When a symmetric densely defined operator is an adjoint operator?

Question

I am wondering if it is possible to say that if a symmetric differential operator is densely defined then the operator is self-adjoint indeed?

More Precisely, Let $A:D(A)(\subset H)\to H$ a densely defined operator on the Hilber space $H$ and we have $<Ax,y>=<Ay,x>$; is $A$ a self-adjoint operator?

What more condition does it need to become self adjoint?

Please help me with this, I think in an infinite dimensional spaces every assertion would has some subtleties as in this case?

Answer 1

no of course not. en effet, you must require $A=A^\ast$, you are missing $D(A)=D(A^\ast)$.

Answer 2

Exactly, you are right, it requires $D(A)=D(A^*)$; but I emphasized on densely defined operator.

In fact, is it possible to say that when an operator is densely defined on a suitable Hilbert space and also symmetric then $D(A)=D(A^*)$?

what more condition does it need to give $D(A)=D(A^*)$?

Answer 3

If $A : \mathcal{D}(A)\subseteq H\rightarrow H$ is symmetric on its domain, then $A$ is selfadjoint iff $A\pm iI$ are surjective. If these operators are surjective, then the domain is automatically dense, which saves some checking.