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HSC 2005 Q4 a (1 Viewer)

SpiralFlex

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Now guys ^.^, please don't think I'm a faggot trying to "prove my math skills" in a sea of genius's haha, cause I realise I'm only doing ext1 :(, I am just trying my luck at lots of questions and building my Mathematics vocabulary (very slowly ^.^) (and attempting to get better at Latex.. pfft)

So then, Eldar! can you please tell me if these are right?

Correct. You might want to put a "/" in your Latex code before your trigonometric functions.
 

Carl5

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Now guys ^.^, please don't think I'm a faggot trying to "prove my math skills" in a sea of genius's haha, cause I realise I'm only doing ext1 :(, I am just trying my luck at lots of questions and building my Mathematics vocabulary (very slowly ^.^) (and attempting to get better at Latex.. pfft)

So then, Eldar! can you please tell me if these are right?

Sweet! I got the same! Thanks for the help everyone! I rather like this method.
 

someth1ng

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Apparently you're supposed to do this in one line using common sense.

integral[sin^3(x)]=3sin^2(x)cos(x) and work from there...
 

someth1ng

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integral[3*sin^2(x)*cos(x)]=sin^3(x)+C
OR
d/dx [sinx]^3 = 3 (sinx)^2 (cosx)

So obviously if "integral[3*sin^2(x)*cos(x)]=sin^3(x)+C" then integrating sin^2(x)*cos(x)=[1/3](sinx)^3

That's better.
 
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taeyang

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integral[3*sin^2(x)*cos(x)]=sin^3(x)+C
OR
d/dx [sinx]^3 = 3 (sinx)^2 (cosx)

So obviously if "integral[3*sin^2(x)*cos(x)]=sin^3(x)+C" then integrating sin^2(x)*cos(x)=[1/3](sinx)^3

That's better.
You still didn't specify why you are actually posting this as spiral said.
 

someth1ng

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"Apparently you're supposed to do this in one line using common sense."

The Excel Fast Track mini-book says that it can be done straight from memory.
 

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