first $12$12 terms.
QUESTION 2
QUESTION 3
Consider the number $0.252525$0.252525$\ldots$…
Which option represents it as an infinite geometric series?
$0.25+0.0025+0.000025+\ldots$0.25+0.0025+0.000025+…
A$0.25+0.025+0.000025+\ldots$0.25+0.025+0.000025+…
B$0.25+0.0025+0.00025+\ldots$0.25+0.0025+0.00025+…
CTherefore express $0.252525$0.252525$\ldots$… as a fraction.