Find the inverse. (1 Viewer)

miithun

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I don't think you know what you are doing.
You came to the question in the end because you didn't swap the x's and y's.
Anyone else?
 

Aquawhite

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By the fundamental log property that:





Here's the graph that you will most likely need to draw in the second part which of course you can work out using calculus:

 
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Trebla

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By the fundamental log property that:





Here's the graph that you will most likely need to draw in the second part which of course you can work out using calculus:

I don't think that is correct. I'm not sure what you did, but the two functions are not symmetric about y = x.

Is this the full question or is it asking you to evaluate the inverse at a certain number (which can be done without explicitly finding the inverse)?
 

Aquawhite

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I don't know how to do the initial question.

but alogb = log(b^a)
Yes, I recognise that... I was trying to adapt the idea by basically having the y represent just any number... but just testing a few on the calculator I see that it was wrong. At least I gave it a go.
 

kaz1

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Doesn't look like HSC, tried it on Maple and got y/LambertW(y)
 

miithun

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I will provide the full question.
a) Consider the function f(x) = xlnx
i) Show that y=f(x) has minumum turning point at [1/e, -1/e] [2marks]
ii) Hence sketch the curve y=f(x) for x>= 1/e
iii) Draw the sketch of the inverse function of y=f(x) for x>= 1/e

Sorry guys i just realised you don't need to find inverse function because you can just refelct the graph of part ii) over the line y=x
 

tommykins

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Yes, I recognise that... I was trying to adapt the idea by basically having the y represent just any number... but just testing a few on the calculator I see that it was wrong. At least I gave it a go.
Yes I know, not a problem. Minor technicalities.
 

kooltrainer

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the inverse is : y^y = e^x
dont need to make y the subject..coz its the same thing..
 

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