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**fusilli_jerry89****Member**- Registered: 2006-06-23
- Posts: 86

Consider the following theorem:

A positive integer n is divisible by 2^t

if and only if the number consisting of the

last t digits of n is divisible by 2^t

For instance 68 is divisible by 2^2 = 4, and hence 38168 is divisible by 4. On the other hand,

0260 is not divisible by 2^4 = 16, and so 10440260 is not divisible by 16.

Prove the theorem using a direct proof. Hint: to prove a biconditional, you need to

prove two implications.

Yeah Im confused..

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**Ricky****Moderator**- Registered: 2005-12-04
- Posts: 3,791

How many powers of 2 are contained in 10^t? How many powers of 10 are contained in t-digits?

"In the real world, this would be a problem. But in mathematics, we can just define a place where this problem doesn't exist. So we'll go ahead and do that now..."

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**fusilli_jerry89****Member**- Registered: 2006-06-23
- Posts: 86

so im a bit rusty:

yer asking (10^t)/2^x ; what is x right? Ok well I forgot how to divide powers with different bases lol.

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**fusilli_jerry89****Member**- Registered: 2006-06-23
- Posts: 86

ok well apparently im very confused. You cant divide power with different powers, right?

So how am i supposed to find how many powers of 2 are in 10^t ?

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**fusilli_jerry89****Member**- Registered: 2006-06-23
- Posts: 86

lol i hate to be annoying but im kinda in a hole here. I have a midterm tomorrow on this stuff and I found that I get almost everything except this kind of question. The prof said a similar question would be on the exam but i was sick and missed the solution. Is there any way I can get quick help before tomorrow before 12:30? Thx

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**fusilli_jerry89****Member**- Registered: 2006-06-23
- Posts: 86

ok so I said that n=the number, and the number t is the amount of numbers at the end of n. I call the numbers in t x. so n = x + (n - x) (where x = last digits). So now I must show that 2^t | n implies 2^t | the last digits and 2^t | the last digits implies 2^2 | n.

So n = x + y10^t (where y is the first digits and x is the last digits)

So now I think I must show that 2^t divides n and 2^t divides (x + y10^t).

Now I am stuck..

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**mathsyperson****Moderator**- Registered: 2005-06-22
- Posts: 4,900

You're getting there, but I think you've confused yourself about what you need to prove.

You've defined n = x + y*10^t, with x being the last t digits of n.

Then, the original question in terms of these is to prove that:

2^t divides x if and only if 2^t divides (x + y*10^t).

You do NOT need to prove that those two things are true (that would be wrong), just that they're always both true or both false.

The question hints that you can do this by showing each implication separately.

ie. Assume that 2^t divides x and use that to show that 2^t divides (x + y*10^t).

Then do it the other way around. I'm not sure you need to do that, since both of those proofs would be pretty similar, but it's something to think about if you're still stuck.

Why did the vector cross the road?

It wanted to be normal.

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**fusilli_jerry89****Member**- Registered: 2006-06-23
- Posts: 86

k but if we assume 2^t divides n and try to prove that 2^t divides x + y10^t , can't we just say that since n = x + y10^t and 2&t divides n than it must divide x + y10^t because that's what n is?

Or must I do more than this? lol

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**fusilli_jerry89****Member**- Registered: 2006-06-23
- Posts: 86

10 mins till exam..

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**bitus****Member**- Registered: 2008-10-12
- Posts: 20

Let n be:a(t+k)a(t+k-1)a(t+k-2)...a(t+1)a(t)a(t-1)...a(2)a(1). It has t+k digits. The last t digits form a t-digit number divided by 2^t. The first k digits form a k-digit number that can be written as : 10^[t+1]*[a(t+k)*10^[k]+a(t+k-1)*10^[k-1]+...+a(t+1)]. This number is divided by 2^t since 10^[t+1] is divited by 2^t: 10^[t+1]=[2*5]^[t+1]=2^t*[2*5^[t+1]]. So, the whole n is divited by 2^t. If the t-digit number is not divided by 2^t, then (n/2^t) is not an integer.

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