telgsumfz0

Description: Telescoping finite group sum ranging over nonnegative integers, using implicit substitution, analogous to telfsum . (Contributed by AV, 23-Nov-2019)

	Ref	Expression
Hypotheses	telgsumfz0.k	$⊢ K = {Base}_{G}$
	telgsumfz0.g	$⊢ φ \to G \in Abel$
	telgsumfz0.m	$⊢ \underset{˙}{-} = -_{G}$
	telgsumfz0.s	$⊢ φ \to S \in ℕ_{0}$
	telgsumfz0.f	$⊢ φ \to \forall k \in (0 \dots S + 1) A \in K$
	telgsumfz0.a	$⊢ k = i \to A = B$
	telgsumfz0.c	$⊢ k = i + 1 \to A = C$
	telgsumfz0.d	$⊢ k = 0 \to A = D$
	telgsumfz0.e	$⊢ k = S + 1 \to A = E$
Assertion	telgsumfz0	$⊢ φ \to {\sum_{G}}_{i = 0}^{S} (B \underset{˙}{-} C) = D \underset{˙}{-} E$

Proof

Step	Hyp	Ref	Expression
1		telgsumfz0.k	$⊢ K = {Base}_{G}$
2		telgsumfz0.g	$⊢ φ \to G \in Abel$
3		telgsumfz0.m	$⊢ \underset{˙}{-} = -_{G}$
4		telgsumfz0.s	$⊢ φ \to S \in ℕ_{0}$
5		telgsumfz0.f	$⊢ φ \to \forall k \in (0 \dots S + 1) A \in K$
6		telgsumfz0.a	$⊢ k = i \to A = B$
7		telgsumfz0.c	$⊢ k = i + 1 \to A = C$
8		telgsumfz0.d	$⊢ k = 0 \to A = D$
9		telgsumfz0.e	$⊢ k = S + 1 \to A = E$
10		simpr	$⊢ (φ \land i \in (0 \dots S)) \to i \in (0 \dots S)$
11	6	adantl	$⊢ ((φ \land i \in (0 \dots S)) \land k = i) \to A = B$
12	10 11	csbied	$⊢ (φ \land i \in (0 \dots S)) \to ⦋ i / k ⦌ A = B$
13	12	eqcomd	$⊢ (φ \land i \in (0 \dots S)) \to B = ⦋ i / k ⦌ A$
14		ovexd	$⊢ (φ \land i \in (0 \dots S)) \to i + 1 \in V$
15	7	adantl	$⊢ ((φ \land i \in (0 \dots S)) \land k = i + 1) \to A = C$
16	14 15	csbied	$⊢ (φ \land i \in (0 \dots S)) \to ⦋ (i + 1) / k ⦌ A = C$
17	16	eqcomd	$⊢ (φ \land i \in (0 \dots S)) \to C = ⦋ (i + 1) / k ⦌ A$
18	13 17	oveq12d	$⊢ (φ \land i \in (0 \dots S)) \to B \underset{˙}{-} C = ⦋ i / k ⦌ A \underset{˙}{-} ⦋ (i + 1) / k ⦌ A$
19	18	mpteq2dva	$⊢ φ \to (i \in (0 \dots S) ⟼ B \underset{˙}{-} C) = (i \in (0 \dots S) ⟼ ⦋ i / k ⦌ A \underset{˙}{-} ⦋ (i + 1) / k ⦌ A)$
20	19	oveq2d	$⊢ φ \to {\sum_{G}}_{i = 0}^{S} (B \underset{˙}{-} C) = {\sum_{G}}_{i = 0}^{S} (⦋ i / k ⦌ A \underset{˙}{-} ⦋ (i + 1) / k ⦌ A)$
21	1 2 3 4 5	telgsumfz0s	$⊢ φ \to {\sum_{G}}_{i = 0}^{S} (⦋ i / k ⦌ A \underset{˙}{-} ⦋ (i + 1) / k ⦌ A) = ⦋ 0 / k ⦌ A \underset{˙}{-} ⦋ (S + 1) / k ⦌ A$
22		c0ex	$⊢ 0 \in V$
23	22	a1i	$⊢ φ \to 0 \in V$
24	8	adantl	$⊢ (φ \land k = 0) \to A = D$
25	23 24	csbied	$⊢ φ \to ⦋ 0 / k ⦌ A = D$
26		ovexd	$⊢ φ \to S + 1 \in V$
27	9	adantl	$⊢ (φ \land k = S + 1) \to A = E$
28	26 27	csbied	$⊢ φ \to ⦋ (S + 1) / k ⦌ A = E$
29	25 28	oveq12d	$⊢ φ \to ⦋ 0 / k ⦌ A \underset{˙}{-} ⦋ (S + 1) / k ⦌ A = D \underset{˙}{-} E$
30	20 21 29	3eqtrd	$⊢ φ \to {\sum_{G}}_{i = 0}^{S} (B \underset{˙}{-} C) = D \underset{˙}{-} E$

Metamath Proof Explorer

Theorem telgsumfz0

Proof