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ronaldinho

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sry i might have given the wrong question

no sry meant x^2 - 1/square root x



meaning x^2 - x^-1/2..



how do i differentaite that... instead of bringint the power down.. can i get it under a common denom?
 
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pLuvia

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Is that (x2-1)/sqrt{x}? You can just use quotient rule, much faster than changing it to using the product rule
 

jemsta

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yeah just use the quotient rule...faster and less messier
 

ronaldinho

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no sry meant x^2 - 1/square root x

meaning x^2 - x^-1/2..

how do i differentaite that... instead of bringint the power down.. can i get it under a common denom?
 
P

pLuvia

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It'd be easier just to differentiate it as it is:
d/dx(x2-x-1/2)
=2x+x-3/2/2
 

jest

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is the answer:

2x + (1/2square root x^3)?

i brought the power down and rearranged it; not sure i it's right though
 

ronaldinho

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is there any other ways?... i done x^2 - x^-1/2

=x^2 - 1/ x^1/2

den i brought it under a comm0on denom.. then i brought the denom to the top and multiplied it by the numerator then dy/dx
 
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pLuvia

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ronaldinho said:
is there any other ways?... i done x^2 - x^-1/2

=x^2 - 1/ x^1/2

den i brought it under a comm0on denom.. then i brought the denom to the top and multiplied it by the numerator then dy/dx
Yep that's fine. And your also correct jest
 

ronaldinho

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sry ignore that PM...

is this working correct.. cos i get diff anser..

so its

x^2 - [ 1/x^1/2] = x^2 - 1/x^1/2

= x^1/2(x^2) - 1 / x^1/2

= x^3/2 - 1 / x^1/2

= x^-1/2 ( x^3/2 - 1)

= x - x^-1/2

dy/dx = 1 + 1/2x^-3/2



...
sry this might sound complicated.. plz write it down...

thanks for ur help! .. damn should have done it ur way... this question was in our test.. dats y i want to get it right...
 

ronaldinho

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yeha ur right.. i should have done it ur way.. but in exams im not thinking.. im like.. y wiould they give it that easy.. i was thinking!

damn!!!!!....
 

ronaldinho

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ronaldinho said:
sry ignore that PM...

is this working correct.. cos i get diff anser..

so its

x^2 - [ 1/x^1/2] = x^2 - 1/x^1/2

= x^1/2(x^2) - 1 / x^1/2

= x^3/2 - 1 / x^1/2

= x^-1/2 ( x^3/2 - 1)

= x - x^-1/2

dy/dx = 1 + 1/2x^-3/2



...
sry this might sound complicated.. plz write it down...

thanks for ur help! .. damn should have done it ur way... this question was in our test.. dats y i want to get it right...
but is this way still right.. cos for some reason i get diff answer...??
 

Riviet

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ronaldinho said:
x^2 - [ 1/x^1/2] = x^2 - 1/x^1/2

= x^1/2(x^2) - 1 / x^1/2

= x^3/2 - 1 / x^1/2
1/2 + 2 =/= 3/2 :p

1/2 + 2 = 1/2 + 4/2 = 5/2 :karate:
 

Riviet

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ronaldinho said:
oh sry ur right.. so is the method i done still right?
The method is valid but unnecessary as there was no need to change its original form to differentiate. :p
 

Riviet

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katykins said:
y= x^2 - x^(-1/2)
y'= 2x + 1/2 x^-1
You subtracted 1/2 from the index instead of subtracting 1 from the index. :)
 

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