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I came across the above problem and was trying to solve.Could someone point me in the right direction? Thanks everyone in advance for your time.

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I think it's a red herring that the elements of the vector space are polynomials. I think all you really need to use is that the vector space is infinite-dimensional (and it may help that you know an explicit basis). –  Gerry Myerson Jan 18 '13 at 2:24
    
What do you mean, “solve”? This was a multiple choice question, with possible answers (A) through (D). One of them is true and the other three are false; do you know which is which? –  Lubin Jan 18 '13 at 4:02
    
@user336440 you are free to upvote any/all answers that are helpful, even if you've accepted one of them: you can accept and upvote. To upvote an answer, you click on the "greyed" out "upwards" arrow above the answer's vote-count (to the left of the answer). ;-) –  amWhy Jan 21 '13 at 17:18

4 Answers 4

up vote 2 down vote accepted

Hint: Use what you know about a vector space (and the axioms satisfied) and what this means given that $P$ is a vector space.

Think of the linear maps $T, S$ as linear operators on $p \in P$: each mapping P \to P, and whose composition is the identity map $(T\circ S)(p) = T(S(p)) = p\in P$.

What do you know about two maps, when composed, being an identity map? Does anything change if you take $S(T(p)) = (S \circ T)p\;$?


Caveat

Be careful to distinguish the case of finite-dimensional vector spaces, from infinite dimensional vector spaces. What is true in finite-dimensional spaces, does not necessarily hold in infinite dimensional vector spaces, as is the case here.

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I see that $(T\circ S)(p) = T(S(p)) = T(p')=p\in P$. But $(S\circ T)(p) = S(T(p)) =S(p')= ??\in P$.I am confused here. –  user52976 Jan 18 '13 at 3:30
    
Thanks a lot sir for the detailed clarification.I have got it. –  user52976 Jan 18 '13 at 3:45
    
You're very welcome. –  amWhy Jan 18 '13 at 3:46
    
@amWhy, I don’t know what you mean by “the” inverse of a linear map. All we know is that $T$ is one-to-one and $S$ is onto, so that $T$ has a left inverse, and $S$ has a right inverse. –  Lubin Jan 18 '13 at 4:06
    
@Lubin I still remember you for your wonderful "question" math.stackexchange.com/questions/253514/… ! I'd like to see you around a bit more, if you've the time! –  amWhy Jan 18 '13 at 4:21

Let $S:P\to P$ be such that $(Sp)(x)=\int_0^xp(x)dx$ & $T:P\to P$ be such that $(Tp)(x)=\frac{d}{dx}p(x).$ It's a matter of verification that both of $S,~T$ are linear and $TS$ is the identity transformation where none of $S$ and $T$ are identity. So (C) is false. Note for $p(x)=x^2+5x+2,~(ST)p=S(2x+5)=\int_0^x(2x+5)dx=x^2+5x\neq p(x)\implies ST$ is not identity whence (A) is true and (B) is false. Again there's no $\alpha\in\mathbb R$ such that $x^2+5x+2\neq2x+5=T(x^2+5x+2)\implies$ (D) is false.

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With apologies to @amWhy and appreciation to @Gerry and @Christopher, I would like to offer an expanded answer to the question. The whole point of the problem posed was to make the reader aware of the distinction between finite-dimensional and infinite-dimensional vector spaces.

For self-maps, that is endomorphisms, of finite-dimensional spaces, a linear map is onto if and only if it’s one-to-one. This comes by dimension-counting, and one consequence is that if $S\circ T$ is identity, then so is $T\circ S$. For matrices, this means that if a square matrix $A$ has a left inverse $B$, then $B$ is also a right inverse of $A$.

The situation is quite different for infinite-dimensional spaces, and here just because $S\circ T$ is identity, there’s no justification in saying that $T\circ S$ also is identity. @Christopher’s hinted example of integration as your $T$, which sends $x^n$ to $x^{n+1}/(n+1)$, and differentiation as your $S$, which sends $x^n$ to $nx^{n-1}$, is apposite. Note that integration is one-to-one, two different functions have different antiderivatives, and differentiation is onto, every polynomial is the derivative of some polynomial. And in this case, $T\circ S$ sends any polynomial $f(x)$ to itself as long as $f$ has no constant term, but sends all constants to zero. So it certainly is neither one-to-one nor onto.

That’s why (A) was the correct answer, even though (B) would have been the correct answer for a finite-dimensional space.

I’d like to point out that the one-to-one map $T$ has inverses, but not uniquely in this case: since its image (“range” in the terminology of many) is not the whole of the space, there is considerable freedom in choosing a left inverse $S$ for it. For instance, we could have proclaimed that $S(f)=f'$ for polynomials without constant term, but $S(c)=c(17-3x^2)$ for constants $c$.

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Hint: Try to think of operators $T,S$ satisfying the hypotheses. Think calculus.

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