Answer to Question #203254 in Abstract Algebra for Anand

Solution:

Proof. Let "\\sigma^{\\prime}" be an odd permutation in "S_{n}" . We must show that there exists an even permutation "\\mu \\in A_{n}" such that "\\sigma^{\\prime}=\\sigma \\mu" . Indeed, we may take "\\mu=\\sigma^{-1} \\sigma^{\\prime}" , since as the product of two odd permutations, it is an even permutation, and

"\\sigma^{\\prime}=\\sigma\\left(\\sigma^{-1} \\sigma^{\\prime}\\right)"

For completeness, let's prove directly that "\\sigma^{-1} \\sigma^{\\prime}" is even. From the definition of an odd permutation, there exist a finite number of transpositions "\\tau_{1}, \\ldots, \\tau_{m}" for some odd "m \\in \\mathbb{N}" such that

"\\sigma=\\tau_{1} \\ldots \\tau_{m}"

Similarly, since "\\sigma^{\\prime}" is also an odd permutation, there exist a finite number of transpositions "\\tau_{1}^{\\prime}, \\ldots, \\tau_{\\ell}^{\\prime}" for some odd "\\ell \\in \\mathbb{N}" such that "\\sigma^{\\prime}=\\tau_{1}^{\\prime} \\ldots \\tau_{\\ell}^{\\prime}" . Consider now the permutation

"\\mu=\\sigma^{-1} \\sigma^{\\prime}"

I claim that this lies in "A_{n}" . Indeed we have

"\\mu=\\sigma^{-1} \\sigma^{\\prime}=\\underbrace{\\tau_{m} \\ldots \\tau_{1} \\tau_{1}^{\\prime} \\ldots \\tau_{\\ell}^{\\prime}}_{m+\\ell}"

The sum of two odd numbers is even, and so it follows that this is an even permutation.

Thus, if we take "n=10" , we can prove it same way.