Example: Using Summation Notation

Evaluate [latex]\sum _{k=3}^{7}{k}^{2}[/latex].

Answer: According to the notation, the lower limit of summation is 3 and the upper limit is 7. So we need to find the sum of [latex]{k}^{2}[/latex] from [latex]k=3[/latex] to [latex]k=7[/latex]. We find the terms of the series by substituting [latex]k=3\text{,}4\text{,}5\text{,}6[/latex], and [latex]7[/latex] into the function [latex]{k}^{2}[/latex]. We add the terms to find the sum.

[latex]\begin{array}{ll}\sum _{k=3}^{7}{k}^{2}\hfill & ={3}^{2}+{4}^{2}+{5}^{2}+{6}^{2}+{7}^{2}\hfill \\ \hfill & =9+16+25+36+49\hfill \\ \hfill & =135\hfill \end{array}[/latex]

Example: Finding the partial sum of an Arithmetic Series

Find the partial sum of each arithmetic series.

1. [latex]\text{5 + 8 + 11 + 14 + 17 + 20 + 23 + 26 + 29 + 32}[/latex]
2. [latex]\text{20 + 15 + 10 +\ldots + -50}[/latex]
3. [latex]\sum _{k=1}^{12}3k - 8[/latex]

Answer:

1. We are given [latex]{a}_{1}=5[/latex] and [latex]{a}_{n}=32[/latex].Count the number of terms in the sequence to find [latex]n=10[/latex].Substitute values for [latex]{a}_{1},{a}_{n}\text{\hspace{0.17em},}[/latex] and [latex]n[/latex] into the formula and simplify. [latex]\begin{array}{l}\begin{array}{l}\hfill \\ {S}_{n}=\frac{n\left({a}_{1}+{a}_{n}\right)}{2}\hfill \end{array}\hfill \\ {S}_{10}=\frac{10\left(5+32\right)}{2}=185\hfill \end{array}[/latex]
2. We are given [latex]{a}_{1}=20[/latex] and [latex]{a}_{n}=-50[/latex].Use the formula for the general term of an arithmetic sequence to find [latex]n[/latex]. [latex-display]\begin{array}{l}{a}_{n}={a}_{1}+\left(n - 1\right)d\hfill \\ -50=20+\left(n - 1\right)\left(-5\right)\hfill \\ -70=\left(n - 1\right)\left(-5\right)\hfill \\ 14=n - 1\hfill \\ 15=n\hfill \end{array}[/latex-display] Substitute values for [latex]{a}_{1},{a}_{n}\text{,}n[/latex] into the formula and simplify.[latex]\begin{array}{l}\begin{array}{l}\\ {S}_{n}=\frac{n\left({a}_{1}+{a}_{n}\right)}{2}\end{array}\hfill \\ {S}_{15}=\frac{15\left(20 - 50\right)}{2}=-225\hfill \end{array}[/latex]
3. To find [latex]{a}_{1}[/latex], substitute [latex]k=1[/latex] into the given explicit formula. [latex-display]\begin{array}{l}{a}_{k}=3k - 8\hfill \\ \text{ }{a}_{1}=3\left(1\right)-8=-5\hfill \end{array}[/latex-display] We are given that [latex]n=12[/latex]. To find [latex]{a}_{12}[/latex], substitute [latex]k=12[/latex] into the given explicit formula. [latex-display]\begin{array}{l}\text{ }{a}_{k}=3k - 8\hfill \\ {a}_{12}=3\left(12\right)-8=28\hfill \end{array}[/latex-display] Substitute values for [latex]{a}_{1},{a}_{n}[/latex], and [latex]n[/latex] into the formula and simplify. [latex]\begin{array}{l}\text{ }{S}_{n}=\frac{n\left({a}_{1}+{a}_{n}\right)}{2}\hfill \\ {S}_{12}=\frac{12\left(-5+28\right)}{2}=138\hfill \end{array}[/latex]

Example: Solving Application Problems with Arithmetic Series

On the Sunday after a minor surgery, a woman is able to walk a half-mile. Each Sunday, she walks an additional quarter-mile. After 8 weeks, what will be the total number of miles she has walked?

Answer: This problem can be modeled by an arithmetic series with [latex]{a}_{1}=\frac{1}{2}[/latex] and [latex]d=\frac{1}{4}[/latex]. We are looking for the total number of miles walked after 8 weeks, so we know that [latex]n=8[/latex], and we are looking for [latex]{S}_{8}[/latex]. To find [latex]{a}_{8}[/latex], we can use the explicit formula for an arithmetic sequence.

[latex]\begin{array}{l}\begin{array}{l}\\ {a}_{n}={a}_{1}+d\left(n - 1\right)\end{array}\hfill \\ {a}_{8}=\frac{1}{2}+\frac{1}{4}\left(8 - 1\right)=\frac{9}{4}\hfill \end{array}[/latex]

We can now use the formula for arithmetic series.

[latex]\begin{array}{l} {S}_{n}=\frac{n\left({a}_{1}+{a}_{n}\right)}{2}\hfill \\ \text{ }{S}_{8}=\frac{8\left(\frac{1}{2}+\frac{9}{4}\right)}{2}=11\hfill \end{array}[/latex]

She will have walked a total of 11 miles.

Example: Finding the First n Terms of a Geometric Series

Use the formula to find the indicated partial sum of each geometric series.

1. [latex]{S}_{11}[/latex] for the series [latex]\text{ 8 + -4 + 2 + }\dots [/latex]
2. [latex]\underset{6}{\overset{k=1}{{\sum }^{\text{ }}}}3\cdot {2}^{k}[/latex]

Answer:

1. [latex]{a}_{1}=8[/latex], and we are given that [latex]n=11[/latex].We can find [latex]r[/latex] by dividing the second term of the series by the first. [latex-display]r=\frac{-4}{8}=-\frac{1}{2}[/latex-display] Substitute values for [latex]{a}_{1}, r, \text{and} n[/latex] into the formula and simplify. [latex]\begin{array}{l}{S}_{n}=\frac{{a}_{1}\left(1-{r}^{n}\right)}{1-r}\hfill \\ {S}_{11}=\frac{8\left(1-{\left(-\frac{1}{2}\right)}^{11}\right)}{1-\left(-\frac{1}{2}\right)}\approx 5.336\hfill \end{array}[/latex]
2. Find [latex]{a}_{1}[/latex] by substituting [latex]k=1[/latex] into the given explicit formula. [latex-display]{a}_{1}=3\cdot {2}^{1}=6[/latex-display] We can see from the given explicit formula that [latex]r=2[/latex]. The upper limit of summation is 6, so [latex]n=6[/latex].Substitute values for [latex]{a}_{1},r[/latex], and [latex]n[/latex] into the formula, and simplify. [latex]\begin{array}{l}{S}_{n}=\frac{{a}_{1}\left(1-{r}^{n}\right)}{1-r}\hfill \\ {S}_{6}=\frac{6\left(1-{2}^{6}\right)}{1 - 2}=378\hfill \end{array}[/latex]

Example: Solving an Application Problem with a Geometric Series

At a new job, an employee’s starting salary is $26,750. He receives a 1.6% annual raise. Find his total earnings at the end of 5 years.

Answer: The problem can be represented by a geometric series with [latex]{a}_{1}=26,750[/latex]; [latex]n=5[/latex]; and [latex]r=1.016[/latex]. Substitute values for [latex]{a}_{1}[/latex], [latex]r[/latex], and [latex]n[/latex] into the formula and simplify to find the total amount earned at the end of 5 years.

[latex]\begin{array}{l}{S}_{n}=\frac{{a}_{1}\left(1-{r}^{n}\right)}{1-r}\hfill \\ {S}_{5}=\frac{26\text{,}750\left(1-{1.016}^{5}\right)}{1 - 1.016}\approx 138\text{,}099.03\hfill \end{array}[/latex]

He will have earned a total of $138,099.03 by the end of 5 years.

Example: Solving an Annuity Problem

A deposit of $100 is placed into a college fund at the beginning of every month for 10 years. The fund earns 9% annual interest, compounded monthly, and paid at the end of the month. How much is in the account right after the last deposit?

Answer: The value of the initial deposit is $100, so [latex]{a}_{1}=100[/latex]. A total of 120 monthly deposits are made in the 10 years, so [latex]n=120[/latex]. To find [latex]r[/latex], divide the annual interest rate by 12 to find the monthly interest rate and add 1 to represent the new monthly deposit.

[latex]r=1+\frac{0.09}{12}=1.0075[/latex]

Substitute [latex]{a}_{1}=100\text{,}r=1.0075\text{,}\text{and}n=120[/latex] into the formula for the sum of the first [latex]n[/latex] terms of a geometric series, and simplify to find the value of the annuity.

[latex]{S}_{120}=\frac{100\left(1-{1.0075}^{120}\right)}{1 - 1.0075}\approx 19\text{,}351.43[/latex]

So the account has $19,351.43 after the last deposit is made.