Mathematical Induction (1 Viewer)

jchoi · Mar 3, 2009

Hi, I've got a question which asks if n(n+1) is even for all n>0.

I'm just wondering if "even" just means divisible by 2.

so I got on my paper
Showing that statement is true for n=1:
1(2)=2 which is divisible by 2
Assuming that statement is true for n=k:
k(k+1)= $k^2+k$ =2a where a is an interger.
Proving that statement is true for n=k+1:
(k+1)(k+2)= $k^2+3k+2$
=2a +2k+2
=2(a+k+1)
which is divisible by 2 as a+k+1 is an interger.

[Then the mouthful about if statement is tru for n=k, it is also.... blah]

This is correct, right?

youngminii · Mar 3, 2009

I guess.. The working doesn't seem very elegant to me and so in lieu of a better reply by someone smarter, I'll just say you'll get the mark.

Iruka · Mar 3, 2009

Does the question specifically tell you to use induction?

kurt.physics · Mar 3, 2009

jchoi said:
Hi, I've got a question which asks if n(n+1) is even for all n>0

if the question doesnt specifically reference induction, then you could just simply prove it by cases.

$We\,\,have\,\,two\,\,possible\,\,cases.\,\,That\,\,is,\,\,if\,\,n\,\,is\,\,an\,\,odd \,\,number\,\,or\,\,an\,\,even \,\,number.$

$If\,\,n\,\,is\,\,even,\,\,then\,\,we\,\,can\,\,write\,\,n\,\,in\,\,the\,\,form\,\,n = 2m.$

$When\,\,n = 2m,$

$n(n+1)$

$= 2m(2m + 1)$

$= 2( m(2m+1) )$

$= 2a\,\,\,\,\,where\,\,a = m(2m+1)$

$hence\,\, ,when\,\,n\,\,is\,\,even\,\, ,n(n+1)\,\,is\,\,also\,\,even$

$If\,\,n\,\,is\,\,odd,\,\,then\,\,we\,\,can\,\,write\,\,n\,\,in\,\,the\,\,form\,\,n = 2m + 1.$

$When\,\,n = 2m + 1,$

$n(n+1)$

$= (2m+1)(2m + 2)$

$= 2( (m+1)(2m+1) )$

$= 2b\,\,\,\,\,where\,\,b = (m+1)(2m+1)$

$hence\,\, ,when\,\,n\,\,is\,\,odd\,\, ,n(n+1)\,\,is\,\,even$

$\therefore\,\,n\,\,is\,\,even\,\,for\,\,all\,\,n>0$

kurt.physics · Mar 3, 2009

jchoi said:
so I got on my paper
Showing that statement is true for n=1:
1(2)=2 which is divisible by 2
Assuming that statement is true for n=k:
k(k+1)= $k^2+k$ =2a where a is an interger.
Proving that statement is true for n=k+1:
(k+1)(k+2)= $k^2+3k+2$
=2a +2k+2
=2(a+k+1)
which is divisible by 2 as a+k+1 is an interger.

[Then the mouthful about if statement is tru for n=k, it is also.... blah]

This is correct, right?

Yeh, this seams like a good way to go about it. Yeh, in a nutshell, even basically means divisible by 2 ie in the form 2m (2 times whatever

)

addikaye03 · Mar 3, 2009

Step three, Prove true for n=k+2 instead of n=k+1, assume that we begin on a even term

Trebla · Mar 3, 2009

k doesn't have to be even...it can be any positive integer. It's assumed k(k + 1) is even, not k.

Notice that n(n + 1) is the product of two consecutive integers, so one must be odd and the other must be even. Since the even number always has a factor of 2, then this factor will always make the number even. i.e. n(n + 1) = 2a.b for some integers a and b, where b is the odd part and 2a is the even part of the sequence {n, n + 1} and it is obvious that there is divisibility by 2...if that makes any sense lol

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