How do you find the average value of the function $f (x) = \frac{12}{\sqrt{2 x - 1}}$ $f(x) = 12/(sqrt(2x-1))$ on the interval of [1,5]?

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How do you find the average value of the function $f (x) = \frac{12}{\sqrt{2 x - 1}}$ $f(x) = 12/(sqrt(2x-1))$ on the interval of [1,5]?

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Answer 1 · 2015-04-20T18:12:23

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Answer 2 · 2015-04-20T18:43:44

The idea for positive functions:
The average value is the height of a horizontal line that gives a rectangle on the interval whose area is equal to the area under the curve.

Average value of $f (x)$ $f(x)$ on $[a, b]$ $[a,b]$ is

$\frac{1}{b - a} \int_{a}^{b} f (x) d x$ $1/(b-a) int_a^b f(x) dx$

So find
$\int_{1}^{5} \frac{12}{\sqrt{2 x - 1}} d x$ $int_1^5 12/sqrt(2x-1) dx$ (By substitution.)

$= 12 \sqrt{2 x - 1}]_{1}^{5}$ $= 12 sqrt(2x-1)]_1^5$

$= 12 (3) - 12 (1) = 24$ $=12(3) - 12(1) = 24$

Now divide by the length of the interval:

$\frac{24}{5 - 1} = \frac{24}{4} = 6$ $24/(5-1) = 24/4 = 6$

The average value is $6$ $6$

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How do you find the average value of the function $f (x) = \frac{12}{\sqrt{2 x - 1}}$ $f(x) = 12/(sqrt(2x-1))$ on the interval of [1,5]?

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