Suitable method for Induction (1 Viewer)

frog1944 · Jan 6, 2017

Hi,

Is the following a suitable method for induction? (For the purpose of brevity, I'm going to skip the testing and the conclusion)
$\text{Prove by Mathematical Induction for n is an integer and greater than or equal to 4 that, } 2^n \geq n^2 \\ \text{Assume statement is true for } n=k \\ \text{Prove the statement true for }n=k+1 \\ 2^{k+1}=2 \cdot 2^k \\ >2 \cdot k^2 \text{By assumption} \\ = k^2 + k^2 \\ > k^2 + 2k + 1, k^2>2k+1, \text{prove this from drawing a graph for} k \geq 4 \\ =(k+1)^2$

Thanks

InteGrand · Jan 6, 2017

frog1944 said:
Hi,

Is the following a suitable method for induction? (For the purpose of brevity, I'm going to skip the testing and the conclusion)
$\text{Prove by Mathematical Induction for n is an integer and greater than or equal to 4 that, } 2^n \geq n^2 \\ \text{Assume statement is true for } n=k \\ \text{Prove the statement true for }n=k+1 \\ 2^{k+1}=2 \cdot 2^k \\ >2 \cdot k^2 \text{By assumption} \\ = k^2 + k^2 \\ > k^2 + 2k + 1, k^2>2k+1, \text{prove this from drawing a graph for} k \geq 4 \\ =(k+1)^2$

Thanks

$\noindent Yes pretty much, except you don't need a graph to show $k^{2} > 2k+1$ for $k\geq 4$, it can be shown algebraically: $k^{2} = (k+1)(k-1)+1 > 2k+1$, since $k-1>2$ and $k+1>k$.$

frog1944 · Jan 6, 2017

Ok, though if I just used the graphical method would it still be ok (For the HSC)?

InteGrand · Jan 6, 2017

frog1944 said:
Ok, though if I just used the graphical method would it still be ok (For the HSC)?

I guess so, but it's probably safer to use the algebraic method.

frog1944 · Jan 6, 2017

Ok, thanks InteGrand

aroon · Jan 6, 2017

If the question doesn't explicitly ask for MI (e.g prove than 2^n>/= n^2 (n>/=4)(idk how to use LaTeX and ceebs learning)) can you just draw a graph of the two functions and say that due to the gradient of n^2 always being less than 2^n, 2^n will always be larger?

pikachu975 · Jan 7, 2017

Just about the OP's question, is there a way to do that by showing 2^n - n^2 >= 0 (minusing n^2)? Thanks!

Shadowdude · Jan 7, 2017

aroon said:
If the question doesn't explicitly ask for MI (e.g prove than 2^n>/= n^2 (n>/=4)(idk how to use LaTeX and ceebs learning)) can you just draw a graph of the two functions and say that due to the gradient of n^2 always being less than 2^n, 2^n will always be larger?

no, because the gradient of x^2 is larger than the gradient of 500+x, but x^2 isn't always larger

you need to specify an initial point and a range of values

pikachu975 said:
Just about the OP's question, is there a way to do that by showing 2^n - n^2 >= 0 (minusing n^2)? Thanks!

probably, but i envision it'd be more difficult

Suitable method for Induction (1 Viewer)

frog1944

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InteGrand

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