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How can the matrix for R-1, the inverse of the relation R, be found from the matrix representing R, when R is a relation on a nite set A?

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Isn't this more appropriate for math.stackexchange.com ? –  Pablo Jun 3 '11 at 21:10
    
@Pablo Not necessarily. The basic business of matrix inversion is the stuff of any linear algebra textbook, but there are plenty of complications that arise from actual numerical implementation on a computer. I'd point the OP to Numerical Recipes in the first instance, but I'm rather out of touch. –  walkytalky Jun 3 '11 at 21:32
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What is a ``nite set''? Did you mean finite? –  Judge Maygarden Jun 3 '11 at 22:13
    
But those complications that make it not always trivial to accomplish do not make it belong here, but in a numerical analysis/numerical linear algebra class or textbook. A full depth discussion of the issues is far beyond what can be written here, while a cursory description will be of essentially little value. –  user85109 Jun 3 '11 at 23:38
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A 'nite set' is what a 'finite set' looks like when you copy and paste it from the PDF file containing your homework questions without proofreading to check for missing ligatures. –  sigfpe Jun 4 '11 at 3:39
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I think you want the transpose of R. I guess by the inverse you mean that if S is the inverse of R, then aRb iff bSa. And I guess by the matrix you mean one with ones and zeros to indicate when aRb holds.

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