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Intermediate Value Theorem Question (1 Viewer)

VBN2470

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Can someone please answer the following Question.PNG

Thanks
 

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Carrotsticks

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Can you show us what you've done so far? So we can help you from there rather than just doing it for you.

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Sy123

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For the second part I am getting

 

VBN2470

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For the second part I am getting

Yep, sorry I've fixed it up for you now, what you said is right :) Would you mind explaining the question to me so I can see where to start and learn how to approach this type of question?

By the way, the actual question has given a hint by letting . I just wanted to see how you would approach this question given a hint was not provided.

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Sy123

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Also some changes should be made slightly to the terminology, on line 5 it should say

"then it takes every value from [0,1] at least twice"
 

Sy123

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Similarly:









.
.
.



Add them side by side:



 

Sy123

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OK Thanks :)

Another question I was sort of stuck on:

How many real zeroes does have?
Try differentiating and looking at the stationary points, they should tell you something about the way the curve moves.
 

VBN2470

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Try differentiating and looking at the stationary points, they should tell you something about the way the curve moves.
Never mind I got it, as and yield opposite signs. Is there another way of doing this question, using IVT or Extreme Value Theorem or some other method? For example the polynomial has only one real root, how would you be certain in finding the number of real zeroes existing?

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Sy123

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Never mind I got it, as and yield opposite signs. Is there another way of doing this question, using IVT or Extreme Value Theorem or some other method?

Thanks
That is essentially IVT, since P(-n) and P(3) yield opposite signs for sufficiently large n (i.e. when n goes to inifinty), then there is some root in (-n, 3), similarly, P(3) and P(5) yield opposite signs, and P(5) and P(n), for sufficiently large n is yield opposite signs.
 

VBN2470

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That is essentially IVT, since P(-n) and P(3) yield opposite signs for sufficiently large n (i.e. when n goes to inifinty), then there is some root in (-n, 3), similarly, P(3) and P(5) yield opposite signs, and P(5) and P(n), for sufficiently large n is yield opposite signs.
OK Thanks
 

seanieg89

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In case anybody is curious, this is known as the 'Universal Chord Theorem'.
I'm pretty sure that this isn't the universal chord theorem. The universal chord theorem is that the numbers of the form 1/n are the ONLY real numbers such that the above theorem holds.

This is a little more subtle and difficult than the question that was asked.
 

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I'm pretty sure that this isn't the universal chord theorem. The universal chord theorem is that the numbers of the form 1/n are the ONLY real numbers such that the above theorem holds.

This is a little more subtle and difficult than the question that was asked.
My fault!

When I saw the f(a)=f(a+1/n), UCT was the first thing that came to mind and I had thought they were required to prove it.
 

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