Proof. By induction on the construction of $\phi $ .

Induction basis. If $\phi = P(x_{j_1},\ldots ,x_{j_m})$ for some (maybe non-distinct) $j_1, \ldots , j_m \leq n$ and some $P \in \Sigma _m$ , then the statement of the Lemma follows from condition (atom) of Definition 1 and the fact that we have $\phi [\bar {a}_n/\bar {x}_n] = P(a_{j_1},\ldots ,a_{j_m})$ and $\phi [\bar {b}_n/\bar {x}_n] = P(b_{j_1},\ldots ,b_{j_m})$ .

Induction step. The cases when $\phi = \psi \wedge \theta $ and when $\phi = \psi \vee \theta $ are straightforward. We consider the remaining cases:

Case 1. $\phi = \psi \to \theta $ . If $(\mathcal {M}_j; D_j), v\not \models (\psi \to \theta )[\bar {b}_n/\bar {x}_n]$ , then $(\mathcal {M}_j; D_j), v\not \models \psi [\bar {b}_n/\bar {x}_n] \to \theta [\bar {b}_n/\bar {x}_n]$ , and hence there exists a $v_0 \mathrel {\succ _j}v$ such that both $(\mathcal {M}_j; D_j), v_0\models \psi [\bar {b}_n/\bar {x}_n]$ and $(\mathcal {M}_j; D_j), v_0\not \models \theta [\bar {b}_n/\bar {x}_n]$ . But then, by condition (back), there must be a $w_0 \mathrel {\succ _i}w$ such that both $(w_0)^\frown (\bar {a}_n)\mathrel {A}(v_0)^\frown (\bar {b}_n)$ and $(v_0)^\frown (\bar {b}_n)\mathrel {A}(w_0)^\frown (\bar {a}_n)$ . Now the Induction Hypothesis implies that both $(\mathcal {M}_i; D_i), w_0\models \psi [\bar {a}_n/\bar {x}_n]$ and $(\mathcal {M}_i; D_i), w_0\not \models \theta [\bar {a}_n/\bar {x}_n]$ . Thus we get that

$$ \begin{align*} (\mathcal{M}_i; D_i), w\not\models (\psi[\bar{a}_n/\bar{x}_n] \to \theta[\bar{a}_n/\bar{x}_n]) = (\psi \to \theta)[\bar{a}_n/\bar{x}_n]. \end{align*} $$

Case 2. . The case is dual to Case 1.

Case 3. $\phi = \forall x\psi $ . Then we might have $x \in \{\bar {x}_n\}$ , but we can always avoid this inconvenience by choosing an $m \geq 0$ , and some pairwise distinct $j_1,\ldots , j_m \leq n$ such that $\{x_{j_1},\ldots ,x_{j_m}\} = FV(\forall x\phi )\cap \{\bar {x}_n\}$ . For this m-tuple, we will have, $x \notin \{x_{j_1},\ldots ,x_{j_m}\}$ , and Lemma 1.4 implies that

$$ \begin{align*} (\forall x\psi)[\bar{b}_n/\bar{x}_n] = (\forall x\psi)[b_{j_1}/x_{j_1},\ldots,b_{j_m}/x_{j_m}] = \forall x(\psi[b_{j_1}/x_{j_1},\ldots,b_{j_m}/x_{j_m}]). \end{align*} $$

But then we reason as follows. If $(\mathcal {M}_j; D_j), v\not \models (\forall x\psi )[\bar {b}_n/\bar {x}_n] = \forall x(\psi [b_{j_1}/x_{j_1},\ldots , b_{j_m}/x_{j_m}])$ , then we must have $(\mathcal {M}_j; D_j), v\not \models \psi [b_{j_1}/x_{j_1},\ldots ,b_{j_m}/x_{j_m}][b/x]$ for some $b \in D_j$ , and hence $(\mathcal {M}_j; D_j), v\not \models \psi [b_{j_1}/x_{j_1},\ldots ,b_{j_m}/x_{j_m}, b/x]$ by Lemma 1. Moreover, condition (left) of Definition 1 implies that, for some $a \in D_i$ we must have $(w)^\frown (\bar {a}_n)^\frown (a)\mathrel {A}(v)^\frown (\bar {b}_n)^\frown (b)$ . Since also $FV(\psi )\subseteq \{x_{j_1},\ldots ,x_{j_m}\} \cup \{x\}$ , the Induction Hypothesis is applicable and yields that $(\mathcal {M}_i; D_i), w\not \models \psi [a_{j_1}/x_{j_1},\ldots ,a_{j_m}/x_{j_m}, a/x]$ , whence, further, that $(\mathcal {M}_i; D_i), w\not \models \psi [a_{j_1}/x_{j_1},\ldots , a_{j_m}/x_{j_m}][a/x]$ by Lemma 1.

But then it follows (again applying Lemma 1.4) that

$$ \begin{align*} (\mathcal{M}_i; D_i), w\not\models \forall x(\psi[a_{j_1}/x_{j_1},\ldots,a_{j_m}/x_{j_m}]) = (\forall x\psi)[\bar{a}_n/\bar{x}_n]. \end{align*} $$

Case 4. $\phi = \exists x\psi $ . The case is dual to Case 3.

Proof. If $(A,B,C) \trianglelefteq (D,E,F)$ , then $F \subseteq C$ ; in other words, $\mathbb {N}\setminus (D \cup E) \subseteq \mathbb {N}\setminus (A \cup B)$ . Therefore, by contraposition, $A \cup B \subseteq D \cup E$ .

Proof. The extensions of Q are monotonic relative to $\trianglelefteq $ (hence also relative to $\prec _i$ for $i \in \{1,2\}$ ) by definition of $V_i$ . The extensions of P are monotonic relative to $\trianglelefteq $ (and thus also relative to $\prec _i$ for $i \in \{1,2\}$ ) by Corollary 1.

The relation $\prec _2 = \trianglelefteq $ is clearly a pre-order on W. We show that $\prec _1$ is a pre-order on the same set.

Reflexivity. Let $(A, B, C) \in W$ . We have $(A,B,C)\mathrel {\prec _1}(A,B,C)$ , since both $(A,B,C)\mathrel {\trianglelefteq }(A,B,C)$ and

$$ \begin{align*}(\mathbf{v} \trianglelefteq (A, B, C)\, \&\, \lvert B \cap \mathbf{v}_2\rvert = \omega) \Rightarrow \lvert B \cap \mathbf{v}_2\rvert = \omega \end{align*} $$

are trivially satisfied.

Transitivity. Let $(A, B, C), (D,E,F), (G,H,I) \in W$ be such that $(A,B,C)\mathrel {\prec _1}(D,E,F)$ and $(D,E,F)\mathrel {\prec _1}(G,H,I)$ . Then we must have both $(A,B,C)\mathrel {\trianglelefteq }(D,E,F)$ and $(D,E,F)\mathrel {\trianglelefteq }(G,H,I)$ , and thus $(A,B,C)\mathrel {\trianglelefteq }(G,H,I)$ .

On the other hand, we must have both:

(1) $$ \begin{align} (\mathbf{v}\mathrel{\trianglelefteq} (A, B, C)\, \&\, \lvert B \cap \mathbf{v}_2\rvert = \omega) \Rightarrow \lvert E \cap \mathbf{v}_2\rvert = \omega \end{align} $$

and

(2) $$ \begin{align} (\mathbf{v} \mathrel{\trianglelefteq} (D,E,F)\, \&\, \lvert E \cap \mathbf{v}_2\rvert = \omega) \Rightarrow \lvert H \cap \mathbf{v}_2\rvert = \omega. \end{align} $$

But then we reason as follows:

(3) $$ \begin{align} & \mathbf{v} \mathrel{\trianglelefteq} (A, B, C) && \text{(premise)},\end{align} $$

(4) $$ \begin{align}&\lvert B \cap \mathbf{v}_2\rvert = \omega &&\text{(premise)},\end{align} $$

(5) $$ \begin{align} &\lvert E \cap \mathbf{v}_2\rvert = \omega &&\text{(by (1), (3) and (4))},\end{align} $$

(6) $$ \begin{align}&\mathbf{v} \trianglelefteq (D,E,F) &&\text{(by (3) and}\ (A,B,C)\mathrel{\trianglelefteq}(D,E,F)),\end{align} $$

(7) $$ \begin{align}&\lvert H \cap \mathbf{v}_2\rvert = \omega &&\text{(by (2), (5) and (6))}.\end{align} $$

Thus we have shown that both $(A,B,C)\mathrel {\trianglelefteq }(G,H,I)$ and

$$ \begin{align*} (\mathbf{v} \trianglelefteq (A,B,C) \& \lvert B \cap \mathbf{v}_2\rvert = \omega) \Rightarrow \lvert H \cap \mathbf{v}_2\rvert = \omega, \end{align*} $$

whence $(A,B,C)\mathrel {\prec _1}(G,H,I)$ also follows.

Proof. (Part 1). We have $\mathbf {v}\mathrel {\prec _1}(A,B,C)$ iff $\mathbf {v}\mathrel {\trianglelefteq }(A,B,C)$ and

$$ \begin{align*} (\mathbf{v} \mathrel{\trianglelefteq} \mathbf{v} \,\&\, \lvert \mathbf{v}_2 \cap \mathbf{v}_2\rvert = \omega) \Rightarrow \lvert B \cap \mathbf{v}_2\rvert = \omega, \end{align*} $$

but, since the premise of the latter conditional is trivially true, it holds iff $\lvert B \cap \mathbf {v}_2\rvert = \omega $ .

(Part 2). By definition, $(A,B,C)\mathrel {\prec _1}(D,E,F)$ implies $(A,B,C)\mathrel {\trianglelefteq }(D,E,F)$ . In the other direction, if $(A,B,C)\mathrel {\trianglelefteq }(D,E,F)$ and, additionally, $\mathbf {v}\mathrel {\prec _1}(D,E,F)$ , then we must have, by Part 1, that $\lvert E \cap \mathbf {v}_2\rvert = \omega $ . But then also the conditional

$$ \begin{align*} (\mathbf{v} \trianglelefteq \mathbf{v} \& \lvert \mathbf{v}_2 \cap B\rvert = \omega) \Rightarrow \lvert E \cap \mathbf{v}_2\rvert = \omega \end{align*} $$

must be trivially true, whence also $(A,B,C)\mathrel {\prec _1}(D,E,F)$ follows.

(Part 3). If both $(A,B,C)\mathrel {\trianglelefteq }(D,E,F)$ and $(D,E,F)\mathrel {\trianglelefteq }(A,B,C)$ then we have both $A = D$ and $C = F$ . Now $B = E$ follows by the fact that $(A,B,C), (D,E,F)$ are quasi-partitions.

Proof. We deal with the monotonicity claims first. As for $\sigma _1$ , if $(A,B,C)\mathrel {\trianglelefteq }(D,E,F)$ , and $n \in \sigma _1(A,B,C)$ , then $f(n) \in A \subseteq D$ , hence also $n \in \sigma _1(D,E,F)$ . As for $\sigma _2$ , if $(A,B,C)\mathrel {\trianglelefteq }(D,E,F)$ and $\sigma _2(A,B,C) = 1$ , then $\mathbf {w}\mathrel {\triangleleft }(A,B,C)$ , hence also $\mathbf {w}\mathrel {\triangleleft }(D,E,F)$ and $\sigma _2(D,E,F) = 1$ .

It remains to show the satisfaction claims for the extended models.

( $\mathcal {M}^{\prime }_1,\mathbf {v}\models \phi $ ). Assume that $(A,B,C) \in W$ is such that $\mathbf {v}\mathrel {\prec _1}(A,B,C)$ . Then, by Lemma 5.1, we have $\mathbf {v}\mathrel {\trianglelefteq }(A,B,C)$ and $\lvert B \cap \mathbf {v}_2\rvert = \omega $ . So we choose any $n \in B \cap \mathbf {v}_2$ and any $m \in \mathbb {N}$ such that $f(m) = n$ . Then $f(m) \notin A$ , and hence $m \notin \sigma _1(A,B,C)$ ; in other words, $(\mathcal {M}^{\prime }_1; \mathbb {N}),(A, B, C)\not \models R(m)$ , whence $(\mathcal {M}^{\prime }_1; \mathbb {N}),(A, B, C)\not \models \forall xR(x)$ and, by Expansion Property, $\mathcal {M}^{\prime }_1,(A, B, C)\not \models \forall xR(x)$ . Since the $\prec _1$ -successor to $\mathbf {v}$ was chosen arbitrarily, it follows, by Lemma 2, that $\mathcal {M}^{\prime }_1,\mathbf {v}\models \neg \forall xR(x)$ .

Next, if $n \in \mathbb {N}$ , then consider $f(n) \in \mathbf {v}_2$ . Clearly, we have $(\mathcal {M}^{\prime }_1; \mathbb {N}),\mathbf {v}\models P(f(n))$ . If now $(A,B,C) \in W$ is such that $\mathbf {v}\mathrel {\prec _1}(A,B,C)$ and $(\mathcal {M}^{\prime }_1; \mathbb {N}),(A, B, C)\models Q(f(n))$ , then $f(n) \in A$ , thus also $n \in \sigma _1(A,B,C)$ and, therefore, $(\mathcal {M}^{\prime }_1; \mathbb {N}),(A, B, C)\models R(n)$ . We have shown that $(\mathcal {M}^{\prime }_1; \mathbb {N}),\mathbf {v}\models Q(f(n)) \to R(n)$ . Summing up, we get that $(\mathcal {M}^{\prime }_1; \mathbb {N}),\mathbf {v}\models P(f(n)) \wedge (Q(f(n)) \to R(n))$ for arbitrary $n \in \mathbb {N}$ , therefore also $(\mathcal {M}^{\prime }_1; \mathbb {N}),\mathbf {v}\models \forall x\exists y(P(y) \wedge (Q(y) \to R(x)))$ and $\mathcal {M}^{\prime }_1,\mathbf {v}\models \forall x\exists y(P(y) \wedge (Q(y) \to R(x)))$ by Expansion Property.

( $\mathcal {M}^{\prime }_2,\mathbf {w}\not \models \psi $ ). Assume that $n \in \mathbb {N}$ and that $(A,B,C) \in W$ is such that $\mathbf {w}\mathrel {\trianglelefteq }(A,B,C)$ and $(\mathcal {M}^{\prime }_2; \mathbb {N}),(A, B, C)\models P(n)$ . Then two cases are possible:

Case 1. $\mathbf {w} = (A,B,C)$ . Then $n \in \mathbf {w}_1 \cup \mathbf {w}_2 = \mathbf {w}_1$ so that $(\mathcal {M}^{\prime }_2; \mathbb {N}),(A, B, C)\models Q(n)$ , whence also $(\mathcal {M}^{\prime }_2; \mathbb {N}),(A, B, C)\models Q(n) \vee S$ .

Case 2. $\mathbf {w}\mathrel {\triangleleft }(A,B,C)$ . Then $(\mathcal {M}^{\prime }_2; \mathbb {N}),(A, B, C)\models S$ , therefore also $(\mathcal {M}^{\prime }_2; \mathbb {N}), (A, B, C)\models Q(n) \vee S$ .

Summing up, we have shown that $(\mathcal {M}^{\prime }_2; \mathbb {N}),\mathbf {w}\models P(n) \to (Q(n) \vee S)$ for arbitrary $n \in \mathbb {N}$ , whence it follows that $(\mathcal {M}^{\prime }_2; \mathbb {N}),\mathbf {w}\models \forall x(P(x) \to (Q(x) \vee S))$ and, after applying Expansion Property, that $\mathcal {M}^{\prime }_2,\mathbf {w}\models \forall x(P(x) \to (Q(x) \vee S))$ . However, we also have $\mathcal {M}^{\prime }_2,\mathbf {w}\not \models S$ by definition of $\sigma _2$ , and therefore $\psi $ fails at $(\mathcal {M}^{\prime }_2,\mathbf {w})$ .

Proof. Indeed, in the assumptions of the corollary we get the following chain of valid implications:

$$ \begin{align*} b_k \in F &\Rightarrow b_k \notin D \cup E &&\text{(by}\ F \cap (D \cup E) = \emptyset)\\ &\Rightarrow a_k \notin A \cup B &&\text{(by}\ (A,B,C)^{\frown}(\bar{a}_n)\mathrel{\mathbb{A}}(D,E,F)^{\frown}(\bar{b}_n))\\ &\Rightarrow a_k \in C&&\text{(by}\ \{\bar{a}_n\}\subseteq \mathbb{N}\ \text{and}\ A \cup B \cup C = \mathbb{N}).\\[-34pt] \end{align*} $$

Proof. The $(\Rightarrow )$ -part follows from Corollary 2 and condition 2(b) of Definition 4.

For the $(\Leftarrow )$ -part, we observe that if $[\bar {a}_n \mapsto \bar {b}_n]$ defines a bijection, then $[\bar {b}_n \mapsto \bar {a}_n]$ also defines a bijection. The satisfaction of condition 2(b) of Definition 4 in both directions is then an immediate consequence of condition 2 of the Corollary, and as for Condition 2(c), we get that, if $1 \leq k \leq n$ and $a_k \in B$ , then $a_k \notin C$ , whence $b_k \notin F$ by condition 3 of the Corollary. Therefore, $b_k \in D\cup E$ . Similarly, if $b_k \in E$ , then $b_k \notin F$ , whence $a_k \notin C$ by condition 3 of the Corollary. But then $a_k \in A\cup B$

Proof. We check the satisfaction of the conditions given in Definition 1 by $\mathbb {A}$ . Condition (type) holds by Definition 4.1. Condition (atom) for P and Q follows from Definition 4.2(b) and (c). It is also clear that for any $w, v \in W$ we have $w\mathrel {\mathbb {A}}v$ , so that $\mathbb {A}$ is non-empty, and, in particular, $\mathbf {v}\mathrel {\mathbb {A}}\mathbf {w}$ holds. We check the remaining conditions in more detail:

Condition (back) . Let $i,j$ be such that $\{i, j\} = \{1,2\}$ , let $(A, B, C),(D,E,F)\in W$ , and let, for some $n \geq 0$ , $\bar {a}_n, \bar {b}_n \in \mathbb {N}^{n}$ . Assume, moreover, that we have $(A,B,C)^\frown (\bar {a}_n)\mathrel {\mathbb {A}}(D,E,F)^\frown (\bar {b}_n)$ , and that some $(G,H,I) \in W$ is such that $(D,E,F)\mathrel {\prec _j}(G,H,I)$ (hence, in particular, $(D,E,F)\trianglelefteq (G,H,I)$ ). We have to consider two cases, since B can be either empty or infinite.

Case B1. $\lvert B\rvert = \omega $ . Then consider the triple $(J,K,L)$ such that:

$$ \begin{align*} J & = (A \setminus \{\bar{a}_n\}) \cup [\bar{b}_n \mapsto \bar{a}_n](G);\\ K & = (B \setminus \{\bar{a}_n\}) \cup [\bar{b}_n \mapsto \bar{a}_n](H);\\ L & = (C \setminus \{\bar{a}_n\}) \cup [\bar{b}_n \mapsto \bar{a}_n](I). \end{align*} $$

We will show that $(J,K,L)\in W$ and that we have $(A,B,C)\mathrel {\prec _i}(J,K,L)$ , $(J,K,L)^\frown (\bar {a}_n)\mathrel {\mathbb {A}}(G,H,I)^\frown (\bar {b}_n)$ , and $(G,H,I)^\frown (\bar {b}_n)\mathrel {\mathbb {A}}(J,K,L)^\frown (\bar {a}_n)$ . We break down the demonstration of this statement into the following series of claims:

Claim B 1.1. $J \cup K \cup L = \mathbb {N}$ .

Indeed, we know that

$$ \begin{align*} [\bar{b}_n \mapsto \bar{a}_n](G) \cup [\bar{b}_n \mapsto \bar{a}_n](H) \cup [\bar{b}_n \mapsto \bar{a}_n](I) &= [\bar{b}_n \mapsto \bar{a}_n](G \cup H \cup I)\\ &=[\bar{b}_n \mapsto \bar{a}_n](\mathbb{N}) = \{\bar{a}_n\} \end{align*} $$

since $(G,H,I)\in W$ and, therefore, $G \cup H \cup I = \mathbb {N}$ . On the other hand, we know that

$$ \begin{align*} (A \setminus \{\bar{a}_n\})\cup (B \setminus \{\bar{a}_n\})\cup (C \setminus \{\bar{a}_n\}) &= (A \cup B \cup C)\setminus \{\bar{a}_n\}\\ &= \mathbb{N}\setminus \{\bar{a}_n\} \end{align*} $$

since $(A,B,C)\in W$ and, therefore, $A \cup B \cup C = \mathbb {N}$ . Adding the two equalities together, we get that

$$ \begin{align*} J \cup K \cup L &= (\mathbb{N}\setminus \{\bar{a}_n\})\cup \{\bar{a}_n\} = \mathbb{N}, \end{align*} $$

as desired.

Claim B1.2. J, K, and L are infinite.

Indeed, A, B, and C are infinite, $\{\bar {a}_n\}$ is finite, and the following inclusions hold:

$$ \begin{align*} &A \setminus \{\bar{a}_n\} \subseteq J,\,B \setminus \{\bar{a}_n\} \subseteq K,\,C \setminus \{\bar{a}_n\} \subseteq L. \end{align*} $$

Claim B1.3. J, K, and L are pairwise disjoint.

Indeed, take J and K, for example. By definition, we have that $J \cap K$ is equal to

$$ \begin{align*}((A \setminus \{\bar{a}_n\}) \cup [\bar{b}_n \mapsto \bar{a}_n](G)) \cap ((B \setminus \{\bar{a}_n\}) \cup [\bar{b}_n \mapsto \bar{a}_n](H)). \end{align*} $$

By application of distributivity laws, we further get that

$$ \begin{align*} J \cap K &= ((A \setminus \{\bar{a}_n\}) \cap (B \setminus \{\bar{a}_n\}))\cup\\ &\qquad\qquad\cup ((A \setminus \{\bar{a}_n\}) \cap [\bar{b}_n \mapsto \bar{a}_n](H))\\ &\qquad\qquad\cup ((B \setminus \{\bar{a}_n\}) \cap [\bar{b}_n \mapsto \bar{a}_n](G))\\ &\qquad\qquad\cup ([\bar{b}_n \mapsto \bar{a}_n](G) \cap [\bar{b}_n \mapsto \bar{a}_n](H)). \end{align*} $$

Next, we know that $(A,B,C)\in W$ and, therefore, $A \cap B = \emptyset $ , which implies that $(A \setminus \{\bar {a}_n\})\cap (B \setminus \{\bar {a}_n\}) = \emptyset $ .

Moreover, we have

$$ \begin{align*}(A \setminus \{\bar{a}_n\}) \cap [\bar{b}_n \mapsto \bar{a}_n](H) \subseteq (A \setminus \{\bar{a}_n\}) \cap \{\bar{a}_n\} = \emptyset. \end{align*} $$

By a parallel argument, we can see that also $(B \setminus \{\bar {a}_n\}) \cap [\bar {b}_n \mapsto \bar {a}_n](G) = \emptyset $ .

Finally, we observe that $\bar {b}_n \mapsto \bar {a}_n$ is a bijection, and $(G,H,I)\in W$ and, therefore, $G \cap H = \emptyset $ , whence it follows that $[\bar {b}_n \mapsto \bar {a}_n](G) \cap [\bar {b}_n \mapsto \bar {a}_n](H) = \emptyset $ .

Summing up, we see that all the four sets in the union defining $J \cap K$ are empty and that we have that $J \cap K = \emptyset $ . The other cases are similar.

Claim B1.4. $(J,K,L)\in W$ .

By Claims B1.1–3.

Claim B1.5. $(A,B,C)\mathrel {\trianglelefteq }(J,K,L)$ .

Indeed, if $a \in A$ , and $a \notin \{\bar {a}_n\}$ , then $a \in J$ by definition of J. Otherwise we have both $a \in A$ and $a = a_k$ for some $1 \leq k \leq n$ , but then $b_k \in D$ by $(A,B,C)^\frown (\bar {a}_n)\mathrel {\mathbb {A}}(D,E,F)^\frown (\bar {b}_n)$ . Next, note that $(D,E,F)\trianglelefteq (G,H,I)$ implies that $D \subseteq G$ , which means that $b_k \in G$ . But the latter means that $a = a_k \in [\bar {b}_n \mapsto \bar {a}_n](G) \subseteq J$ . Since $a \in A$ was chosen arbitrarily, we have shown that $A \subseteq J$ .

Next, if $a \in L$ , then either $a \in C \setminus \{\bar {a}_n\} \subseteq C$ , or $a \in [\bar {b}_n \mapsto \bar {a}_n](I)$ . In the latter case, $a = a_k$ for some $1 \leq k \leq n$ , and also $b_k \in I$ . Since $(D,E,F)\trianglelefteq (G,H,I)$ implies that $I \subseteq F$ , we get that $b_k \in F$ , but the latter means, by $(A,B,C)^\frown (\bar {a}_n)\mathrel {\mathbb {A}}(D,E,F)^\frown (\bar {b}_n)$ and Corollary 2, that $a_k \in C$ . Since $a \in L$ was chosen arbitrarily, we have shown that $L \subseteq C$ .

Claim B1.6. $(\mathbf {v} \trianglelefteq (A,B,C)\,\&\,\lvert B \cap \mathbf {v}_2\rvert = \omega ) \Rightarrow \lvert K \cap \mathbf {v}_2\rvert = \omega $ .

We observe that if $B \cap \mathbf {v}_2$ is infinite, then so is $(B \setminus \{\bar {a}_n\}) \cap \mathbf {v}_2$ , given that $\{\bar {a}_n\}$ is finite. But since, according to our definition of K, we have $(B \setminus \{\bar {a}_n\}) \subseteq K$ , $K \cap \mathbf {v}_2$ must be infinite, too.

Claim B1.7. $(A,B,C)\mathrel {\prec _i}(J,K,L)$ .

By Claims B1.5 and B1.6.

Claim B1.8. $(J,K,L)^\frown (\bar {a}_n)\mathrel {\mathbb {A}}(G,H,I)^\frown (\bar {b}_n)$ , and $(G,H,I)^\frown (\bar {b}_n)\mathrel {\mathbb {A}}(J,K,L)^\frown (\bar {a}_n)$ .

Indeed, for any given $1 \leq k \leq n$ , we have $a_k \in J$ iff $a_k \in [\bar {b}_n \mapsto \bar {a}_n](G)$ iff $b_k \in G$ , since $\bar {b}_n \mapsto \bar {a}_n$ defines a bijection. Similarly, we have $a_k \in L$ iff $a_k \in [\bar {b}_n \mapsto \bar {a}_n](I)$ iff $b_k \in I$ . But then our Claim follows from Corollary 3.

The correctness of our construction for Case B1 of condition (back) now follows from Claims B1.4, B1.7, and B1.8.

Case B2. $B = \emptyset $ . In this case, we partition $C \setminus \{\bar {a}_n\}$ into two disjoint infinite sets $C_1$ and $C_2$ , and define $(J,K,L)$ as follows:

$$ \begin{align*} J & = (A \setminus \{\bar{a}_n\}) \cup [\bar{b}_n \mapsto \bar{a}_n](G) ;\\ K & = C_1 \cup [\bar{b}_n \mapsto \bar{a}_n](H);\\ L & = C_2 \cup [\bar{b}_n \mapsto \bar{a}_n](I). \end{align*} $$

We will demonstrate the analogues of all the claims that we have made in the previous case.

Claim B2.1. $J \cup K \cup L = \mathbb {N}$ .

Again, we know that

$$ \begin{align*} [\bar{b}_n \mapsto \bar{a}_n](G) \cup [\bar{b}_n \mapsto \bar{a}_n](H) \cup [\bar{b}_n \mapsto \bar{a}_n](I) &= [\bar{b}_n \mapsto \bar{a}_n](G \cup H \cup I)\\ &=[\bar{b}_n \mapsto \bar{a}_n](\mathbb{N}) = \{\bar{a}_n\} \end{align*} $$

since $(G,H,I)\in W$ and, therefore, $G \cup H \cup I = \mathbb {N}$ . On the other hand, we know that

$$ \begin{align*} (A \setminus \{\bar{a}_n\})\cup C_1 \cup C_2 &= (A \setminus \{\bar{a}_n\}) \cup (C \setminus \{\bar{a}_n\})\\ &= (A \cup C)\setminus \{\bar{a}_n\} = \mathbb{N}\setminus \{\bar{a}_n\} \end{align*} $$

since $(A,B,C)\in W$ and $B = \emptyset $ and, therefore, $A \cup C = \mathbb {N}$ . Adding the two equalities together, we get that

$$ \begin{align*} J \cup K \cup L &= (\mathbb{N}\setminus \{\bar{a}_n\})\cup \{\bar{a}_n\} = \mathbb{N}, \end{align*} $$

as desired.

Claim B2.2. J, K, and L are infinite.

Indeed, A, $C_1$ , and $C_2$ are infinite, $\{\bar {a}_n\}$ is finite, and the following inclusions hold:

$$ \begin{align*} &A \setminus \{\bar{a}_n\} \subseteq J,\,C_1 \subseteq K,\,C_2 \subseteq L. \end{align*} $$

Claim B2.3. J, K, and L are pairwise disjoint.

Indeed, take J and K, for example. By definition, we have that

$$ \begin{align*} J \cap K &= ((A \setminus \{\bar{a}_n\}) \cup [\bar{b}_n \mapsto \bar{a}_n](G)) \cap (C_1 \cup [\bar{b}_n \mapsto \bar{a}_n](H))\\ &\subseteq ((A \setminus \{\bar{a}_n\}) \cup [\bar{b}_n \mapsto \bar{a}_n](G)) \cap ((C \setminus \{\bar{a}_n\})\cup [\bar{b}_n \mapsto \bar{a}_n](H)). \end{align*} $$

By application of distributivity laws, we further get that

$$ \begin{align*} J \cap K &\subseteq ((A \setminus \{\bar{a}_n\}) \cap (C \setminus \{\bar{a}_n\}))\cup\\ &\qquad\qquad\cup ((A \setminus \{\bar{a}_n\}) \cap [\bar{b}_n \mapsto \bar{a}_n](H))\\ &\qquad\qquad\cup ((C \setminus \{\bar{a}_n\}) \cap [\bar{b}_n \mapsto \bar{a}_n](G))\\ &\qquad\qquad\cup ([\bar{b}_n \mapsto \bar{a}_n](G) \cap [\bar{b}_n \mapsto \bar{a}_n](H)). \end{align*} $$

Next, we know that $(A,B,C)\in W$ and, therefore, $A \cap C = \emptyset $ , which implies that $(A \setminus \{\bar {a}_n\})\cap (C \setminus \{\bar {a}_n\}) = \emptyset $ .

Moreover, we have

$$ \begin{align*}(A \setminus \{\bar{a}_n\}) \cap [\bar{b}_n \mapsto \bar{a}_n](H) \subseteq (A \setminus \{\bar{a}_n\}) \cap \{\bar{a}_n\} = \emptyset. \end{align*} $$

By a parallel argument, we can see that also $(C \setminus \{\bar {a}_n\}) \cap [\bar {b}_n \mapsto \bar {a}_n](G) = \emptyset $ .

Finally, we observe that $\bar {b}_n \mapsto \bar {a}_n$ is a bijection, and $(G,H,I)\in W$ and, therefore, $G \cap H = \emptyset $ , whence it follows that $[\bar {b}_n \mapsto \bar {a}_n](G) \cap [\bar {b}_n \mapsto \bar {a}_n](H) = \emptyset $ .

Summing up, we see that all the four sets in the union extending $J \cap K$ are empty and that we have that $J \cap K = \emptyset $ . The other cases are similar.

Claim B2.4. $(J,K,L)\in W$ .

By Claims B2.1–3.

Claim B2.5. $(A,B,C)\mathrel {\trianglelefteq }(J,K,L)$ .

The argument for $A \subseteq J$ is exactly the same as in Case B1. To see that $L \subseteq C$ , note that $L = C_2 \cup [\bar {b}_n \mapsto \bar {a}_n](I) \subseteq (C \setminus \{\bar {a}_n\}) \cup [\bar {b}_n \mapsto \bar {a}_n](I)$ , so that the argument used for Case B1 is applicable also here.

Claim B2.6. $(\mathbf {v} \trianglelefteq (A,B,C)\,\&\,\lvert B \cap \mathbf {v}_2\rvert = \omega ) \Rightarrow \lvert K \cap \mathbf {v}_2\rvert = \omega $ .

The claim holds trivially since $\lvert B \cap \mathbf {v}_2\rvert = \omega $ is falsified by the assumption of Case B2.

Claim B2.7. $(A,B,C)\mathrel {\prec _i}(J,K,L)$ .

By Claims B2.5 and B2.6.

Claim B2.8. $(J,K,L)^\frown (\bar {a}_n)\mathrel {\mathbb {A}}(G,H,I)^\frown (\bar {b}_n)$ , and $(G,H,I)^\frown (\bar {b}_n)\mathrel {\mathbb {A}}(J,K,L)^\frown (\bar {a}_n)$ .

Again the claim follows by the argument used for Claim B1.8 of Case B1.

Condition (forth). Let $i,j$ be such that $\{i, j\} = \{1,2\}$ , let $(A, B, C), (D,E,F)\in W$ , and let, for some $n \geq 0$ , $\bar {a}_n, \bar {b}_n \in \mathbb {N}^{n}$ . Assume, moreover, that we have $(A,B,C)^\frown (\bar {a}_n)\mathrel {\mathbb {A}}(D,E,F)^\frown (\bar {b}_n)$ , and that some $(J,K,L) \in W$ is such that $(J,K,L)\mathrel {\prec _i}(A,B,C)$ (hence, in particular, $(A,B,C)\mathrel {\trianglerighteq }(J,K,L)$ ). Again, we have to consider two cases, since E can be either empty or infinite.

Case F1. $\lvert E\rvert = \omega $ . Then consider the triple $(G,H,I)$ such that:

$$ \begin{align*} G & = (D \setminus \{\bar{b}_n\}) \cup [\bar{a}_n \mapsto \bar{b}_n](J);\\ H & = (E \setminus \{\bar{b}_n\}) \cup [\bar{a}_n \mapsto \bar{b}_n](K);\\ I & = (F \setminus \{\bar{b}_n\}) \cup [\bar{a}_n \mapsto \bar{b}_n](L). \end{align*} $$

We will show that $(G,H,I)\in W$ and that we have $(G,H,I)\mathrel {\prec _j}(D,E,F)$ , $(J,K,L)^\frown (\bar {a}_n)\mathrel {\mathbb {A}}(G,H,I)^\frown (\bar {b}_n)$ , and $(G,H,I)^\frown (\bar {b}_n)\mathrel {\mathbb {A}}(J,K,L)^\frown (\bar {a}_n)$ . We break down the demonstration of this statement into our usual series of eight claims. The arguments, for the most part, just dualize the arguments given for Case B1 of condition (back), but we spell them out nonetheless.

Claim F1.1. $G \cup H \cup I = \mathbb {N}$ .

Indeed, we know that

$$ \begin{align*} [\bar{a}_n \mapsto \bar{b}_n](J) \cup [\bar{a}_n \mapsto \bar{b}_n](K) \cup [\bar{a}_n \mapsto \bar{b}_n](L) &= [\bar{a}_n \mapsto \bar{b}_n](J \cup K \cup L)\\ &=[\bar{a}_n \mapsto \bar{b}_n](\mathbb{N}) = \{\bar{b}_n\} \end{align*} $$

since $(J,K,L)\in W$ and, therefore, $J \cup K \cup L = \mathbb {N}$ . On the other hand, we know that

$$ \begin{align*} (D \setminus \{\bar{b}_n\})\cup (E \setminus \{\bar{b}_n\})\cup (F \setminus \{\bar{b}_n\}) &= (D \cup E \cup F)\setminus \{\bar{b}_n\}\\ &= \mathbb{N}\setminus \{\bar{b}_n\} \end{align*} $$

since $(D,E,F)\in W$ and, therefore, $D \cup E \cup F = \mathbb {N}$ . Adding the two equalities together, we get that

$$ \begin{align*} G \cup H \cup I &= (\mathbb{N}\setminus \{\bar{b}_n\})\cup \{\bar{b}_n\} = \mathbb{N}, \end{align*} $$

as desired.

Claim F1.2. G, H, and I are infinite.

Indeed, D, E, and F are infinite, $\{\bar {b}_n\}$ is finite, and the following inclusions hold:

$$ \begin{align*} &D \setminus \{\bar{b}_n\} \subseteq G,\,E \setminus \{\bar{b}_n\} \subseteq H ,\,F \setminus \{\bar{b}_n\} \subseteq I. \end{align*} $$

Claim F1.3. G, H, and I are pairwise disjoint.

Indeed, take G and H, for example. By definition, we have that $G \cap H$ is equal to

$$ \begin{align*}((D \setminus \{\bar{b}_n\}) \cup [\bar{a}_n \mapsto \bar{b}_n](J)) \cap ((E \setminus \{\bar{b}_n\}) \cup [\bar{a}_n \mapsto \bar{b}_n](K)), \end{align*} $$

By application of distributivity laws, we further get that

$$ \begin{align*} G \cap H &= ((D \setminus \{\bar{b}_n\}) \cap (E \setminus \{\bar{b}_n\}))\cup\\ &\qquad\qquad\cup ((D \setminus \{\bar{b}_n\}) \cap [\bar{a}_n \mapsto \bar{b}_n](K))\\ &\qquad\qquad\cup ((E \setminus \{\bar{b}_n\}) \cap [\bar{a}_n \mapsto \bar{b}_n](J))\\ &\qquad\qquad\cup ([\bar{a}_n \mapsto \bar{b}_n](J) \cap [\bar{a}_n \mapsto \bar{b}_n](K)). \end{align*} $$

Next, we know that $(D,E,F)\in W$ and, therefore, $D \cap E = \emptyset $ , which implies that $(D \setminus \{\bar {b}_n\})\cap (E \setminus \{\bar {b}_n\}) = \emptyset $ .

Moreover, we have

$$ \begin{align*}(D \setminus \{\bar{b}_n\}) \cap [\bar{a}_n \mapsto \bar{b}_n](K) \subseteq (D \setminus \{\bar{b}_n\}) \cap \{\bar{b}_n\} = \emptyset. \end{align*} $$

By a parallel argument, we can see that also $(E \setminus \{\bar {b}_n\}) \cap [\bar {a}_n \mapsto \bar {b}_n](J) = \emptyset $ .

Finally, we observe that $\bar {a}_n \mapsto \bar {b}_n$ is a bijection, and $(J,K,L)\in W$ and, therefore, $J \cap K = \emptyset $ , whence it follows that $[\bar {a}_n \mapsto \bar {b}_n](J) \cap [\bar {a}_n \mapsto \bar {b}_n](K) = \emptyset $ .

Summing up, we see that all the four sets in the union defining $G \cap H$ are empty and that we have that $G \cap H = \emptyset $ . The other cases are similar.

Claim F1.4. $(G,H,I)\in W$ .

By Claims F1.1–3.

Claim F1.5. $(G,H,I)\mathrel {\trianglelefteq }(D,E,F)$ .

Indeed, if $b \in G$ , then either $b \in D \setminus \{\bar {b}_n\} \subseteq D$ , or $b \in [\bar {a}_n \mapsto \bar {b}_n](J)$ . In the latter case, $b = b_k$ for some $1 \leq k \leq n$ , and also $a_k \in J$ . Since $(J,K,L)\trianglelefteq (A,B,C)$ implies that $J \subseteq A$ , we get that $a_k \in A$ , but the latter means, by $(A,B,C)^\frown (\bar {a}_n)\mathrel {\mathbb {A}}(D,E,F)^\frown (\bar {b}_n)$ , that $b_k \in D$ . Since $b \in G$ was chosen arbitrarily, we have shown that $G \subseteq D$ .

Next, if $b \in F$ , and $b \notin \{\bar {b}_n\}$ , then $b \in I$ by definition of F. Otherwise we have both $b \in F$ and $b = b_k$ for some $1 \leq k \leq n$ , but then $a_k \in C$ by $(A,B,C)^\frown (\bar {a}_n)\mathrel {\mathbb {A}}(D,E,F)^\frown (\bar {b}_n)$ and Corollary 2. Now, note that $(J,K,L)\mathrel {\trianglelefteq }(A,B,C)$ implies that $C \subseteq L$ , which means that $a_k \in L$ . But the latter means that $b = b_k \in [\bar {a}_n \mapsto \bar {b}_n](L) \subseteq I$ . Since $b \in F$ was chosen arbitrarily, we have shown that $F \subseteq I$ .

Claim F1.6. $(\mathbf {v} \trianglelefteq (G,H,I)\,\&\,\lvert H \cap \mathbf {v}_2\rvert = \omega ) \Rightarrow \lvert E \cap \mathbf {v}_2\rvert = \omega $ .

We observe that if $H \cap \mathbf {v}_2$ is infinite, then so is $(E \setminus \{\bar {b}_n\}) \cap \mathbf {v}_2$ , given that $H = (E \setminus \{\bar {b}_n\}) \cup [\bar {a}_n \mapsto \bar {b}_n](K)$ and $[\bar {a}_n \mapsto \bar {b}_n](K)$ is finite. But then $E \cap \mathbf {v}_2$ must be infinite, too.

Claim F1.7. $(G,H,I)\mathrel {\prec _j}(D,E,F)$ .

By Claims F1.5 and F1.6.

Claim F1.8. $(J,K,L)^\frown (\bar {a}_n)\mathrel {\mathbb {A}}(G,H,I)^\frown (\bar {b}_n)$ , and $(G,H,I)^\frown (\bar {b}_n)\mathrel {\mathbb {A}}(J,K,L)^\frown (\bar {a}_n)$ .

Indeed, for any given $1 \leq k \leq n$ , we have $b_k \in G$ iff $b_k \in [\bar {a}_n \mapsto \bar {b}_n](J)$ iff $a_k \in J$ , since $\bar {a}_n \mapsto \bar {b}_n$ defines a bijection. Similarly, we have $b_k \in I$ iff $b_k \in [\bar {a}_n \mapsto \bar {b}_n](L)$ iff $a_k \in L$ . But then our Claim follows from Corollary 3.

The correctness of our construction for Case 1 of condition (forth) now follows from Claims F1.4, F1.7, and F1.8.

Case F2. $E = \emptyset $ . In this case, we partition $D \setminus \{\bar {b}_n\}$ into two disjoint infinite sets $D_1$ and $D_2$ . Additionally, in case both $D \cap \mathbf {v}_1$ and $D \cap \mathbf {v}_2$ are infinite (which means that $(D \setminus \{\bar {b}_n\}) \cap \mathbf {v}_2$ and $(D \setminus \{\bar {b}_n\}) \cap \mathbf {v}_1$ are infinite, too), we ensure that we have $(D \setminus \{\bar {b}_n\}) \cap \mathbf {v}_2 \subseteq D_1$ and $(D \setminus \{\bar {b}_n\}) \cap \mathbf {v}_1 \subseteq D_2$ . Then we define $(G,H,I)$ as follows:

$$ \begin{align*} G & = D_1 \cup [\bar{a}_n \mapsto \bar{b}_n](J);\\ H & = D_2 \cup [\bar{a}_n \mapsto \bar{b}_n](K);\\ I & = (F \setminus \{\bar{b}_n\}) \cup [\bar{a}_n \mapsto \bar{b}_n](L). \end{align*} $$

We will demonstrate our usual eight claims in some detail again, even though the arguments mostly dualize the proofs given for the respective claims in Case B2 of condition (back) (Claim F2.6 being, perhaps, the only exception to this rule).

Claim F2.1. $G \cup H \cup I = \mathbb {N}$ .

Again, we know that

$$ \begin{align*} [\bar{a}_n \mapsto \bar{b}_n](J) \cup [\bar{a}_n \mapsto \bar{b}_n](K) \cup [\bar{a}_n \mapsto \bar{b}_n](L) &= [\bar{a}_n \mapsto \bar{b}_n](J \cup K \cup L)\\ &=[\bar{a}_n \mapsto \bar{b}_n](\mathbb{N}) = \{\bar{b}_n\} \end{align*} $$

since $(J,K,L)\in W$ and, therefore, $J \cup K \cup L = \mathbb {N}$ . On the other hand, we know that

$$ \begin{align*} (F \setminus \{\bar{b}_n\})\cup D_1 \cup D_2 &= (F \setminus \{\bar{b}_n\}) \cup (D \setminus \{\bar{b}_n\})\\ &= (F \cup D)\setminus \{\bar{b}_n\} = \mathbb{N}\setminus \{\bar{b}_n\} \end{align*} $$

since $(D,E,F)\in W$ and $E = \emptyset $ and, therefore, $D \cup F = \mathbb {N}$ . Adding the two equalities together, we get that

$$ \begin{align*} G \cup H \cup I &= (\mathbb{N}\setminus \{\bar{b}_n\})\cup \{\bar{b}_n\} = \mathbb{N}, \end{align*} $$

as desired.

Claim F2.2. G, H, and I are infinite.

Indeed, $D_1$ , $D_2$ , and F are infinite, $\{\bar {b}_n\}$ is finite, and the following inclusions hold:

$$ \begin{align*} &D_1 \subseteq G,\,D_2 \subseteq H,\,F \setminus \{\bar{b}_n\} \subseteq I. \end{align*} $$

Claim F2.3. G, H, and I are pairwise disjoint.

Indeed, take G and I, for example. By definition, we have that

$$ \begin{align*} G \cap I &= ((F \setminus \{\bar{b}_n\}) \cup [\bar{a}_n \mapsto \bar{b}_n](L)) \cap (D_1 \cup [\bar{a}_n \mapsto \bar{b}_n](J))\\ &\subseteq ((F \setminus \{\bar{b}_n\}) \cup [\bar{a}_n \mapsto \bar{b}_n](L)) \cap ((D \setminus \{\bar{b}_n\})\cup [\bar{a}_n \mapsto \bar{b}_n](J)). \end{align*} $$

By application of distributivity laws, we further get that

$$ \begin{align*} G \cap I &\subseteq ((F \setminus \{\bar{b}_n\}) \cap (D \setminus \{\bar{b}_n\}))\cup\\ &\qquad\qquad\cup ((F \setminus \{\bar{b}_n\}) \cap [\bar{a}_n \mapsto \bar{b}_n](J))\\ &\qquad\qquad\cup ((D \setminus \{\bar{b}_n\}) \cap [\bar{a}_n \mapsto \bar{b}_n](L))\\ &\qquad\qquad\cup ([\bar{a}_n \mapsto \bar{b}_n](J) \cap [\bar{a}_n \mapsto \bar{b}_n](L)). \end{align*} $$

Next, we know that $(D,E,F)\in W$ and, therefore, $D \cap F = \emptyset $ , which implies that $(D \setminus \{\bar {b}_n\})\cap (F \setminus \{\bar {b}_n\}) = \emptyset $ .

Moreover, we have

$$ \begin{align*}(F \setminus \{\bar{b}_n\}) \cap [\bar{a}_n \mapsto \bar{b}_n](J) \subseteq (F \setminus \{\bar{b}_n\}) \cap \{\bar{b}_n\} = \emptyset. \end{align*} $$

By a parallel argument, we can see that also $(D \setminus \{\bar {b}_n\}) \cap [\bar {a}_n \mapsto \bar {b}_n](L) = \emptyset $ .

Finally, we observe that $\bar {a}_n \mapsto \bar {b}_n$ is a bijection, and $(J,K,L)\in W$ and, therefore, $J \cap L = \emptyset $ , whence it follows that $[\bar {a}_n \mapsto \bar {b}_n](J) \cap [\bar {a}_n \mapsto \bar {b}_n](L) = \emptyset $ .

Summing up, we see that all the four sets in the union extending $G \cap I$ are empty and that we have $G \cap I = \emptyset $ . The other cases are similar.

Claim F2.4. $(G,H,I)\in W$ .

By Claims F2.1–3.

Claim F2.5. $(G,H,I)\mathrel {\trianglelefteq }(D,E,F)$ .

The argument for $F \subseteq I$ is exactly the same as in Case 1. To see that $G \subseteq D$ , note that $G = D_1 \cup [\bar {a}_n \mapsto \bar {b}_n](J) \subseteq (D \setminus \{\bar {b}_n\}) \cup [\bar {a}_n \mapsto \bar {b}_n](J)$ , so that the argument used for Case F1 is applicable also here.

Claim F2.6. $(\mathbf {v} \mathrel {\trianglelefteq }(G,H,I)\,\&\,\lvert H \cap \mathbf {v}_2\rvert = \omega ) \Rightarrow \lvert E \cap \mathbf {v}_2\rvert = \omega $ .

Since we suppose that $E = \emptyset $ , it will suffice to show that assuming both $\mathbf {v} \mathrel {\trianglelefteq }(G,H,I)$ and $\lvert H \cap \mathbf {v}_2\rvert = \omega $ will lead us to a contradiction. Indeed, if $\mathbf {v} \mathrel {\trianglelefteq }(G,H,I)$ , then, in particular, $\mathbf {v}_1 \subseteq G$ , so that $\lvert G \cap \mathbf {v}_1\rvert = \omega $ . But we have $G = D_1 \cup [\bar {a}_n \mapsto \bar {b}_n](J)$ and $[\bar {a}_n \mapsto \bar {b}_n](J)$ is finite; therefore, both $\mathbf {v}_1 \cap D_1$ , and its superset, $\mathbf {v}_1 \cap D$ , must be infinite.

If also $\lvert H \cap \mathbf {v}_2\rvert = \omega $ , then a parallel argument shows that also $\mathbf {v}_2 \cap D_2$ and $\mathbf {v}_2 \cap D$ are infinite.

But, since both $\mathbf {v}_1 \cap D$ and $\mathbf {v}_2 \cap D$ are infinite, we must have, by the choice of $D_1$ and $D_2$ , that $\mathbf {v}_2 \cap (D \setminus \{\bar {b}_n\}) \subseteq D_1$ . On the other hand, $D_2 \subseteq (D \setminus \{\bar {b}_n\})$ implies that $D_2 = D_2 \cap (D \setminus \{\bar {b}_n\})$ .

Therefore,

$$ \begin{align*}\mathbf{v}_2 \cap D_2 = \mathbf{v}_2 \cap (D \setminus \{\bar{b}_n\})\cap D_2 \subseteq D_1 \cap D_2 = \emptyset. \end{align*} $$

Since we have $H = D_2 \cup [\bar {a}_n \mapsto \bar {b}_n](K)$ , and $[\bar {a}_n \mapsto \bar {b}_n](K)$ is clearly finite, the set $H \cap \mathbf {v}_2$ can be at most finite, which is a contradiction.

Claim F2.7. $(G,H,I)\mathrel {\prec _j}(D,E,F)$ .

By Claims F2.5 and F2.6.

Claim F2.8. $(J,K,L)^\frown (\bar {a}_n)\mathrel {\mathbb {A}}(G,H,I)^\frown (\bar {b}_n)$ , and $(G,H,I)^\frown (\bar {b}_n)\mathrel {\mathbb {A}}(J,K,L)^\frown (\bar {a}_n)$ .

Again the claim follows by the argument used for Claim F1.8 of Case F1.

Condition (left). Let $i,j$ be such that $\{i, j\} = \{1,2\}$ , let $(A, B, C), (D,E,F)\in W$ , and let, for some $n \geq 0$ , $\bar {a}_n, \bar {b}_n \in \mathbb {N}^{n}$ . Assume, moreover, that we have $(A,B,C)^\frown (\bar {a}_n)\mathrel {\mathbb {A}}(D,E,F)^\frown (\bar {b}_n)$ , and that $b \in \mathbb {N}$ . If $b = b_k$ for some $1 \leq k \leq n$ , then we set $a: = a_k$ . Otherwise, given that $b \notin \{\bar {b}_n\}$ , we choose any $a \in C \setminus \{\bar {a}_n\}$ . We can do this since C is infinite and $\{\bar {a}_n\}$ is finite. In both cases we get that $(A,B,C)^\frown (\bar {a}_n)^\frown (a)\mathrel {\mathbb {A}}(D,E,F)^\frown (\bar {b}_n)^\frown (b)$ by definition of $\mathbb {A}$ .

Condition (right). Let $i,j$ be such that $\{i, j\} = \{1,2\}$ , let $(A, B, C), (D,E,F)\in W$ , and let, for some $n \geq 0$ , $\bar {a}_n, \bar {b}_n \in \mathbb {N}^{n}$ . Assume, moreover, that we have $(A,B,C)^\frown (\bar {a}_n)\mathrel {\mathbb {A}}(D,E,F)^\frown (\bar {b}_n)$ , and that $a \in \mathbb {N}$ . If $a = a_k$ for some $1 \leq k \leq n$ , then we set $b: = b_k$ . Otherwise, given that $a \notin \{\bar {a}_n\}$ , we choose any $b \in D \setminus \{\bar {b}_n\}$ . We can do this since D is infinite and $\{\bar {b}_n\}$ is finite. In both cases we get that $(A,B,C)^\frown (\bar {a}_n)^\frown (a)\mathrel {\mathbb {A}}(D,E,F)^\frown (\bar {b}_n)^\frown (b)$ by definition of $\mathbb {A}$ .

Proof. Indeed, we have $\models \phi \to \psi $ and $\Theta _\phi \cap \Theta _\psi = \Sigma $ . If now $\theta \in L_\emptyset (\Sigma )$ is such that both $\models \phi \to \theta $ and $\models \theta \to \psi $ , then, by Lemma 6, we must have both $\mathcal {M}^{\prime }_1,\mathbf {v}\models \theta $ and $\mathcal {M}^{\prime }_2,\mathbf {w}\not \models \theta $ . We also have $\mathcal {M}_i = \mathcal {M}^{\prime }_i\upharpoonright \Sigma $ for $i \in \{1,2\}$ and, therefore, by Expansion Property, we get that $\mathcal {M}_1,\mathbf {v}\models \theta $ and $\mathcal {M}_2,\mathbf {w}\not \models \theta $ . On the other hand, we know, by Lemma 7, that the relation $\mathbb {A}$ , given in Definition 4, is a bi-asimulation between $\mathcal {M}_1$ and $\mathcal {M}_2$ and that we have $\mathbf {v}\mathrel {\mathbb {A}}\mathbf {w}$ . Therefore, $\mathcal {M}_1,\mathbf {v}\models \theta $ implies, by Lemma 3, that $\mathcal {M}_2,\mathbf {w}\models \theta $ . The obtained contradiction shows that no interpolant exists for $\phi \to \psi $ .