The Stacks project

Proof. Let $\{ X_ i \to X\} _{i = 1, \ldots , n}$ be a standard fpqc covering (Definition 34.9.10). Let $g : \mathop{\mathrm{Spec}}(V) \to X$ be a morphism where $V$ is a valuation ring. Let $x \in X$ be the image of the closed point of $\mathop{\mathrm{Spec}}(V)$. Choose an $i$ and a point $x_ i \in X_ i$ mapping to $x$. Then $\mathop{\mathrm{Spec}}(V) \times _ X X_ i$ has a point $x'_ i$ mapping to the closed point of $\mathop{\mathrm{Spec}}(V)$. Since $\mathop{\mathrm{Spec}}(V) \times _ X X_ i \to \mathop{\mathrm{Spec}}(V)$ is flat we can find a specialization $x''_ i \leadsto x'_ i$ of points of $\mathop{\mathrm{Spec}}(V) \times _ X X_ i$ with $x''_ i$ mapping to the generic point of $\mathop{\mathrm{Spec}}(V)$, see Morphisms, Lemma 29.25.9. By Schemes, Lemma 26.20.4 we can choose a valuation ring $W$ and a morphism $h : \mathop{\mathrm{Spec}}(W) \to \mathop{\mathrm{Spec}}(V) \times _ X X_ i$ such that $h$ maps the generic point of $\mathop{\mathrm{Spec}}(W)$ to $x''_ i$ and the closed point of $\mathop{\mathrm{Spec}}(W)$ to $x'_ i$. We obtain a commutative diagram

where $V \to W$ is an extension of valuation rings. This proves the lemma. $\square$

Proof. Let $T$ be an affine scheme. Let $f : U \to T$ be a proper surjective morphism. Let $U = \bigcup _{j = 1, \ldots , m} U_ j$ be a finite affine open covering. We have to show that $\{ U_ j \to T\} $ is a standard V covering, see Definition 34.8.1. Let $g : \mathop{\mathrm{Spec}}(V) \to T$ be a morphism where $V$ is a valuation ring with fraction field $K$. Since $U \to T$ is surjective, we may choose a field extension $L/K$ and a commutative diagram

By Algebra, Lemma 10.50.2 we can choose a valuation ring $W \subset L$ dominating $V$. By the valuative criterion of properness (Morphisms, Lemma 29.42.1) we can then find the morphism $h$ in the commutative diagram

Since $\mathop{\mathrm{Spec}}(W)$ has a unique closed point, we see that $\mathop{\mathrm{Im}}(h)$ is contained in $U_ j$ for some $j$. Thus $h : \mathop{\mathrm{Spec}}(W) \to U_ j$ is the desired lift and we conclude $\{ U_ j \to T\} $ is a standard V covering. $\square$

Proof. Let $\mathop{\mathrm{Spec}}(V) \to T'$ be a morphism where $V$ is a valuation ring. By assumption we can find an extension of valuation rings $V \subset W$, an $i$, and a commutative diagram

By the universal property of fibre products we obtain a morphism $\mathop{\mathrm{Spec}}(W) \to T' \times _ T T_ i$ as desired. $\square$

Proof. This follows formally from the observation that if $V \subset W$ and $W \subset \Omega $ are extensions of valuation rings, then $V \subset \Omega $ is an extension of valuation rings. $\square$

Proof. Omitted. Hints: This follows almost immediately from the definition. The only slightly interesting point is that a morphism from the spectrum of a local ring into $\coprod _{j = 1, \ldots , m} T_ j$ must factor through some $T_ j$. $\square$

Proof. Omitted. Hint: compare with the proof of Lemma 34.8.7. $\square$

Proof. Assertion (1) is clear.

Proof of (3). Let $U' \subset T'$ be an affine open subscheme. Since $U'$ is quasi-compact we can find a finite affine open covering $U' = U'_1 \cup \ldots \cup U'$ such that $U'_ j \to T$ maps into an affine open $U_ j \subset T$. Choose a standard V covering $\{ U_{jl} \to U_ j\} _{l = 1, \ldots , n_ j}$ refining $\{ T_ i \times _ T U_ j \to U_ j\} $. By Lemma 34.10.4 the base change $\{ U_{jl} \times _{U_ j} U'_ j \to U'_ j\} $ is a standard V covering. Note that $\{ U'_ j \to U'\} $ is a standard V covering (for example by Lemma 34.10.2). By Lemma 34.10.5 the family $\{ U_{jl} \times _{U_ j} U'_ j \to U'\} $ is a standard V covering. Since $\{ U_{jl} \times _{U_ j} U'_ j \to U'\} $ refines $\{ T_ i \times _ T U' \to U'\} $ we conclude.

Proof of (2). Let $U \subset T$ be affine open. First we pick a standard V covering $\{ U_ k \to U\} _{k = 1, \ldots , m}$ refining $\{ T_ i \times _ T U \to U\} $. Say the refinement is given by morphisms $U_ k \to T_{i_ k}$ over $T$. Then

is a V covering by part (3). As $U_ k$ is affine, we can find a standard V covering $\{ U_{ka} \to U_ k\} _{a = 1, \ldots , b_ k}$ refining this family. Then we apply Lemma 34.10.5 to see that $\{ U_{ka} \to U\} $ is a standard V covering which refines $\{ T_{ij} \times _ T U \to U\} $. This finishes the proof. $\square$

Proof. An fpqc covering can affine locally be refined by a standard fpqc covering, see Lemmas 34.9.9. A standard fpqc covering is a standard V covering, see Lemma 34.10.2. Hence the first statement follows from our definition of V covers in terms of standard V coverings. The conclusion for fppf, syntomic, smooth, étale or Zariski coverings follows as these are fpqc coverings, see Lemma 34.9.7.

The statement on ph coverings follows from Lemma 34.10.3 in the same manner. $\square$

Proof. Assume (1) and (2) hold. Let $\{ f_ i : T_ i \to T\} _{i \in I}$ be a V covering. Let $s_ i \in F(T_ i)$ be a family of elements such that $s_ i$ and $s_ j$ map to the same element of $F(T_ i \times _ T T_ j)$. Let $W \subset T$ be the maximal open subset such that there exists a unique $s \in F(W)$ with $s|_{f_ i^{-1}(W)} = s_ i|_{f_ i^{-1}(W)}$ for all $i$. Such a maximal open exists because $F$ satisfies the sheaf property for Zariski coverings; in fact $W$ is the union of all opens with this property. Let $t \in T$. We will show $t \in W$. To do this we pick an affine open $t \in U \subset T$ and we will show there is a unique $s \in F(U)$ with $s|_{f_ i^{-1}(U)} = s_ i|_{f_ i^{-1}(U)}$ for all $i$.

We can find a standard V covering $\{ U_ j \to U\} _{j = 1, \ldots , n}$ refining $\{ U \times _ T T_ i \to U\} $, say by morphisms $h_ j : U_ j \to T_{i_ j}$. By (2) we obtain a unique element $s \in F(U)$ such that $s|_{U_ j} = F(h_ j)(s_{i_ j})$. Note that for any scheme $V \to U$ over $U$ there is a unique section $s_ V \in F(V)$ which restricts to $F(h_ j \circ \text{pr}_2)(s_{i_ j})$ on $V \times _ U U_ j$ for $j = 1, \ldots , n$. Namely, this is true if $V$ is affine by (2) as $\{ V \times _ U U_ j \to V\} $ is a standard V covering (Lemma 34.10.4) and in general this follows from (1) and the affine case by choosing an affine open covering of $V$. In particular, $s_ V = s|_ V$. Now, taking $V = U \times _ T T_ i$ and using that $s_{i_ j}|_{T_{i_ j} \times _ T T_ i} = s_ i|_{T_{i_ j} \times _ T T_ i}$ we conclude that $s|_{U \times _ T T_ i} = s_ V = s_ i|_{U \times _ T T_ i}$ which is what we had to show.

Proof of the equivalence of (2) and (2') in the presence of (1). Suppose $\{ T_ i \to T\} _{i = 1, \ldots , n}$ is a standard V covering, then $\coprod _{i = 1, \ldots , n} T_ i \to T$ is a morphism of affine schemes which is clearly also a standard V covering. In the presence of (1) we have $F(\coprod T_ i) = \prod F(T_ i)$ and similarly $F((\coprod T_ i) \times _ T (\coprod T_ i)) = \prod F(T_ i \times _ T T_{i'})$. Thus the sheaf condition for $\{ T_ i \to T\} $ and $\{ \coprod T_ i \to T\} $ is the same. $\square$

Proof. Assume (1) and let $g : \mathop{\mathrm{Spec}}(V) \to Y$ be as in (2). Since $V$ is a local ring there is an affine open $U \subset Y$ such that $g$ factors through $U$. By Definition 34.10.7 we can find a standard V covering $\{ U_ j \to U\} $ refining $\{ X \times _ Y U \to U\} $. By Definition 34.10.1 we can find a $j$, an extension of valuation rings $V \subset W$ and a commutative diagram

We have the dotted arrow making the diagram commute by the refinement property of the covering and we see that (2) holds.

Assume (2) and let $Z \to Y$ and $z' \leadsto z$ be as in (3). By Schemes, Lemma 26.20.4 we can find a valuation ring $V$ and a morphism $\mathop{\mathrm{Spec}}(V) \to Z$ such that the closed point of $\mathop{\mathrm{Spec}}(V)$ maps to $z$ and the generic point of $\mathop{\mathrm{Spec}}(V)$ maps to $z'$. By (2) we can find an extension of valuation rings $V \subset W$ and a commutative diagram

The generic and closed points of $\mathop{\mathrm{Spec}}(W)$ map to points $w' \leadsto w$ in $Z \times _ Y X$ via the induced morphism $\mathop{\mathrm{Spec}}(W) \to Z \times _ Y X$. This shows that (3) holds.

Assume (3) holds and let $U \subset Y$ be an affine open. Choose a finite affine open covering $U \times _ Y X = \bigcup _{j = 1, \ldots , m} U_ j$. This is possible as $X \to Y$ is quasi-compact. We claim that $\{ U_ j \to U\} $ is a standard V covering. The claim implies (1) is true and finishes the proof of the lemma. In order to prove the claim, let $V$ be a valuation ring and let $g : \mathop{\mathrm{Spec}}(V) \to U$ be a morphism. By (3) we find a specialization $w' \leadsto w$ of points of

such that $w'$ maps to the generic point of $\mathop{\mathrm{Spec}}(V)$ and $w$ maps to the closed point of $\mathop{\mathrm{Spec}}(V)$. By Schemes, Lemma 26.20.4 we can find a valuation ring $W$ and a morphism $\mathop{\mathrm{Spec}}(W) \to T$ such that the generic point of $\mathop{\mathrm{Spec}}(W)$ maps to $w'$ and the closed point of $\mathop{\mathrm{Spec}}(W)$ maps to $w$. The composition $\mathop{\mathrm{Spec}}(W) \to T \to \mathop{\mathrm{Spec}}(V)$ corresponds to an inclusion $V \subset W$ which presents $W$ as an extension of the valuation ring $V$. Since $T = \bigcup \mathop{\mathrm{Spec}}(V) \times _ U U_ j$ is an open covering, we see that $\mathop{\mathrm{Spec}}(W) \to T$ factors through $\mathop{\mathrm{Spec}}(V) \times _ U U_ j$ for some $j$. Thus we obtain a commutative diagram

and the proof of the claim is complete. $\square$

Proof. We will use without further mention that the base change of a V covering is a V covering (Lemma 34.10.9). In particular it suffices to show that the morphism is submersive. Being submersive is clearly Zariski local on the base. Thus we may assume $X$ is affine. Then $\{ X_ i \to X\} $ can be refined by a standard V covering $\{ Y_ j \to X\} $. If we can show that $\coprod Y_ j \to X$ is submersive, then since there is a factorization $\coprod Y_ j \to \coprod X_ i \to X$ we conclude that $\coprod X_ i \to X$ is submersive. Set $Y = \coprod Y_ j$ and consider the morphism of affines $f : Y \to X$. By Lemma 34.10.13 we know that we can lift any specialization $x' \leadsto x$ in $X$ to some specialization $y' \leadsto y$ in $Y$. Thus if $T \subset X$ is a subset such that $f^{-1}(T)$ is closed in $Y$, then $T \subset X$ is closed under specialization. Since $f^{-1}(T) \subset Y$ with the reduced induced closed subscheme structure is an affine scheme, we conclude that $T \subset X$ is closed by Algebra, Lemma 10.41.5. Hence $f$ is submersive. $\square$