5.1 Approximating areas (Page 2/17)

Calculus volume 1 Page 2 / 17

Write in sigma notation and evaluate the sum of terms 2 ⁱ for $i = 3, 4, 5, 6 .$

$\sum_{i = 3}^{6} 2^{i} = 2^{3} + 2^{4} + 2^{5} + 2^{6} = 120$

The properties associated with the summation process are given in the following rule.

Rule: properties of sigma notation

Let $a_{1}, a_{2},…, a_{n}$ and $b_{1}, b_{2},…, b_{n}$ represent two sequences of terms and let c be a constant. The following properties hold for all positive integers n and for integers m , with $1 \leq m \leq n .$

$\sum_{i = 1}^{n} c = n c$
$\sum_{i = 1}^{n} c a_{i} = c \sum_{i = 1}^{n} a_{i}$
$\sum_{i = 1}^{n} (a_{i} + b_{i}) = \sum_{i = 1}^{n} a_{i} + \sum_{i = 1}^{n} b_{i}$
$\sum_{i = 1}^{n} (a_{i} - b_{i}) = \sum_{i = 1}^{n} a_{i} - \sum_{i = 1}^{n} b_{i}$
$\sum_{i = 1}^{n} a_{i} = \sum_{i = 1}^{m} a_{i} + \sum_{i = m + 1}^{n} a_{i}$

Proof

We prove properties 2. and 3. here, and leave proof of the other properties to the Exercises.

2. We have

\begin{matrix} \sum_{i = 1}^{n} c a_{i} & = c a_{1} + c a_{2} + c a_{3} + ⋯ + c a_{n} \\ = c (a_{1} + a_{2} + a_{3} + ⋯ + a_{n}) \\ = c \sum_{i = 1}^{n} a_{i} . \end{matrix}

3. We have

\begin{matrix} \sum_{i = 1}^{n} (a_{i} + b_{i}) & = (a_{1} + b_{1}) + (a_{2} + b_{2}) + (a_{3} + b_{3}) + ⋯ + (a_{n} + b_{n}) \\ = (a_{1} + a_{2} + a_{3} + ⋯ + a_{n}) + (b_{1} + b_{2} + b_{3} + ⋯ + b_{n}) \\ = \sum_{i = 1}^{n} a_{i} + \sum_{i = 1}^{n} b_{i} . \end{matrix}

□

A few more formulas for frequently found functions simplify the summation process further. These are shown in the next rule, for sums and powers of integers , and we use them in the next set of examples.

Rule: sums and powers of integers

The sum of n integers is given by

$\sum_{i = 1}^{n} i = 1 + 2 + ⋯ + n = \frac{n (n + 1)}{2} .$
The sum of consecutive integers squared is given by

$\sum_{i = 1}^{n} i^{2} = 1^{2} + 2^{2} + ⋯ + n^{2} = \frac{n (n + 1) (2 n + 1)}{6} .$
The sum of consecutive integers cubed is given by

$\sum_{i = 1}^{n} i^{3} = 1^{3} + 2^{3} + ⋯ + n^{3} = \frac{n^{2} {(n + 1)}^{2}}{4} .$

Evaluation using sigma notation

Write using sigma notation and evaluate:

The sum of the terms ${(i - 3)}^{2}$ for $i = 1, 2,…, 200 .$
The sum of the terms $(i^{3} - i^{2})$ for $i = 1, 2, 3, 4, 5, 6 .$

Multiplying out ${(i - 3)}^{2},$ we can break the expression into three terms.

$\begin{matrix} \sum_{i = 1}^{200} {(i - 3)}^{2} & = \sum_{i = 1}^{200} (i^{2} - 6 i + 9) \\ = \sum_{i = 1}^{200} i^{2} - \sum_{i = 1}^{200} 6 i + \sum_{i = 1}^{200} 9 \\ = \sum_{i = 1}^{200} i^{2} - 6 \sum_{i = 1}^{200} i + \sum_{i = 1}^{200} 9 \\ = \frac{200 (200 + 1) (400 + 1)}{6} - 6 [\frac{200 (200 + 1)}{2}] + 9 (200) \\ = 2,686,700 - 120,600 + 1800 \\ = 2,567,900 \end{matrix}$
Use sigma notation property iv. and the rules for the sum of squared terms and the sum of cubed terms.

$\begin{matrix} \sum_{i = 1}^{6} (i^{3} - i^{2}) & = \sum_{i = 1}^{6} i^{3} - \sum_{i = 1}^{6} i^{2} \\ = \frac{6^{2} {(6 + 1)}^{2}}{4} - \frac{6 (6 + 1) (2 (6) + 1)}{6} \\ = \frac{1764}{4} - \frac{546}{6} \\ = 350 \end{matrix}$

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Find the sum of the values of $4 + 3 i$ for $i = 1, 2,…, 100 .$

15,550

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Finding the sum of the function values

Find the sum of the values of $f (x) = x^{3}$ over the integers $1, 2, 3,…, 10 .$

Using the formula, we have

\begin{matrix} \sum_{i = 0}^{10} i^{3} & = \frac{{(10)}^{2} {(10 + 1)}^{2}}{4} \\ = \frac{100 (121)}{4} \\ = 3025. \end{matrix}

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Evaluate the sum indicated by the notation $\sum_{k = 1}^{20} (2 k + 1) .$

440

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Approximating area

Now that we have the necessary notation, we return to the problem at hand: approximating the area under a curve. Let $f (x)$ be a continuous, nonnegative function defined on the closed interval $[a, b] .$ We want to approximate the area A bounded by $f (x)$ above, the x -axis below, the line $x = a$ on the left, and the line $x = b$ on the right ( [link] ).

A graph in quadrant one of an area bounded by a generic curve f(x) at the top, the x-axis at the bottom, the line x = a to the left, and the line x = b to the right. About midway through, the concavity switches from concave down to concave up, and the function starts to increases shortly before the line x = b. — An area (shaded region) bounded by the curve $f (x)$ at top, the x -axis at bottom, the line $x = a$ to the left, and the line $x = b$ at right.

How do we approximate the area under this curve? The approach is a geometric one. By dividing a region into many small shapes that have known area formulas, we can sum these areas and obtain a reasonable estimate of the true area. We begin by dividing the interval $[a, b]$ into n subintervals of equal width, $\frac{b - a}{n} .$ We do this by selecting equally spaced points $x_{0}, x_{1}, x_{2},…, x_{n}$ with $x_{0} = a, x_{n} = b,$ and

x_{i} - x_{i - 1} = \frac{b - a}{n}

for $i = 1, 2, 3,…, n .$

We denote the width of each subinterval with the notation Δ x , so $Δ x = \frac{b - a}{n}$ and

x_{i} = x_{0} + i Δ x

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Source: OpenStax, Calculus volume 1. OpenStax CNX. Feb 05, 2016 Download for free at http://cnx.org/content/col11964/1.2

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