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Steve_2007

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Candy Bars
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Given that f is a function with the following properties;
i. f(Xsub1+Xsub2) = f(Xsub1)*f(Xsub2) far all Xsub1 and Xsub2
ii. f(x) = 1 = xg(x) where lim x->0 g(x) =1
Prove that f ' (x) = f(x)

no1likesme

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not Frank Sinatra
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678 Posts
7... or maybe 11...
7 + 11 = 7/11
mmmmmm.... slurpee

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4,182 Posts
its definately 7

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i like cheese

Steve_2007

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Candy Bars
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Discussion Starter · ·
7/11 i dont think thats the answer but now i want a slurpee

ovrlnd

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HURL SCOUTS
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"WE COULD BUT WE WON'T! It's a spaceship damnit, not a prom limousine. If anyone needs me I'll be in the angry-dome"

Quagmire

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Uggh
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Given that f is a function with the following properties;
i. f(Xsub1+Xsub2) = f(Xsub1)*f(Xsub2) far all Xsub1 and Xsub2
ii. f(x) = 1 = xg(x) where lim x->0 g(x) =1
Prove that f ' (x) = f(x)
ok so y=x

:tonka: I could figure it out but I just got done doing 2 hours of math my brain hurts

Steve_2007

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Candy Bars
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498 Posts
Discussion Starter · ·
Someone must know this one!

tsaguy

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Semper Fidelis
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4,541 Posts
f= the following:

f(x)= I want some candy.

mtnbikinbryno

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Someone must know this one!
Do your own homework. oke:

BlooMule

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Old School
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Given that f is a function with the following properties;
i. f(Xsub1+Xsub2) = f(Xsub1)*f(Xsub2) far all Xsub1 and Xsub2
ii. f(x) = 1 = xg(x) where lim x->0 g(x) =1
Prove that f ' (x) = f(x)
Prove that it DOESN'T, BeeYotch!!!

merr6267

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More boost than yours:)
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1,252 Posts
I forgot how to do calculus . . . all my books and notes are sitting right next to me on in the book case, but I'm not digging it out. Sorry. You're on your own, just like I was lol.

Get the solution manual.

Maybe later I'll think about it, but not likely.

JEEPR

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Playing Possum
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Why do you have a question about car audio?

Steve_2007

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Candy Bars
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498 Posts
Discussion Starter · · ScOoTeR

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hoo dat. wat.
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Given that f is a function with the following properties;
i. f(Xsub1+Xsub2) = f(Xsub1)*f(Xsub2) far all Xsub1 and Xsub2
ii. f(x) = 1 = xg(x) where lim x->0 g(x) =1
Prove that f ' (x) = f(x)
This is the last place you want to look for help on the internet. Search for calc proof on the internets.

Chiefwoohaw

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Pokerob is my B*tch!
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that's an Inverse function proof. It's more like late AlgbII which is Pre calc.

Steve_2007

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Candy Bars
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498 Posts
Discussion Starter · ·
actually you prove it using using the definition of a derivative, which is calc 1
i figured it out, at least i think i did,
first i solved for x in f(x)=1+xg(x) for x which is x = (f(x)-1)/g(x) then i took the x's in that equation and replaced them with h's
Then i modified the definition of a derivative
f ' (x) = lim h->0 ((f(x+h)-f(x))/h) => lim h->0 ((f(x)*f(h)-f(x))/h),
Then i replaced h in the denominator with
(f(h)-1)/g(h) making the whole equation look like this

lim h->0 ((f(x)*f(h)-f(x))/(f(h)-1)/g(h)
modify that a bit to become
(f(x)*f(h)-f(x))/(f(x)-1)*g(h)

as h ->0 the top turns to just -f(x)
and the bottom becomes -1
so thats -f(x)/-1 which is just f(x)
That means that f '(x) = f(x)
at least i think i did that right, anyone that knows about calc should tell me if it looks right.

jeeperbrian

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GLFWDA member
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2,674 Posts
actually you prove it using using the definition of a derivative, which is calc 1
i figured it out, at least i think i did,
first i solved for x in f(x)=1+xg(x) for x which is x = (f(x)-1)/g(x) then i took the x's in that equation and replaced them with h's
Then i modified the definition of a derivative
f ' (x) = lim h->0 ((f(x+h)-f(x))/h) => lim h->0 ((f(x)*f(h)-f(x))/h),
Then i replaced h in the denominator with
(f(h)-1)/g(h) making the whole equation look like this

lim h->0 ((f(x)*f(h)-f(x))/(f(h)-1)/g(h)
modify that a bit to become
(f(x)*f(h)-f(x))/(f(x)-1)*g(h)

as h ->0 the top turns to just -f(x)
and the bottom becomes -1
so thats -f(x)/-1 which is just f(x)
That means that f '(x) = f(x)
at least i think i did that right, anyone that knows about calc should tell me if it looks right.
wait, what the hell did you do?

Steve_2007

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Candy Bars
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498 Posts
Discussion Starter · ·
proved that in the for the function with the properties given that f ' (x) = f(x), the properties are given in the beginning of the post

jeeperbrian

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GLFWDA member
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2,674 Posts
proved that in the for the function with the properties given that f ' (x) = f(x), the properties are given in the beginning of the post
ummmm...sounds great :sonicjay:

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