Map to localization is injective on spectra: Difference between revisions

Latest revision as of 16:27, 12 May 2008

This article gives the statement, and possibly proof, of a fact about how a property of a homomorphism of commutative unital rings, forces a property for the induced map on spectra
View other facts about induced maps on spectra

Statement

Set-theoretic statement

Suppose $R$ is a commutative unital ring, $U$ is a multiplicatively closed subset of $R$ and $S = U^{- 1} R$ is the localization of $R$ at the multiplicatively closed subset $U$ . Then the induced map on spectra:

$S p e c (S) \to S p e c (R)$

is injective. In fact:

The image of this map is those primes $P$ that are disjoint from $U$
The inverse image of a prime ideal $P$ is precisely the prime ideal $U^{- 1} P$ i.e. the extension of $P$ to $S$

Topological statement

Further, it is also true that the topology on $S p e c (S)$ is such that if we give the subspace topology to its image in $S p e c (R)$ , the map is a homeomorphism.

Proof

Some preliminary observations

The extension of an ideal $I$ of $R$ , to the ring $S = U^{- 1} R$ , is the ideal $U^{- 1} I$ of $S$
If any ideal of $R$ intersects the multiplicatively closed subset $U$ , then its extension to $S = U^{- 1} R$ is the whole ring $U^{- 1} R$ . Hence, it does not occur as the contraction of any ideal of $S$

Proof: If $I$ is an ideal of $R$ such that $I \cap U$ is nonempty, then pick $u \in I \cap U$ . Clearly, we have:

$1 = \frac{u}{u} \in U^{- 1} I = I^{e}$

Thus, $1$ is in the extension of $I$ to $S$ .

The converse is not true for arbitrary ideals; however, it is true for prime ideals (it is true for all ideals if $U$ is a saturated subset). Formally, if $P$ is a prime ideal of $R$ such that $U \cap P$ is empty, then the extension of $P$ to $S$ is not the whole ring. Moreover, $P$ equals the contraction of its extension to $S$ .

Proof: Consider the ideal $U^{- 1} P$ . We need to show that it contracts back to precisely $P$ (that'll also show that it is proper). Suppose $a / 1 \in U^{- 1} P$ . We want to show that $a \in P$ .

There exists $b \in P, c \in U$ such that $a / 1 = b / c$ , which in turn means there exists $s \in U$ such that $a c s = b s$ . The right side is in $P$ , so the left side must also be in $P$ . Since $c, s \in U$ , we get $c s \in U$ . Further, since $U \cap P$ is empty, we get $c s \notin P$ , so by primeness of $P$ , we have $a \in P$ , as desired.

Proof of set-theoretic statement

@@ Line 2: / Line 2: @@
 ==Statement==
+===Set-theoretic statement===
 Suppose <math>R</math> is a [[commutative unital ring]], <math>U</math> is a [[multiplicatively closed subset]] of <math>R</math> and <math>S = U^{-1}R</math> is the localization of <math>R</math> at the multiplicatively closed subset <math>U</math>. Then the [[induced map on spectra by a ring homomorphism|induced map on spectra]]:
@@ Line 11: / Line 13: @@
 * The image of this map is those primes <math>P</math> that are disjoint from <math>U</math>
 * The inverse image of a prime ideal <math>P</math> is ''precisely'' the prime ideal <math>U^{-1}P</math> i.e. the extension of <math>P</math> to <math>S</math>
+===Topological statement===
+Further, it is also true that the topology on <math>Spec(S)</math> is such that if we give the subspace topology to its image in <math>Spec(R)</math>, the map is a homeomorphism.
+==Proof==
+===Some preliminary observations===
+* The extension of an ideal <math>I</math> of <math>R</math>, to the ring <math>S = U^{-1}R</math>, is the ideal <math>U^{-1}I</math> of <math>S</math>
+* If any ideal of <math>R</math> intersects the multiplicatively closed subset <math>U</math>, then its [[extension of an ideal|extension]] to <math>S = U^{-1}R</math> is the whole ring <math>U^{-1}R</math>. Hence, it does ''not'' occur as the contraction of any ideal of <math>S</math>
+''Proof'': If <math>I</math> is an ideal of <math>R</math> such that <math>I \cap U</math> is nonempty, then pick <math>u \in I \cap U</math>. Clearly, we have:
+<math>1 = \frac{u}{u} \in U^{-1}I = I^{e}</math>
+Thus, <math>1</math> is in the extension of <math>I</math> to <math>S</math>.
+* The converse is not true for arbitrary ideals; however, it ''is'' true for [[prime ideal]]s (it is true for all ideals if <math>U</math> is a [[saturated subset]]). Formally, if <math>P</math> is a prime ideal of <math>R</math> such that <math>U \cap P</math> is empty, then the extension of <math>P</math> to <math>S</math> is ''not'' the whole ring. Moreover, <math>P</math> equals the contraction of its extension to <math>S</math>.
+''Proof'': Consider the ideal <math>U^{-1}P</math>. We need to show that it contracts back to precisely <math>P</math> (that'll also show that it is proper). Suppose <math>a/1 \in U^{-1}P</math>. We want to show that <math>a \in P</math>.
+There exists <math>b \in P, c \in U</math> such that <math>a/1 = b/c</math>, which in turn means there exists <math>s \in U</math> such that <math>acs = bs</math>. The right side is in <math>P</math>, so the left side must also be in <math>P</math>. Since <math>c,s \in U</math>, we get <math>cs \in U</math>. Further, since <math>U \cap P</math> is empty, we get <math>cs \notin P</math>, so by primeness of <math>P</math>, we have <math>a \in P</math>, as desired.
+===Proof of set-theoretic statement===