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Home Q & A Board Science-Related Homework Help Mathematics Pre-calculus and Functions
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s.h_math Author
wrote...
#14
2 years ago Edited: 2 years ago, s.h_math
do you mean where it says -f(x) that's the second neg that makes it positive?
Post Merge: 2 years ago

do you mean where it says -f(x) that's the second neg that makes it positive?
wrote...
#15
Educator
2 years ago
Quote from: s.h_math (2 years ago)
do you mean where it says -f(x) that's the second neg that makes it positive?

Exactly 👍
s.h_math Author
wrote...
#16
2 years ago
oh okay I believe I understand. Thank you. basically, if it was a positive 5, in the equation I would sub in -5, correct?
wrote...
#17
Educator
2 years ago
Technically, yes. We got -5 as the output, then we put it as f(x) in the formula which had a negative at the front, for example

... - f(x)
... - (-5)
... + 5
s.h_math Author
wrote...
#18
2 years ago
also sir one last question, where do you get (h-2) from?
wrote...
#19
Educator
2 years ago
You see where we simplified to h^2 - 2h? I common factored an 'h' from it, so:

h(h-2)

Then, given that the denominator had an 'h' also, it cancelled with the factored 'h' above, leaving me with h-2 as my final expression.

Do you see it?
s.h_math Author
wrote...
#20
2 years ago
wouldn't it be done like this sir?
Post Merge: 2 years ago

https://ibb.co/RbBndHB
wrote...
#21
Educator
2 years ago
Quote from: s.h_math (2 years ago)
wouldn't it be done like this sir?
Post Merge: 2 years ago

https://ibb.co/RbBndHB

You could do it that way where you don't evaluate f(2) until the very end, as you did in your sample.

What I did was evaluate x right from the beginning -- doesn't matter either way.

Also, I didn't take the limit as h->0. But if I did, I would get the same answer:

\(m = h - 2\)

\(m\ =\ \lim _{h\ \rightarrow 0}\left(h-2\right)\)

\(m\ =\ -2\)
s.h_math Author
wrote...
#22
2 years ago
Thank you so much for all your help!
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