submaval0

Description: Second substitution for a submatrix. (Contributed by AV, 28-Dec-2018)

	Ref	Expression
Hypotheses	submafval.a	$⊢ A = N Mat R$
	submafval.q	$⊢ Q = N subMat R$
	submafval.b	$⊢ B = {Base}_{A}$
Assertion	submaval0	$⊢ M \in B \to Q (M) = (k \in N, l \in N ⟼ (i \in (N ∖ \{k\}), j \in (N ∖ \{l\}) ⟼ i M j))$

Step	Hyp	Ref	Expression
1		submafval.a	$⊢ A = N Mat R$
2		submafval.q	$⊢ Q = N subMat R$
3		submafval.b	$⊢ B = {Base}_{A}$
4	1 3	matrcl	$⊢ M \in B \to (N \in Fin \land R \in V)$
5	4	simpld	$⊢ M \in B \to N \in Fin$
6		mpoexga	$⊢ (N \in Fin \land N \in Fin) \to (k \in N, l \in N ⟼ (i \in (N ∖ \{k\}), j \in (N ∖ \{l\}) ⟼ i M j)) \in V$
7	5 5 6	syl2anc	$⊢ M \in B \to (k \in N, l \in N ⟼ (i \in (N ∖ \{k\}), j \in (N ∖ \{l\}) ⟼ i M j)) \in V$
8		oveq	$⊢ m = M \to i m j = i M j$
9	8	mpoeq3dv	$⊢ m = M \to (i \in (N ∖ \{k\}), j \in (N ∖ \{l\}) ⟼ i m j) = (i \in (N ∖ \{k\}), j \in (N ∖ \{l\}) ⟼ i M j)$
10	9	mpoeq3dv	$⊢ m = M \to (k \in N, l \in N ⟼ (i \in (N ∖ \{k\}), j \in (N ∖ \{l\}) ⟼ i m j)) = (k \in N, l \in N ⟼ (i \in (N ∖ \{k\}), j \in (N ∖ \{l\}) ⟼ i M j))$
11	1 2 3	submafval	$⊢ Q = (m \in B ⟼ (k \in N, l \in N ⟼ (i \in (N ∖ \{k\}), j \in (N ∖ \{l\}) ⟼ i m j)))$
12	10 11	fvmptg	$⊢ (M \in B \land (k \in N, l \in N ⟼ (i \in (N ∖ \{k\}), j \in (N ∖ \{l\}) ⟼ i M j)) \in V) \to Q (M) = (k \in N, l \in N ⟼ (i \in (N ∖ \{k\}), j \in (N ∖ \{l\}) ⟼ i M j))$
13	7 12	mpdan	$⊢ M \in B \to Q (M) = (k \in N, l \in N ⟼ (i \in (N ∖ \{k\}), j \in (N ∖ \{l\}) ⟼ i M j))$

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