Metamath Proof Explorer

Theorem dvdsgcdidd

Description: The greatest common divisor of a positive integer and another integer it divides is itself. (Contributed by Rohan Ridenour, 3-Aug-2023)

		Ref	Expression
	Hypotheses	dvdsgcdidd.1	$⊢ φ \to M \in ℕ$
		dvdsgcdidd.2	$⊢ φ \to N \in ℤ$
		dvdsgcdidd.3	$⊢ φ \to M ∥ N$
	Assertion	dvdsgcdidd	$⊢ φ \to M \gcd N = M$

Proof

Step	Hyp	Ref	Expression
1		dvdsgcdidd.1	$⊢ φ \to M \in ℕ$
2		dvdsgcdidd.2	$⊢ φ \to N \in ℤ$
3		dvdsgcdidd.3	$⊢ φ \to M ∥ N$
4	2	zcnd	$⊢ φ \to N \in ℂ$
5	1	nncnd	$⊢ φ \to M \in ℂ$
6	1	nnne0d	$⊢ φ \to M \neq 0$
7	4 5 6	divcan1d	$⊢ φ \to (\frac{N}{M}) \cdot M = N$
8	7	oveq2d	$⊢ φ \to M \gcd (\frac{N}{M}) \cdot M = M \gcd N$
9	1	nnnn0d	$⊢ φ \to M \in ℕ_{0}$
10	1	nnzd	$⊢ φ \to M \in ℤ$
11		dvdsval2	$⊢ (M \in ℤ \land M \neq 0 \land N \in ℤ) \to (M ∥ N \leftrightarrow \frac{N}{M} \in ℤ)$
12	10 6 2 11	syl3anc	$⊢ φ \to (M ∥ N \leftrightarrow \frac{N}{M} \in ℤ)$
13	3 12	mpbid	$⊢ φ \to \frac{N}{M} \in ℤ$
14	9 13	gcdmultipled	$⊢ φ \to M \gcd (\frac{N}{M}) \cdot M = M$
15	8 14	eqtr3d	$⊢ φ \to M \gcd N = M$