I need help with Bijections!

dchilow · 2007-04-01 15:17:46

Prove that if there is a bijection between two sets A and B, then there is a bijection between P(A) and P(B).

I don't think I can use an example because this is a for all statement.
I am pretty stuck here.
Please someone help me!!!!

Stanley_Marsh · 2007-04-01 16:05:35

If A={1,2,3} the bi-function is 2x+1 , then B={3,5,7}

If P(x)=(x-1)(x-2)(x-3)
Then P(A)={0} , P(B)={0,24,120}

I think this statement is a little weird.

Last edited by Stanley_Marsh (2007-04-01 16:55:23)

Ricky · 2007-04-01 16:34:51

Once you construct the bijection, this proof is fairly easy. The trick is finding the bijection.

Well, first lets take a look at what we got. We have two sets A and B, and we know there is a bijection between the two. Because this statement is not true if there isn't a bijection between A and B, we should probably use this bijection in our proof...

So how do we use it? Well, we can send a single element to another element. But we need elements of P(A) and P(B), not of A and B. What are the elements of P(A) and P(B)? They are subsets of P(A) and P(B). So how is it that we can take a bijection of elements and turn it into a bijection of subsets...

Well, so I don't hold you in suspense, we just take each element of the subset and use the bijection to make our new subset in P(B):

Let s be a subset of A, f be the bijection from A into B.

g(s) = {f(e) : e is in S}

This must be a subset of B. It also must be 1-1 and onto. It's now your job to prove that.

JaneFairfax · 2007-04-01 21:31:31

Stanley_Marsh wrote:

If A={1,2,3} the bi-function is 2x+1 , then B={3,5,7}
If P(x)=(x-1)(x-2)(x-3)
Then P(A)={0} , P(B)={0,24,120}
I think this statement is a little weird.

P(A) is not a function. Its the power set of A, i.e. the set of all subsets of A. Thus, if A = {1,2,3}, P(A) = {∅,{1},{2},{3},{1,2},{1,3},{2,3},A}.

Stanley_Marsh · 2007-04-01 21:37:51

Oh , I see .. lol~

dchilow · 2007-04-02 13:54:44

Thank you Ricky, I appreciate it.

Math Is Fun Forum

#1 2007-04-01 15:17:46

I need help with Bijections!

#2 2007-04-01 16:05:35

Re: I need help with Bijections!

#3 2007-04-01 16:34:51

Re: I need help with Bijections!

#4 2007-04-01 21:31:31

Re: I need help with Bijections!

#5 2007-04-01 21:37:51

Re: I need help with Bijections!

#6 2007-04-02 13:54:44

Re: I need help with Bijections!

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