Can I prove that I-S is a nonsingular matrix?

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Homework Help Overview

The discussion revolves around proving that the matrix I - S is nonsingular, where S is a Skew-Hermitian matrix. Participants are exploring the implications of the properties of Skew-Hermitian matrices and the conditions under which a matrix is nonsingular.

Discussion Character

  • Exploratory, Assumption checking, Mathematical reasoning

Approaches and Questions Raised

  • Participants are attempting to show that the only solution to (I-S)x=0 is x=0, questioning whether this is the correct approach. There is exploration of the consequences if (I-S) were singular, leading to discussions about inner products and the implications of certain equalities.

Discussion Status

Participants are actively engaging with the problem, with some suggesting that contradictions arise from assuming I = S^2. There is recognition of the need to clarify the properties of the inner product and the implications of nonzero vectors in this context. Guidance has been offered regarding the positivity of the inner product.

Contextual Notes

There is a focus on the properties of Skew-Hermitian matrices and the implications of their definitions. Participants are also grappling with the assumptions made in their reasoning, particularly regarding the nature of the inner product and the conditions for nonsingularity.

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Homework Statement



Given S is a Skew-Hermitian (S*=-S), Prove that I - S is a nonsingular matrix

Homework Equations



If a matrix A is nonsingular, for Ax=0, x={0}

The Attempt at a Solution



(I-S)x=0, and I have been trying to show that the solution for x is always zero. Is this the correctly direction, because I have been trying to do this since last night and I seem to be unable to do this. I would really appreciate it if you have a better suggestion. Thanks!
 
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If (I-S) is singular, then there is a nonzero vector x such that <(I-S)x,(I-S)x>=0. (<> is the inner product). Play around with the consequences of that for a while.
 
Thanks Dick:

After playing with it, I arrived at the concolusion I = S^2, but cannot see how to contradict that.

<(I-S)x, (I-S)x>
=[(I-S)x]*[(I-S)x]
=[Ix*-S*x*][Ix-Sx]
=[Ix*+Sx*][Ix-Sx]
=Ix*x+ISx*x - Ix*sx - Sx*Sx
=Ix*x - Sx*Sx (middle two cancel out)
=b(I) - b(S^2) (let x*x = b (some constant)
=0
=> I = S^2
Now, I have to show this is a false statement...right? Can we show this is false for all cases?
 
Taking the square root of each side...Sqrt(I) = S, however, the square root of an identity matrix is by no means a skew Hermitian, hence the original assumption is erroneous!

Thanks Dick!
 
Codezion said:
Taking the square root of each side...Sqrt(I) = S, however, the square root of an identity matrix is by no means a skew Hermitian, hence the original assumption is erroneous!

Thanks Dick!

No, no, no. You can't do any such thing. I think you have a stray sign. What I wound up with is <x,x>+<Sx,Sx>=0. What's wrong with that?
 
Hmm...I played with it overnight and cannot figure out what is wrong with that statement. The only thing I can see is that x*x cannot be zero since x is a non zero vector..?
 
<x,x> is positive since x is nonzero and the dot product is positive definite. <Sx,Sx> is nonnegative. The sum can't be zero.
 
Wow! Thank you. I did not see that <x,x> is always positive, I was just focusing on it being nonzero!

Thank you so much!
 

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