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differentiation (1 Viewer)

micuzzo

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^meant to say integration



hey can someone plz explain how i would ANTIdifferentiate...ok i mean integrate 5/3x

i dont understand how to use f'(x)/f(x) dx = ln f(x) + C
 
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lyounamu

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hey can someone plz explain how i would differentiate 5/3x

i dont understand how to use f'(x)/f(x) dx = ln f(x) + C
uh...

y = 5/3x = 5/3 x^-1

dy/dx = -5/3 x^-2 = -5/3x^2

But I think you mean integration by looking at your second question....

y' = 5/3x = 5/3 . 1/x
y = 5/3 lnx +c
 

lyounamu

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derivative of ln x = 1/x + c

derivative of ln f(x) = f'(x)/f(x) + c

Apply to question and go.

So, to differentiate 5/3x, you need a 3 on top (3 = derivative of 3x).

Thus, you manipulate to look like this:

5/3 x (3/3x)

The use the rules above to end up with:

[5 ln (3x)]/3
You just did integration...
 

micuzzo

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uh...

y = 5/3x = 5/3 x^-1

dy/dx = -5/3 x^-2 = -5/3x^2

But I think you mean integration by looking at your second question....

y' = 5/3x = 5/3 . 1/x
y = 5/3 lnx +c

yar im a lost dude... i meant integration...will fix

but i still dont get it
 

lolokay

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well it could be 5/3 ln 3x +C (not 3/5)
this is equivalent to 5/3 ln x +C, since ln 3x = ln x + ln3, and ln3 is just a constant
 

lyounamu

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lol, sorry for not explaining straight.
 
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micuzzo

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so let me get this straight... we need to make the numerator the same as the derivative of the denominator right..?

so cant we just say 3/5 S 5/3x = 3/5 ln 3x + C [where S is the integrand sign] (since 3/5 x 5 = 3)

please correct me someone...
 

lyounamu

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so let me get this straight... we need to make the numerator the same as the derivative of the denominator right..?

so cant we just say 3/5 S 5/3x = 3/5 ln 3x + C [where S is the integrand sign] (since 3/5 x 5 = 3)

please correct me someone...

should be 5/3 ln3x + c

think about it, you go from 5/3x to 5/3 . 3/3x
 

lolokay

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at the second line you could also use 1/x, or anything equivalent
 
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to integrate of 5/3x, you need f'(x) on the top and f(x) on the bottom, so take 5 out of the picture:

5 S 1/3x dx (S meaning the integral sign)
= 5/3 S 3/3x dx(as you need a 3 on top, you borrow a three and then divide by it)
= 5/3 ln 3x + c
hope that helps

edit*lol i think i posted this a bit late
 

micuzzo

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^yeah great stuff guys i now understand...thanks heaps esp to lolokay
 

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