Why ($\operatorname{Con}_{FI}(A))$ is closed under arbitrary intersection?
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1You'd better ask your question in the body, not in the title, MohammadSadegh. β Mikasa Dec 13 '12 at 07:07
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ok my friend... & thanks alot for your attention to my question β MohammadSadegh YazdanParast Dec 15 '12 at 16:51
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@You'r welcome,Mohammad. :) β Mikasa Dec 15 '12 at 16:53
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Itβs very much like the proof that an arbitrary intersection of subgroups of a group is again a subgroup. Let $\Theta$ be any family of fully invariant congruences on $A$, and let $\theta=\bigcap\Theta$. Let $\sigma$ be any endomorphism of $A$, and let $a,b\in A$. Suppose that $a\,\theta\,b$. Then $a\,\rho\,b$ for all $\rho\in\Theta$, so $\sigma(a)\,\rho\,\sigma(b)$ for all $\rho\in\Theta$, and therefore $\sigma(a)\,\theta\,\sigma(b)$.
Brian M. Scott
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