How do you find the derivative using limits of $f (x) = 9 - \frac{1}{2} x$ $f(x)=9-1/2x$ ?

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How do you find the derivative using limits of $f (x) = 9 - \frac{1}{2} x$ $f(x)=9-1/2x$ ?

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Answer 1 · 2017-10-13T00:35:17

$f'(x) = -1/2$
See below for details.

Explanation:

We will use the limit definition, $f'(x) = lim_(h->0) (f(x + h) - f(x))/h$ .

$f'(x) = lim_(h->0) (9 - 1/2(x + h) - (9 - 1/2x))/h$

$f'(x) = lim_(h->0) (9- 1/2x - 1/2h - 9 + 1/2x)/h$

$f'(x) = lim_(h->0) (-1/2h)/h$

$f'(x) = lim_(h->0) -1/2$

$f'(x) = -1/2$

Hopefully this helps!

Answer 2 · 2017-10-13T00:35:56

This is the formula for finding the derivative using limits:

$d/dxf(x) = lim_(h->0)(f(x-h)-f(x))/h$

Plug in $(x-h)$ wherever you see an $x$ in your $f(x)$ for the first part of your numerator and then just the function itself for the second part of the numerator.

Then, its just basic arithmetic after that:

$=lim_(h->0)((9-(x-h)/2)-(9-x/2))/h$

$=lim_(h->0)((18/2-(x-h)/2)-(18/2-x/2))/h$

$=lim_(h->0)(((18-x+h)/2)-((18-x)/2))/h$

$=lim_(h->0)((18-x+h)/2-(18+x)/2)/h$

$=lim_(h->0)((cancel18cancel-x+cancelh)/2-(cancel18+cancelx)/2)/cancelh$

$=lim_(h->0)-1/2$

$=-1/2$

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How do you find the derivative using limits of $f (x) = 9 - \frac{1}{2} x$ $f(x)=9-1/2x$ ?

2 Answers

Explanation:

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How do you find the derivative using limits of $f (x) = 9 - \frac{1}{2} x$ $f(x)=9-1/2x$ ?